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HomeMy WebLinkAboutAgenda - 12-01-2008 - 3dORANGE COUNTY BOARD- OF COMMISSIONERS ACTION AGENDA ITEM ABSTRACT Meeting Date: December 1, 2008 Action Agenda Item No. SUBJECT: Solid Waste Process Technology Assessment DEPARTMENT: Solid Waste PUBLIC HEARING: (YIN) No ATTACHMENT(S): INFORMATION CONTACT: SWAB Recommendation Final Report — Solid Waste Process Gayle Wilson, 968-2885 Technology Assessment (Under Separate Cover) PURPOSE: To present an assessment report of solid waste processing technologies (WPT) as possible alternatives to landfilling as a primary means of waste disposal. BACKGROUND: The Board of County Commissioners requested that an assessment of alternative solid waste processing technologies be conducted and referred this request to the Solid Waste Advisory Board (SWAB). At its February 7, 2008 meeting the SWAB discussed methods and rationale for evaluating alternative technologies. At the April 3, 2008 SWAB meeting an outline for a scope of work was adopted and utilized to develop a final scope of work for Olver, Inc. In late April staff authorized Olver, Inc. and their sub-consultant GBB, Inc. to proceed with the Waste Processing Technology Alternative Study. At the June 24 BOCC meeting a status report was provided. GBB, Inc. conducted a presentation of the draft final report to the SWAB at its August 7 meeting. The BOCC received the Final Report and a SWAB recommendation at its October 7, 2008 meeting The consultant in the report concludes: • the quantity of Orange County post diversion solid waste available for WPT is much less than would support or justify any of the alternative technologies available or considered in the report, cost, at least $100 per ton, • even with about 35% more waste available to process, the co would be significantly greater and include more variability risk when compared to the approximately current $50 per ton for landfilling, • the same principle of economies-of-scale apply to WPT as to transferring and land filling, • residue/ash and by-pass material would still require disposal by land filling or, if feasible, another alternative use, • partnering with adjacent governments may provide the necessary quantity of waste available to make a WPT project financially viable, • many of the WTP discussed in the report are, at this time, considered unproven, have limited operating experience, have only operated at a experimental scale or are presently under development, have already been proven unreliable/infeasible, or still have very high technological risk factors, • mass burn waste to energy and pre-processing for a refuse derived fuel are the most proven, environmentally secure, and technologically reliable WPT, • County sponsorship and public ownership would be required to insure capital, waste flow control, and financing, • all WPT are compatible with a high level of recycling, and • siting a WPT will likely be as politically difficult as siting a landfill, although less space would be required for the WPT. The Solid Waste Advisory Board and staff advises: While some WPT options may appear to have a degree of technical and environmental feasibility, there is little short-term potential for waste processing technologies for Orange County. There is insufficient waste available to support such a facility and the inherent technological and financial risks are deemed exorbitant. Current energies and attention should remain focused on completion of the transfer station development process and the comprehensive, long-term, planning process underway by the Solid Waste Management Work Group. Recommendations likely to surface through the Work Group's deliberations, if ultimately adopted by the BOCC, will themselves require considerable time (3-5 years), energy and resources to effectively implement. Work Group recommendations are anticipated to be presented to the elected bodies by the spring 2009. The SWAB .discussed the report at its September 4 meeting and developed a recommendation (attached). The Solid Waste Management Department concurs with the SWAB recommendation. FINANCIAL IMPACT: There is no financial impact associated with receiving the Solid Waste Process Technology Assessment. There would be considerable cost associated with the adoption for implementation. The cost of conducting the technology assessment is $16,500. RECOMMENDATION(S): The Manager recommends the Board receive the attached report and consultant presentation and request additional clarification or information if needed. Memorandum To: Board of Orange County Commissioners From: Solid Waste Advisory Board Jan F. Sassaman, PhD, Chair Subject: SWAB Recommendations Alternative Waste Processing Technologies Report by GBB to Orange County Date: September 24, 2008 At its August 7, 2008 meeting, the Solid Waste Advisory Board received a detailed. presentation from Harvey Gershman of Gershman, Brickner and Bratton (GBB) on Waste Processing Technologies. Gershman's presentation was based on a study conducted for the County that evaluated those technologies that might provide an alternative to landfilling municipal solid waste (MSW) generated in Orange County that is not separated and recycled or composted. The BOCC is scheduled to receive a similar presentation on GBB's study results. The GBB study calculated that at Orange County's current level of MSW generation of fewer than 200 tons per day, the cost of financing, building, owning, and operating a waste-to-energy plant would cost about $ 100 per ton after sale of electricity generated from the heat recovered from incineration and sale of scrap metal recovered from the residual ash. The cost per ton of owning and operating a facility declines with larger facilities, such as those investigated in the study that ranged from 600 to 3,000 tons per day in capacity. Current cost of landfilling waste at Orange County's landfill is $49 per ton; quoted tip fees at nearby transfer stations in Durham are $40 at the City-owned facility and $42 per ton at Waste Industries' private facility. Both the City of Durham and Waste Industries truck the MSW delivered to transfer stations to remote private landfills, each about ninety miles away from Durham; thus the tipping fees charged are assumed to cover the costs of operating the transfer station, transport, and landfilling at the final destination. The GBB study concluded that is it not economical in the short-run to consider a stand alone waste combustion facility to handle waste from only Orange County and that the other emerging technologies investigated in the study are at present not mature, practical, proven, or appropriate for managing large quantities of mixed solid waste. Consequently, at its September 4, 2008 meeting, the SWAB made the following recommendations with respect to the County's near -term solid waste strategy. 1. Concentrate near-term solid waste management efforts on getting the County's transfer station sited, permitted, designed, built, and operating, as well as on continuing the County's successful and aggressive recycling efforts that are reducing the amount of waste to be landfilled. 2. Complete, adopt, and implement the Solid Waste Plan currently being developed by the Solid Waste Work Group consisting of county and municipal elected officials, staff, and members of SWAB. 3. As the Solid Waste Plan recommendations are implemented and staff and financial resources become available, reconsider and re-evaluate the use of practical, proven alternative waste processing technologies once the transfer station is completed and operating, and the current landfill is closed out. The transfer station would likely be required as part of any future alternative waste process system should such be developed in the foreseeable future. 4. Based in part on UNC's commitment to reducing its carbon footprint, explore with appropriate University staff the potential for using the current coal co-generation plant to bum MSW (processed as refused derived fuel) from Orange County or for building a new stand-alone facility to combust waste to power the Carolina North campus. 5. Given that Orange County's waste stream is too small to readily justify its own waste combustion unit, and the likely ten- to twenty-year drastic reduction in available landfill space within a practical transportation distance from Orange County, explore with other local governments, electric generating utilities, and other relevant parties in and around the Triangle J region, options for regional solutions to implement alternative waste processing technologies. This exploration could include conducting a regional waste summit in the next eighteen months wherein these options were clearly laid out for consideration and future planning. The Solid Waste Advisory Board hopes that this review is useful to you in your deliberations. We look forward to hearing your response to the GBB Report and are ready to continue exploration of alternatives if and when the BOCC wishes to do so. 2 4 Alternative Waste Processing Technologies Assessment (A White Paper) Prepared by: II: Table of Contents EXECUTIVE SUMMARY —......--.—~.-..-..-.....----..-..-........~......—. �S-1 1 1.0 INTRODUCTION AND BACKGROUND ....................................................... 2'0 FUTURE ORANGE COUNTY WASTE DISPOSAL NEEDB.—.--..........---. 3 3' 0 WORLDWIDE EXPERIENCE OF WASTE PROCESSING TECHNOLOGIES 14 S 15 AND VENDORS —.--~-.—...~..—.--.—.--.—.-...--^~..~—.. 1� 3'1 Mass-Bmrn/VVatenwaU Combustion ................................................. 5 17 3.2 Mass- Burn/Modular Combustion ................................................... o 17 3.3 Refuse-derived Fuel/Dedicated Boiler ............................................ G 18 3.4 �DF/Fuid��dB�d...--.--~.~~--~—...-..--.--.—.' 6 1� G 19 3.5 Gasification ............................................................................... �� 6 2O 3.6 Pyro�s|s.........^...^......^....^...................^..^^ ... �� 4.2.8 Hillsborough and Lee Counties, FL ...................................... 2O 3'7 PkasnneArc --.--~~—.--..--..-..~--..~..-....—..-. ' 21 3.8 E�ohogka| Fu�� Production .....---~_—.--.—^--....-~—. � 21 3'8.1 Cd|u|o�cEthanol ..—..~..—.--~—....--.--._.—.. � 8 4O F�E�RB��p���MEy��R��PR�B�NG ' TECHNOLOGIES BY[JTHERS—....--.—.—.--~.—......—..~~—... 1� 4.1 F�ycantResearch —.--..~...--~--~—.--~...~..--~ �3 4.1.1 N�vv�orkCd�� N� ......~.~..'^..^...`.^.......~.^^.... 13 4.1'2 Ch4ofLoaAng�h�s,CA--.—_.—.--.—.-.—.--.— 14 4.1.3 Los County,CA.—._-~.—...~.—.--......~—.. 15 - 4.1.4 King County, VVA.,...........~.................^'...., 1� 4.2 Procurenlents...—~--.—.~—..^.—...,—.—.-.--.—.-- 17 4.2.1 Frederick and Carroll Counties, MD ..................................... 17 4.2.3 HorhzrdCounty,MD.--.--.—.—...~.--.~—.--' 18 4.2.3 City of Sacramento, CA ...--~—.—.--.-..—.-....-.. 1� 4.2.4 Bn�w�nd County, FL—....—....—.--.—.—.--.--~~ 19 4.2.5 St. Lucie County, FL-...—.~--.—.~—.--....-~~. �� 4.2.6 Havva�County, HI.—.--.—....--....—...—...—.—' 2O 4.2.7 Pinellas County, FL .......................................................... �� 4.2.8 Hillsborough and Lee Counties, FL ...................................... 2O 4.2.9 Fairbanks North Star Borough, AK ...................................... 21 4.2.1O[]tvofTaUahasaae��L.—.—.-.—.--.—.--...—.—. 21 43 Comparison of in Recent ' Research/Procurements .................................... . ... ...... ... —.— 22 5' 0 OPINION ON ECONOMIC FEASIBILITY, EFFECTIVENESS, AND ENVIRONMENTAL ISSUES OF WASTE PROCESSING TECHNOLOGIES .......... 23 5.1 Economic Feasibility of Waste Processing Technologies .................. 23 5.1.1 Typical Waste Processing Technologies Project Economic 3] Estnnates..—.~--.—...—~--..--.—.--.—.~— 5.1.2 Assumptions ................................................................... 24 G -01 ii August 1S,2OO8 5.2 Effectiveness of Waste Processing Technologies ............................ 25 5'3 Environmental Issues of Waste Processing Technologies ................ 26 5.3.1 Air Quality ...................................................................... 2o �� 5.3.2 Water ............................................................................ 6.0 OPINION ON WHICH WASTE PROCESSING TECHNOLOGIES SHOULD List of Tables Table 3-1. U.S. Mass-Burn/VVatervvaU Facilities .................................................. 5 Table 3-2. Conlnnoncia! Cellulosic Ethanol Plants in the U.S..—.---.~.-...-.. m 1O Table 3-3. EHogas Production in Europe .-.—.—..--.—~—.—~---..~—.... � �O Table 3-4' EBogasFlnnsin Eunope.—...—.---.--.--~—~—~-.~—.--.. Table 4-1. Tech no|ogies/Vendors Mentioned in Recent Procurements ................... 22 Table 5-1. Pro Forma Annual Operating Statement .—..—.—.~—.—.—.--.25 Table B-1. VVTE Facilities Worldwide .............................................................. B-2 List of Figures Figure 1-1 - Solid Waste Management Hierarchv—.—.—.—.—~—~...—.--.. 1 ' Figure 5-1.' Dkz�nEn��sonsfhonmVVTEFad| 199O-2OO5 ........................... �8 Figure 5-2. Mercury Emission from VVTEFaci|dies, 1990 -2005 —.—..—..—.-28 Figure B-1- VatenwaU Furnace Section .......................................................... B4 Figure B-2. Typical Mass-Burn VVatenwaU System ............................................ B-S Figure 8-3' Typical Modular Combustion System ............................................. 8G Figure B-4. Typical RDF Combustion Facility ................................................... B-7 Figure B-5- Typical RDFProoessng Schematic ................................................ B-8 Figure B-6. Typical RDF Fluid Bed System ...................................................... o-9 Figure B-7. Typical Gasification —..—..—~.-~.—..—.r-.—.—..~ B-�O Figure B-8. RDFHuidioed Bed Ga�ficaton5ystan�—.....—~—...—.--.—~. B-11 Figure B-9. EnTech Process Gohernabc.......—...-.....--........—...—.......- B-12 Figure B-10. Process Diagram of Pyrolysis System ..................................... B-13 Figure B-11. Cross-Section ofa Plasma Arc Furnace ...................................... B-14 Figure B-12. Process Flow of the BCyLBiomass Ethanol Plant.—.—.—..—.. B-16 � Figure B-13. Process Howfor Anaerobic Digestion Systemn ......--.'—.......- B-2� Appendices A^i Firms Evaluated bv Recent VVasteProces�ng ' Studies or Procurements ----....—............'.~......—...-...........~... A-1 A-2 Summary of Municipal Waste Processing Technologies ............................ A-2 B overview of Waste Processing Technologies .-------------.B-1 G8B/C07063-01 iii August 1S,2OO8 Executive Summary This examination of alternative waste processing technologies (N[T) was undertaken at the behest of the Orange County Board of Commissioners to explore and evaluate alternatives to landfill disposal of the County's municipal solid waste. The purpose of this white paper is to initiate that evaluation and brief the County's solid waste staff, elected officials, Solid Waste Advisory Board, and citizens on state-of-the-art solid waste processing technologies, emerging technologies and their applicability to the County's needs, and the potential of these technologies to contribute to the County's overall solid waste management system. Orange County generated approximately 116,000 tons of waste in FY2006-07, or about 318 tons per day (TPD). Of that material, 62,800 tons or 172 TPD were disposed of in |a'-�||�, an^ 29'�OO tons or 24 percent was naoyded' The County is ��- ' examining ways to achieve its goal of 61 percen t waste reduction, up from their current rate of4Q percent. The County's landfill is projected to close in 2011. The County has decided to manage its future waste using a transfer station and contracting for disposal in an out-of-County landfill as well as examining the feasibility of alternatives. Traditional waste processing technologies now in operation have the potential of managing most of the County's non-recycled waste. Generally, VVTE plants reduce the processed waste tonnage by 75 percent and the volume by 90 percent. This leaves residue, ash, which needs to be |andfi||ed in a permitted Subtitle D landfill. In some states, ash may be used beneficially as alternative daily cover atlandfills. Even at 75 percent reduction by weight, a \NTEfaci|ity has dramatic effect on the amount ofresidual waste. This report examines both proven and unproven waste processing technologies. Table A-2 in the Appendices provides a ' comparison of these various technologies. Waste-to-energy (VVTEl technologies profiled include: rnass-burn/watenwa|| ^ ^ combustion, mass-burn/modular combustion, refuse-derived fuel (RDF)/dedicated boi|ar, and KDF/Ouid bed. Although VVTE plants range in size from 10 to 3,000 TPD in the ~U.S., 71 percent are 500 TPD or larger. Mass-burn/vvabsnwa|| combustion is .the �most prevalent V PT in the U . S .' employed at GS of the 89 facilities. However, no new mass-b-rnVTE facilities have been built in the U.S. for over ten years. Ten VTEfad|ities currently operate in the Mid-Atlantic States region, processing almost 12'000 TPD- North Carolina, New Hanover County owns e 500 TPD plant that produces electricity. In contrast to its smaller presence in the U.S., VTE is an accepted and commonly used waste processing technology worldwide, with 400 facilities i Europe, 100 in Japan, and 70 in other nations such as Taiwan, Singapore, and China. In addition to proven technologies, this report examines the emerging technologies of high-temperature gasification, fluidized-bed combustion, plasma-arc processing, non-thermal anaerobic digestion, and biological fuel production. Although technically not an emerging technology, biological fuel production has not been cornrnmroia||y proven using MSVV as feedstock. The historical and current context for development and use of VVTE in the U.S. is explored, with waste processing technologies currently receiving renewed interest due to: the proven VVTEtrock record, increasing fossil fuel costs, growing interest in renewable energy, a higher ranking in the EPA's waste -rnanagamnent hierarchy, GBB/CO8027-01 ES-1 August 15, 2008 concern about greenhouse gases, a change in flow control legislation, and the increasing cost oflong distance transfer and disposal. Recent activity in the evaluation and procurement ofVVPT by other U.S. cities and counties isdetailed. Like Orange County, these localities are exploring alternatives for service to their citizens. Information on the investigations of New York City, the City of Los Angeles, Los Angeles County, and King County, VVA into the applicability ofVVPTis highlighted. Current VVPT procurements are outlined, including: a resource recovery facility for Frederick and Carroll Counties, MD; expansion of the Harford, MD \NTE facility; negotiations by the City of Sacramento, CA for a plasma gasification project; Broward County, FL's Request for Expressions of Inbansat to evaluate potential waste disposal options; a plasma .arc gasification project proposed in St. Lucie County, FL; and VVTE plant expansions in Hillsborough and Lee Counties, FL, that are currently being constructed. Atota| of 80 technology vendors offering 14 different technologies are represented, evaluated, screened, or selected during these research and procurement projects. The economic characteristics of the various waste processing technologies, including capital and operating costs and hok' are summarized in the report. Generally, capital coat for / the proven bachno\ogi. es are in the range of $150,000 to $250,000 per ton of installed capacity, depending on size and plant configuration. Operating coots are in te range of $35 to $GO per ton processed, not including residue disposal, again dependent on size, equipment and operating profile, and assuming a private mp=----tor' These figures are based on industry rules-of-thumb, recent operating results from selected facilities, surveys of industry professionals and related references. Of the vvaata processing technologies examined, only VVTE is a proven technology which could be recommended for implementation consideration by Orange County at this point intime. As mentioned earlier, there are O9VVTE plants generating power in the U.S. and hundreds worldwide. The other technologies discussed are in various stages of development and are not mature enough to mitigate the risks potentially inherent with their implementation. In evaluating waste n enooie fo Oane Comy o osder t s apparent that there is not enough waste generated by the County to gain the economies of scale necessary to make a waste processing technology a cost-effective investment. The estimated cost to process waste at a 300 TPD VVTE facility in Orange County is esti mated at $103 per ton. To improve the economics of utilizing waste processing technology, Orange County would need to partner with an adiaoancommunity. counity. T= �- — �O� competitive erton is not competitive with the County's currant landfill ' with Waste Industries' . 42 per ton to transfer and cost of � disposal f�� of �49 or w a� dispose ofwaste. Although currently unknown, the cost of the County's new transfer station and |andfi||ing at a remote site is unlikely to reach $102 per hon. As the County investigates the cost of transfer and disposal in preparation of its landfill closing, VVPTcou|d be more economically attractive once the coat of transfer and disposal is known. If $102 per ton were to look competitive, it is recommended that Orange - County conduct a VVTE plant t faasibi|ity study which considers mass-burn modular technologies, and/or fuel production approaches. GBB/CO8027-01 ES-2 August 15, 2008 The federal government regulates solid waste in the United States under Title 40 of the Code of Federal Regulations Subchapter 1 (40 CFR 239 to 2999). These regulations are in 40 CFR 258 (also known as Resource Conservation Recovery Act [RCRA] Subtitle D), Criteria for Municipal Solid Waste Landfills. Under authority of RCRA, the United States Environmental Protection Agency (U.S. EPA) administers Title 40 regulations and enforces solid waste regulations and policies through its Office of Solid Waste (OSW). Figure 1-1 shows U.S. EPA's hierarchy of i solid waste management which is illustrated in the form of pyramid of ranked approaches. Source Reduction is at the highest level /4l of the pyramid with |andfi||ing at the bottom. Recycling sthe middle ''b|ochs (B8,Cl followed by combustion with energy recovery (D) above combustion without 'energy recovery and |andfi||ing(E). Figure 1-1—Solid Waste Management Hierarch"' A\ � \ ! �ourceReduction and Reuse Composting U CD Materials Recovery Process! ng/Corn buJtion with Energy Recovery LandMUing and Incineration without Energy Recovery A+B+C+D+E=Capacity (Not to Scale) As Orange County KsSolid VVaste Management Plan ml route toachieving their goal 61 -' waste reduction, the County should consider pursuing the ~' percent first two approaches: so urce reduction/reuse an d recycling. Such ch activities include the County's support of local recycling and the encouragement of yard waste composting. As of 2OO6-O7, a reported 47.7 percent waste reduction rate was achieved by the County, eliminating th e need to landfill that portion of the waste stream. The portion of waste generated that is not recycled or composted is hauled zU.B. EPA. G8B/CO8027-01 1 August 1S,2OO8 to the Orange County Landfill or out-of-county facilities. The County owns the local municipal solid waste (y4SVV) landfill which is expected to reach capacity in the next few years. A new County construction and demolition waste landfill area was recently developed and is expected to last approximately 15-20 years depending on rate of use. Another solid waste management strategy the County may want to consider is third in the hierarchy: waste processing to reduce the volume for land disposal. While waste processing technologies (VVPT) can include methods of volume reduction (shredding, compaction, baling, etc.), most such technologies involve some form of controlled thermal treatment - incineration - with fuel production or energy recovery. The County may want to consider the need to address such waste processing technologies as possible alternatives to landfill disposal. The capital intensive approaches such as VVTE require a sufficient quantity of waste to be cost effective: the more waste, the lower the per ton price. The purpose of this white paper is to initiate that evaluation and brief the County's solid waste staff, elected officials, Solid Waste Advisory Board, and citizens on state- of-the-art solid waste processing technologies, emerging technologies and their applicability to the County's needs, and the potential of these technologies to contribute to the County's overall solid waste management system. Section 3.0 summarizes the future waste disposal needs identified in the Plan and how waste processing could affect the amount of landfill disposal required. Section 3.0 discusses the worldwide experience ofVVPT and respective vendors in the United States and other countries, as some of these technologies have operating demonstrations or facilities outside of the U.B. Section 4.0 reviews most of the recent activity in the evaluation and procurement of waste processing technologies by other U.S. cities and counties. These localities are exploring alternatives for increasing their diversion rates, recovering more resources from their solid waste, and delivering better service to their citizens. Section 5.0 explores the economic feasibility, effectiveness, and environmental issues surrounding the use of the waste processing technologies discussed. Section 6.0 presents opinions as to the most applicable technologies for further consideration by the County. Appendix B reviews .the available "proven" waste processing technologies, all of which are inc|nmration-based, their track record and operating characteristics, and a listing of facilities operating in the region. In addition, Appendix 8 details "ennerging" waste processing technologies including high-temperature gasification, fluidized-bed combustion, plasma-arc processing, and some non-thermal anaerobic digestion. GBE/C08027-01 2 August 15,2OO8 2.0 Future Orange County Waste Disposal Needs Based on current data, the County (excluding recycled material from the University of North Carolina (UNCll generated approximately approximately 116,OOO tons of waste in FY 2006-07 or about 18 ''s per day (TPD). Of that material, approximately 15,600 tons or 42 TPD were captured recyclable/. Approximately 16,500 tons of nmabaha| were buried ina construction and demolition waste (C&D) |endfi|| located inOrange County and 8,700 tons of C&D were shipped for disposal out of the County. Tires, dean wood, brush, appliances and scrap metal totaling 12,300 were also recycled in 2006-2007. That leaves approximately 62,900 bnna of vvaota or 172 TPD from Orange County disposed in landfills both inside and outside the County. This tonnage could be further reduced with additional diversion programs. The County is examining ways to achieve its goal of 61 percent waste reduction. As part of this solid waste planning process update, the County has dave|oped.a series of reports evaluating current collection programs, looking at ways to increase diversion and deliver services more efficiently and effeotive|y. These reports will be followed by technical reports on integrating the desired actions into the County's system and financing, which will result in a draft plan for the next three year planning cycle. The County's MSVVlandfill io now projected to close in early 2O11. The County has decided to manage its future MSVV using a transfer station and contracting for disposal in an out-of-County landfill. A County-wide search is underway for a suitable site to situate the transfer station with site selection expected by the end of 2008. Following site selection, the County will design, permit, finance, and construct the transfer station, ideally before landfill closure. If the transfer station is not completed by the time the landfill is closed, managing MSVV during that time period will be expensive and operationally challenging. The projected landfill closure date may be impacted by new rules governing what was formerly considered C&D. This material must now be disposed of in lined landfill space. As of April 2008, stricter enforcement of the rules governing C&D landfills require the County to deposit furniture and other bulky items in the lined MSVV landfill. This may result in a shift ofas much as 8,000 tonaofwasbs a year from C&D landfills-to ;4SVV landfills, shortening the |iha expectancy of the County's MSVV landfill bves much aa five months. As it is, the County-generated 172 TPD is probably too small to make on alternative waste processing technology economically viable. However, the Durham Metropolitan Statistical Area, which includes Chatham, Durham, Orange, and Person Counties, had a population of 465,745 people who generated 476,710 tons of municipal solid waste from July 2006 - June 2007, according to the FY 2006-2007 North Carolina Department of Environment and Natural Resources Solid Waste Annual Report. Of that 476,710 tons of waste, an estimated 90,575 tons or 19 pmrcen+z constitutes neoyc|ab|es. The resulting 386,135 of MSVV could translate into z Simmons, Phil; Goldstein, Nora; Kaufman, Scott M.; Theme|is, Nickolas J.; and Thompson, Jr., James. "The State of Garbage inAnnehca." Biocyde, April 2006: 2O. <h1p://wwwJgpress.com/archivaa/_fnee/000848.htm|>. GBB/C08027-01 3 August 15,2OO8 approximately 1,000 TPD available regionally to make an alternative technology more economically viable. Traditional waste processing technologies now in operation have the, potential of managing most of the residual waste. Generally, VVTE plants reduce the incoming waste stream tonnage by 75 percent and the volume by 90 percent. This leaves a residue, ash, that needs to be landfilled in a permitted Subtitle D landfill and in some states ash is used as alternative daily cover. Some emerging technologies could reduce the residual tonnage of the waste stream even further, but those haven't yet been proven in the U.S on a large scale. Evan at 75 percent reduction by weight, a VVTE facility has a dramatic effect on the amount of residual waste. GBB/C08027-01 4 August 1S,2OO8 3.0 Worldwide Experience mf Waste Processing Technologies and Vendors Avahety ofVVPTare discussed in Appendix B and a summary matrix is in A, Table A-2. This section discusses the past and current experience ofVVPTin the U.S' and elsewhere. 3.1 Mass-Burn/Waterwall Combustion No new mass-burn WTE facilities have been built in the United States for the past ten years, although there have been acquisitions and ownership and operator changes at ----in existing facilities, as well as some plant expansions. Asa result, the firms associated with mass-burn V7E are operators, owners, or owner/operators o� existing facilities. As shown in the Table 3-1 , Covanta and Vhea|abnatorovn and ~r---- -- m-`- h Y of privately-owned VTE facilities. Most ofthe VTE plants, both public and private, are operated by Covanta , Munten ay/vev |ia or Vhee|abrator. . Table 3-1 also shows the range in tons processed per day between facility owners and operators, with publicly operated facilities processing smaller amounts ofwaste than those operated privately. Table 3-1. UU.S. Masm-Surn/WatenwaUl FacUKitUem s Entity Owned Tons processed per day - Operated Tons processed Publi: 39 200-3,000 12 200-500 Covanta 11 400-3,000 27 400-3,000 Wheelabrator 10 200-2,250 16 200-2,250 Some of the mass-burn technology had been purchased from American firms such as Detroit Stoker, Combustion Engineering and Babcock &Wilcox, but the majority of these existing systems are of European design. The two leading suppliers ofVVTE grata systems in the United States and overseas are The Martin Company of Germany and Von Roll of Switzerland. While new VTEhyd|ity procurements have declined in the United States, the market for this equipment has increased in Europe and in Eastern Asia, with European and Japanese systems suppliers actively marketing their systems, and consistently improving their performance. This technology is well tested and is used more than any other for large VVTE facilities in the United States and overseas. 3.2 Mass-Burn/Modular Combustion Modular systems are used for smaller VVTE facilities 80 - 360 TPDl and for industrial applications. Unlike mass burn/vatenwaU systems, there are a number of American firms supplying such systems in the United States, and they are vary ��t s w�|| The more active of these suppliers are competitive in overseas markets a . Consubech Systems of Richmond, Virginia, Enercon Systems, Inc. of Elyria, Ohio, and a Integrated Waste Management Services Association, 2004 Directory ofVVTE Plants. GBB/C08027-01 5 August 15, 2008 Basic Environmental Engineering of Chicago. They have each been ouook/ng incineration systems for M5VV and other wastes for over Z5years. Other U.S' firms, such as Energy Answers of Albany, NY' and Covanta Energy of Fairfield, N], are marketing project development and management services for VVTE modular facilities. 3~3 Refuse-derived Fuel/Dedicated Boller As with mass-burn systems, there have not been any new Refuse-derived Fuel (RDF) systems constructed in the United States in the past decade. For most ofthe 12 RDF \NTE facilities currently in operation, Excel, Veo|ia and Covanto Energy are the operating contractors. The front-end processing utilizes variety of unit processes depending upon the boiler requirements and the design philosophy. The unit process equipment, shredders, magnetic separators, screens, conveyors, etc., are all standard items available from a variety of manufacturers. Equiprnent used in this technology is adapted from equipment provided in coal-fired electricity generation plants, and there are many established system and equipment suppliers marketing in the U.S., such as Foster Wheeler, Riley, Babcock and Wilcox, Detroit Stoker, ABG and VV,�rtsi|�i. While there are several RDF/#uid bed systems operating in Europe (particularly in Scandinavia, where a number of fluid bad incinerator manufacturers are located), thane is only one such facility in operation in the United States, located in Fuandl Island, VVI' It is owned and operated by Excel Energy of Minneapolis. The equipment was supplied by Energy Products of Idaho in Coeur d'Alene, the only U.S. firm currently manufacturing these furnaces for ROFfiring. 3.5 Gasification Japan currently has seven plants operating with gasification technology. At least two of these facilities fire MBVV, with the largest firing up to 700 TPD of y4GVV' In Europe and Asia, approximately 2Osyngasgasification facilities are operating on M5VV' Most of these facilities are relatively arna||, processing less than 10 TPD with none designed to process more than 7OTPD. 3~6 Pyrolysis With pyrolysis, MBVV is heated in an oxygen-starved environment to produce a fuel gas that hsthen incinerated to generate steam and/or electricity. In the 1970e, a number of pyrolysis facilities were constructed using MBVV as a feedstock. Several were built with partial funding provided by U.S. EPA. The largest of these was the Monsanto facility in Baltimore, MD, which had a capacity of 1,000 -[PD. This facility did not rnaat its environmental requirements due to operational scale-up problems and was torn down. Other smaller, 100 to 200 TPD, MSVV pyrolysis facilities were built at that time by Union Carbide, AncoTorrax, and Occidental Petroleum. These facilities were recipients of U.S. EPA grant funds and were closed for operational and financial reasons. Currently, there are no full-scale pyrolysis systems in commercial operation on MSVV in the United States. A pilot dernonstnation system has been GBB/C08027-01 6 August 15, 2008 operating in southern California for two years. It was built and is operated by International Environmental Solutions, ofRomo|and, CA' 3.7 Plasma Arc The o|aanla arc furnace is a ronlrnerda| unit process made and marketed by Westinghouse. It has been successfully applied to a variety of industrial applications; however, there are no commercial-scale plasma arc systems firing MSVV in the United States at the time of this report. There are pilot plants used for ash vitrification in Japan and a smaller Japanese facility firing MSVV, but attempts to apply this process in the United States have not yet been successful. However, several vendors are advancing projects as described earlier. The electric power requirements for the torch are significant, and maintenance of torches and reactor refractory materials is also a significant expense item. Few, if any of the plasma arc pilot facilities have been able to generate a fuel gas (syngas), and air emissions have been found to be no better than conventional incineration systems. The Atlanta firm Geop|asrna has development contract and is negotiating a contract for implementation of a large plasma arc facility for MSVV in St. Lucia County, Florida, which will also to be used for processing mined landfill waste. The City of Tallahassee, Florida approved the contract for Green Power Systems to begin development of a 1,000 TPD plasma gasification plant, which is scheduled to begin operations in2O1O' 3.8 Biological Fuel Production 3.8.1 Cellulosic Ethanol There are a number of commercial facilities in the U.S. (See Table 3-3) and worldwide producing cellulosic ethanol, a biofue| produced from |ignoceUu|oae, a structural material that comprises much of the mass of plants. These facilities utilize a variety of biomass feedstocks. Biomass is any living or naoant|y dead biological rneteha| that can be used as fuel or for industrial production. Biomass feedstocks include crops grown specifically for use as a feedstock, such as corn or hemp, agricultural residues, and other organic residues and wastes, including the organic portion of MSVV' At the time of this report, no U.S. facilities are feeding MSVV but a number of vendors are planning to use K4BVV as a feedstock. ` Abengoa 8ioenergy owns and operates five cellulosic ethanol facilities throughout the United States and Europe with a total production capacity of over 200 million gallons annually. It is currently the fifth largest producer of cellulosic ethanol in the United States with a total of four plants located in Kansas, New Mexico, and Nebraska. The most recent began operations in mid 2007, bhngingAbengoa Bioenergy'snannep|ate capacity to more than 200 million gallons per year in the U.S' In addition, Abengoa 8ioenergy operates four plants in Europe. The world's first commercial scale demonstration biomass plant is being constructed bvAbangoa BUoenmrgyto exhibit its biomass-to-ethanol process technology. Located in Gabi|afuente (Salamanca), Spain, the biomass plant will process 77 tons of agricultural residues, such as wheat straw, each day and produce over 1.3 million gallons of fuel grade ethanol per year. 8ioathano| is most currently used in Brazil, where longstanding policies promote and encourage the use ofbioetheno| as fuel for transportation. GBB/C08027-01 7 August 15, 2008 [1eanTech EUofueba has cellulosic ethanol pilot plant operating on y4BVV in Golden, Table 3-2. Commercial Cellulosic Ethanol Plants in theU.S. (Operational orUnder Conetructionl4 Company Location Feedstock Capacity gallons per year) Abengoa Bioenerg Hugoton, KS Wheat straw 12 Alico La Belle, FL Multiple sources N/A BlueFire Ethanol Irvine, CA Multiple sources 17 Gulf Coast Energy Mossy Head, FL Wood waste 70 Mascoma Lansing, MI Wood 40 POET Biorefinery Emmetsburg, IA Corn cobs 25 Range Fuels Treutlen County,_GA Wood waste 20 Sunopta Falls,_MN Wood chips 10 Xethanol -Little Auburndale, FL Citrus peels 8 None of these plants uses MSVV as feedstock. As of January 2008, U.S. DOE had made seven grants to help develop small-scale cellulosic plants. These plants will produce between 1.3 and 5'5 million gallons of ethanol per year. The feedstocks projected for these plants include wood chips, switch grass, corn cobs, and agricultural and forest residues. None of the plants are projected to use MSVV. The total projected capital cost of these plants is $634 million, with DOE contributing $199 million in the form of the grants. 3.8.2 Biogas - Anaerobic Digestion EUogas or synthesis gas, e mixture of carbon monoxide and hydrogen, can be converted into liquid hydrocarbons of various forms. A number of these technologies produce gas, phrnah|' ' methane, which can be converted to liquid fuels utilizing Fischer-Tropoch Synthesis, a process developed in Germany in the early 20th Century. This process is a catalyzed chemical reaction which takes place at |ovv temperatures (300 to 600 degrees F) and at high pressure. The most common catalysts are based on iron and cobalt, although nickel and ruthenium have also been used. The process produces a synthetic petroleum substitute for use as synthetic fuel, biodiese|. The Fischer-Tropsch process has been used to convert gases from a variety of feedstocks to liquid fuel, including coal and biomass. When biomass is used, the cellulosic materials must first beconverted to biugas and then to liquid fuel using the Fischer-Tropsch process. Currently, a number of companies have commercial versions of the technology, including: 1' Con000-PhiUips- natura|gasasfeedstock 2. BP- natura|gasasfeedstock 3. GheUOi| - natuna|gasasfeedstook 4. Sasol (South Africa) - coal and natural gas as feedstocks 4Bouroe: Grainnat.com Building Cellulose G8B/C08027-01 8 August 15,2OOB 5. Rentech(U.S.) - coal or coke asfeedstock 6. ChoranIndustras (Genmanv) - 7. Syntro|aunn (U.S.)-- used natural gas as feedstock in a demonstration for the U.S. Air Force. In addition, there are a number of research projects funded by the U.S.Department of Energy to use organic materials as feedatooka. These include the Renewable Energy Laboratory and Louisiana State University. The Fischer-Tropsch process is an established technology that has been applied on a large scale in some industrial sectors. Large-scale commercialization is impeded by high capital coats, high operation and maintenance coots, the uncertain and volatile price of crude oil, and environmental concerns. As mentioned in Appendix B, Section 1.3.2, biogaa production from wastes is a mature technology with both large- and small-scale units in production worldwide. In India alone, there are over 2 million farm units that produce biogas from animal manures and other wastes. As of 2006, there were thousands of plants in Europe; Germany alone had 3,500 that produced a total of 1,100 MVV' The newest of these plants range between 400 and 800 KW, using crops and manure for feedstock. In southern Europe, the production of biogau is primarily from landfills. In 2007, a report on the potential pfbiogas in Europe by the bho-Inebtuts and the InstitutfOr Energetikin Leipzig concluded that Germany alone can produce more biogas by 2020 than all of the European Union's(EU) current natural gas imports from Russia. Table 3-3 shows the production pfbiogas in Europe by country with the production broken into three categories of feedstock: landfill gas, sewage sludge and other. Summarized by feedstock, this results in 64 percent landfill gas, 18.8 from sewage sludge and 17.2 other. The largest producer ofb|mgao is the United Kingdom, closely followed by Germany. The biogaa is approximately 50 percent methane, mixed with carbon dioxide and other gases. GBB/C08027-01 9 August 15, 2008 Table 3_3. Blogas Production NmEurope *Exmnabon Source: suxO»ser/sxz000 mote: IxnOE Is equal m$11aaMwx The biogaa sector is booming in Germany and has become the continent's fastest renewable energy sector. The growing interest is due to three factors: it can be produced in a decentralized manner, it is highly efficient - yielding more than twice as much energy per acre of energy crops than ethanol from similar crops, and it can be obtained using known processes from a large variety of biomass resources (organic waste, manure, dedicated energy crops). The biogaa can be used as ^roduoad as medium Btu oritcan be processed to produce pipeline quality p ' gas which is almost pure methane. Also, the biogas has two highly efficient uses:, as a gas for compressed clean natural gas (CNG)-oapab|e vehicles and as a fuel that can be used for the cogeneration of power and heat. Meanwhile, advances in biogan technology, microbiology and crop engineering have made production even more efficient. A number of established firms compete for the biogao plant construction and operation in Europa. Each has developed its own proprietary process, and some are 50 years old or older. l[hens are over 2OO operating plants, as shown in Table 3'4. Table 3-4. Biogas Firms in Europe 2004 2005* Countries Landfill Gas Sewage Sludge Gas Other Biogas Total Landfill Gas Sewage Sludge Gas Other Biogas Total -ITons/Year)__ Linde AG Wies-baden Germany Linde BRV/KCA Germany 573.2 369.8 351.7 1294.7 573.2 369.8 - 651.4 1594.4 Organic Waste Systems Belgium Dranco Dry 14 750,000 Schmack Biogas AG Germany Euco/Coccus Spain 219.1 52.4 23.6 295.1 236.5 56.8 23.6 1 316.9 Netherlands Denmark qiurn 48.7 13.8 5 48.6 19.8 28.9 55.6 7.8 126.2 89.3 73.8 48.7 14.3 56.3 48.6 20.5 28.9 126.2 92.3 2813.8 922.9 540.5 4277.2 3172.7 932.4 854.0 4959.1 *Exmnabon Source: suxO»ser/sxz000 mote: IxnOE Is equal m$11aaMwx The biogaa sector is booming in Germany and has become the continent's fastest renewable energy sector. The growing interest is due to three factors: it can be produced in a decentralized manner, it is highly efficient - yielding more than twice as much energy per acre of energy crops than ethanol from similar crops, and it can be obtained using known processes from a large variety of biomass resources (organic waste, manure, dedicated energy crops). The biogaa can be used as ^roduoad as medium Btu oritcan be processed to produce pipeline quality p ' gas which is almost pure methane. Also, the biogas has two highly efficient uses:, as a gas for compressed clean natural gas (CNG)-oapab|e vehicles and as a fuel that can be used for the cogeneration of power and heat. Meanwhile, advances in biogan technology, microbiology and crop engineering have made production even more efficient. A number of established firms compete for the biogao plant construction and operation in Europa. Each has developed its own proprietary process, and some are 50 years old or older. l[hens are over 2OO operating plants, as shown in Table 3'4. Table 3-4. Biogas Firms in Europe Source: Eumbser/En2006 GBB/C08027-01 10 August 15, 2008 Total Firms Countries System Waste Types Number of Plants Capacity -ITons/Year)__ Linde AG Wies-baden Germany Linde BRV/KCA Wet and dry 24 1,000,000 Kompogas AG Switzerland Kompogas Dry.__ 24 4416,000 Organic Waste Systems Belgium Dranco Dry 14 750,000 Schmack Biogas AG Germany Euco/Coccus Wet Approx. 100, Unknown .. . Biotechnische Abfaliverwertung Germany BTA Wet 27 624,500 GmbH & Cc KG Source: Eumbser/En2006 GBB/C08027-01 10 August 15, 2008 Now, producers in Germany want to feed their upgraded �o known as bionn ' ane, into the main natural gas grid across the BJ' However, they face the significant barrier of their purified biogas not meeting the industry standard for pipeline gas. At 1,100 btu per cubic foot, binnnathane's heating value is too high compared to the industry standard of 900 btu per cubio foot. Germany is the only country in Europe to impose an upper quality limit on gas. The German Greens and the country's environmentalists and farmers are therefore asking for a new law that allows producers to feed their superior, renewable and green gas into the national GB8/C08027-01 11 August 15,2OOB 4.0 Recent Research/ Procurements for Waste The most recently constructed MS\N-processing VVTEfad|dy in the U.S. oornnnanoed operations in 1996.5 Since that time, no commercial plant has been implemented. Several reasons account for this |u|| of activity in the VVTE field: 1. Loss of Tax Credits -The 1986 Tax Reform Act eliminated the significant tax benefits for project owners/developers, contributing to the pipeline of projects. 2' Environmental Activism - Misinformation about air pollution and ash impacts, and preferences for recycling, created public resistance. 3. » ( ) - Effectively ended legislated flow control, creating uncertainty in the revenue stream for projects. 4. Megafills - Large landfills with low tipping fees and no put-or-pay waste supply requirement out-competed VVTE for the market. 5. Amendment to the Clean Air Act (1998) - New regulations required retrofit on existing plants and drove up VVTEoosts, effective as of December 2OOO. 6. -Visib|e opposition by U.S. EPA to combustion and preference for waste reduction/recycling sent negative message about VVTE' 7. The rapidly increasing fossil fuel costs ofthe 1970a and `QOs stabilized, reducing the value of the energy products from VVTE facilities, which were key drivers in facilities developed earlier, and making overall project economics less attractive. In the past few years, however, interest in VVTE and waste conversion has begun to grow again. This renewed interest in waste processing technologies |s due boseveral factors: 1. Proven WTE Track Record - superior environmental performance, reliability, advancements in technology. and successful ash handling strategies have made VVTE an acceptable option to consider as part of waste management planning. 2. Increasinci Fossil Fuel Costs - With the price of oil now over $120 per barrel, the cost of transportation fuels is making MSVV hauling and |andfi||ing more expensive. In addition, the cost of electricity from fossil fuels is increasing, making electricity from waste more valuable and making VVTE more competitive. 3. requiring utilities to generate a portion of their electricity from renewable sources, which sometimes includes VVTE; the Federal government has included VVTE in its definition of renewable energy' 4' 2006, the U.S. EPA revised its waste management hierarchy to include VVTE explicitly as the third priority after waste reduction and recycling/composting. sCovanta's 2,250 TP0 plant in Niagara Falls, NY. GBB/CO8027-01 12 August 15, 2008 5, VVTE has a smaller carbon footprint than landfilling or fossil-fuel generated electriCity7. 6. The 2007 Supreme Court decision in the Oneida- Herkimer case8 ms|y restored to city and local governments the ability to implement Movv control, increasing the security of the waste atnaarn to support the financing ofVVTE projects. 7' Long distance transfer and disposal getting. more expensive. These and other local considerations have led a growing number of communities to re-investigate waste processing technologies as a component of their solid vvasba management systems. The following sections describe several of the naoant initiatives to evaluate and choose waste prouassingtachno|ogies - VVTEand others- to handle significant waste streams in the future. At the end of Section 4.0 is a summary of the technologies and vendors selected through these� evaluation processes that represent the most promising alternatives for adopting VVTE as a waste disposal 6ption. 4~1 Recent Research 4.1~1 New York City, NYe In 2004, the City ofNevv York con�rn��oned a report to evaluate navv and emerging wastennan' -anleotandrecvdingtachno|ogieaandappn)achos. The objective ofthe evaluation was to provide information to assist the City in its ongoing planning efforts for its waste management system. The report identified which innovative technologies were available atpresent, i.e', commercially operational processing of MSVV, and which were promising but in an earlier stage of development. It also compared the newer technologies to conventional VVTE technology to identify the potential advantages and disadvantages that may exist in the pursuit of innovative technologies. Conventional VVTE was chosen as a point of comparison since such technology was the most widely used technology available at the time for reducing the quantity of!andfi||ed post-recycled waste. The report was released in September 2004. 44 companies responded to the initial request for information. The City has commenced a siting Task Force to look atthe five boroughs to identify site on which to build a pilot facility. Once the site has beeh identified, an RFP � will be issued based on the specifications and condition of the site and will be made available toall proven and unproven technology vendors. As part of the process, the City collected information on capital cost from the suppliers. Based on six responses, the capital cost per installed ton for anaerobic digestion ranged from $74,000 (586 TPD) to $82,000 (500 TPD); for gasification, the range 'was �155,OOO (2,612 TPD) to $258,000 (2,959 TPD)| one plasma arc � gasification response gave a capital cost of $321,000 (2, 729 TP[). These figures were for plants of widely varying sizes and were not standardized. /Thorne|oe, Susan A, Weitz, Keith A, Nishta|a, Subba R-, YnrkoskY, Sherry, and Zanes, Maria. "The Impact ofMunicipal Solid Waste Management on Greenhouse Gas Emissions in the United States." Journal of the Air & Waste ..Manaciement Association 52 (Septe 2002): 1000-1011. 8 United Haulers Assn., Inc. v. Oneida-Herkimer Solid Waste Management Authority, Nu. 05- 1345,ZOO7VVL1237912(U.S. April 3O,2O07). » Evaluation of New and Emerging Solid Waste Management Technologies, September 16, 2004. GBB/CO8027-01 13 August 15, 2008 4~1,2 City of Los CA Phase I10 In 2004, the City of Los Angeles, Bureau of Sanitation (Bureau) began a study to evaluate ;4SVV alternative treatment technologies capable of processing Black Bin material / residential MSVVl to significantly reduce the amount of such material going to landfills. The Bureau's overall objective was to select one or more suppliers to develop a facility using proven and commercialized technology to process the Black Bin material and produce usable by-products such as electricity, green fuel, and/or chemicals. The first step of this project was to develop e comprehensive list of potential technologies and suppliers. About 225 suppliers were screened, and 26 suppliers were selected to submit their detailed qualifications to the City. In order to screen the technology suppliers, they were sent a brief survey based upon the technology screening criteria. The criteria applied were aefollows: • Waste Treatabi|ity:The supplier was screened on whether they have MSVVor similar feedstock processing experience. • Conversion Performance: The supplier was asked if their facility would produce marketable byproducts. • Throughput Requirement: This criterion was already met because the technology passed the technology screen. • Commercial Status: This criterion was already met because the technology passed the technology screen. • Technology Capability: The supplier was asked if their technology had processed at least 25 tons per day offeedstock. Of the 26 suppliers requested to submit qualifications, seventeen provided responses. These suppliers and their technologies were thoroughly evaluated, and an Evaluation Report was published in September 2005 with the findings and ranking of the 26 suppliers' technologies that had met the criteria. A Request for Qualifications (QFO) was prepared and provided to the suppliers that met the screening criteria. A detailed technical and economic evaluation of the suppliers that responded to the RFO was completed. This resulted in the development of a short list of alternative treatment technology suppliers. In 2006, several suppliers were added to the short list, based on additional screening and a supplemental RFQprocmso. As part of the process, the City collected information on capital cost from the suppliers. Based on 18 responses, the capital cost per installed ton for anaerobic digestion ranged from $09,000 to $201,000; for gasification, the range was $50,000 to $266,000; for pyrolysis, the range was $60,000 to $221,000; one mixed waste 10 Request for Proposals fora Development Partner(s) for Processing Municipal Solid Waste Utilizing Alternative Technologies premised on Resource Recovery for the City of Los Angeles, February 5,2OO7. GBB/C08027-01 14 August 15, 2008 composting proposer gave a capital cost of $114,000. These figures were for plants of widely varying sizes and were not standardized. Phase II11 On February 7, 2007, the City of Los Angeles released a Request for Proposals /AFPl soliciting competitive proposals for a development partner(s) for processing MSVV utilizing alternative technologies premised on resource recovery. The responsibilities of the development partnerswere tofinance, design, build, own, and operate (with the option to transfer 'rto the City after 20 years) the resource recovery facility, at a throughput rate of 200-1,000 TPC). The facility was expected to provide diversion from landfill of no less than 00 percent of the City's Black Bin (waste) rnataha| delivered to the facility. In addition, the City considered proposals from emerging/experimental technologies that could process less than 200 tons per day as a potential second facility for testing emerging technologies. The emerging/experimental technology suppliers were to meet requirements outlined by the City in the RFP in order to be considered for the potential tasting facility. Proposers of emerging/experimental technologies that did not meet those requirements were n' evaluated further. A total of 12 technology suppliers submitted applications in August 2007. The City of Los Angeles' Bureau of Sanitation has reviewed the proposals and received presentations by the proposers. The Bureau has conducted site analyses and visits to all facilities and is putting together e recommendation by December 2000 of the finalists to be further evaluated. PhaseIII Phase ID will start before the end of the year. It will include developing contracts for selection and increasing the focus on public outreach. 4.1.3 Los Angeles County, CA 12 Beginning in 2004, Los Angeles County conducted a preliminary evaluation of a range of conversion technologies and technology suppliers, and initiated efforts to identify material recovery facilities (MRFs) and transfer stations (TSs) in Southern California that could potentially host a conversion technology facility. A scope of = inveot abon beyond Los Angeles County itself was considered important, as stakeholders in the evaluation extended beyond the County and the implications of this effort would be regional. In August 2OOS,the eva|uadon port was adopted. Phase Iresulted in identification of a preliminary short list of technology suppliers and MRF/TS sites, along with development of long-term strategy for implementation of conversion technology demonstration facility at one of these sites. The County intentionally pursued integrating a conversion technology facility at a MRF/T5 site in order to further divert post-recycling residual waste from |andfi||ing and take advantage of number of beneficial synergies from co-locating a conversion facility ataMRF. 'uibid. 12 Los Angeles County Conversion Technology Evaluation Keport~ Phase II -Assesanent, October 2007. QBB/C08027-01 15 August 1S,2OO8 Phase II - Facilitation Efforts for Demonstration FacilitY13 In July 2006, the County further advanced its efforts to facilitate development of conversion technology demonstration facility. The approach was multi-disciplined, including environmental analysis and conatructabi|ity. Key Phase ]I study areas • An independent evaluation and verification of the qualifications ofselected technology suppliers and the capabilities of their conversion technologies; • An independent evaluation ofcandidate sites, todetermine suitability for installation, integration and operation of one of the technologies; • A review of the required permits to facilitate the project; • Identification of funding opportunities and financing means; • Identification of potential county incentives (i.e., supporting benefits) to encourage facility development amongst potential project sponsors; and • Negotiation activities to assist parties in developing project teams and a Demonstration project. The report described progress to date on Phase II, and represented acu|mination of approximately one year � work conducted by the County. Five companies were issued Request for Offers /AFO) early � y in 2008 for demonstration to be constructed at any one of four sites by the selected vendor. The five conversion technology suppliers considered and their corresponding technologies offered were: Arrow Ecology utilizing anaerobic digestion; Changing World Technologies utilizing thermal depo|ynmerization; International Environmental Solutions utilizing pyrolysis; Interstate VVaobe Technologies utilizing pyrolysis/gasification; and Nteuh Environmental utilizing gasification. Five materials recovery facilities (MKF) were considered for partnering with the technology supplier. Only one ;4RF, Community Recycling/Resource Recovery, Inc. y4RF, is located in L.A. County. The Perris MFlF/TranshsrStation and the Robert A. Nelson Transfer Station and MRF (RANT) any located in Riverside County. Del Norte Regional Recycling and Transfer Station is situated in Ventura County and the Rainbow Disposal Co. Inc »4RF is in Orange Phase III - Evaluation and Presentation of Request for Offers Phase III of the is ���finaUz�bvU�m��2�8. Att��ne� this report, the County ' had recakxad severa| ofhe�, w�h a dead|ine ofAuguat 1S, 2OD8 for rece|pt. appears that Changing World Technologies is no longer participating and that the County is mostly working to locate these projects in privately owned MRFs in Riverside and Orange counties' Phase III will include the evaluation of these offers and the presentation of the results to the Board. Phase IV of the project will begin in 2009. GBB/CO8027-01 16 August 15, 2008 4.1.4 King County, WA A ��e��0�{���id��[�s��d��ui�t��e proviso Division prepare a comparative evaluation of waste conversion technologies (i.e. VVTE ino-n -'-�^ and waste After review and comment onthe draft report by the '--oon Solid Waste Management Advisory Committee [MSVM4C) and others, the final report was submitted ho the King County Council on August G,2OO7. Based on the report, MSWMAC made the following recommendations to the Council: 1' That the King County Council continue its current policy course toward waste export bv implementing the recommendations inthe Solid Waste Transfer and Waste Export System Plan. 2' That every avenue to extend the life of the Cedar Landfill Land� be explored, including increased recycling and partial early waste export, to keep solid waste rates as low a' possible for as long as possible and to provide nnaxirnurn flexibility for long-term planning. 3' That no further resources be expended on the study of incineration technologies at this time. They believed that there was sufficient information in the report to analyze waste export and incineration technologies at a programmatic level i' the Comprehensive Solid Waste Management Plan update and its EIS. There were concerns about the practicality of waste conversion technologies in the King County region, and there was a need recognized to continue planning for the existing transfer system and the potential of extending the life of the Cedar Hills 4.2 Procurements 4~2.1 Frederick and Carroll Counties, MD In May 2006, the Northeast Maryland Waste Disposal Authority (Authority) began a search for firms with Qualified Technologies to provide WTE facilities for Frederick and Carroll Counties. The Authority was seeking technologies that demonstrated success. in the efficient and feasible conversion of MSW into marketable steam, thermal energy, fuel and electricity. Technologies that produced a fuel were to be considered if the fuel had been demonstrated to reliably and efficiently produce energy (Qualified Technologies). The Authority conducted a two-step procurement. The first step was the Request for Qualifications (RFQ) to identify firms with Qualified Technologies. Qualified Technologies were to be eligible for consideration in the second stepi the Basis of Negotiation (BON). In order to be deemed a Qualified Technology, operating statistics from a reference facility had to be provided, with a minimum of three consecutive years of operating data, including waste processed, energy produced, air emissions and residue generation. The size of each unit could be as small as 100 TPD and as large as 750 TPD. The selection of unit size for each project was to be determined during the BON phase. The Authority understood that there were many new and emerging technologies which convert MSVV into various fuels or energy. However, the Authority is dependent on bond financing for its projects, and the lending community insisted on GBB/C08027-01 17 August 1S,2OO8 proven technology as a minimum requirement for making capital available tothe In October 2OO6, the Authority solicited Proposals from qualified, experienced firms in the refuse management and power facility construction and operation fields to provide for the construction, testing, operation and maintenance of a new refuse power plant (RPP) capacity for the counties. The Authority had pre-qualified eight technologies for this solicitation. The facilities were to be owned by the Authority and [eased to the successful Proposer (Company) on a long-term basis (at least 20 years from the oonnrnencia| operations date). The site was tobe provided by the Authority. The Authority would provide most of the refuse (fuel) under a put-or-pay contract and would apply residues for beneficial use as daily cover atthe counties' landfills. The Company would have the rights to all or a portion of the energy revenues (as specified by it in its proposal) and all of the excess waste disposal capacity that could be used to dispose of non-residential waste from any other Authority jurisdiction. In response to the directives, proposals were requested for the following three facility options: � A9UOTPD resource recovery facility tobe located in Frederick County to process residential and commercial waste generated in Frederick County; and ° A 600 TPD resource recovery facility to be located in Carroll County to process residential and commercial waste generated in Carroll County; or A 1,500 TPD resource recovery facility to be located in Carroll County to process residential and commercial waste generated in both Frederick and Carroll Counties. After receipt of proposals from three vendors, the Authority, in conjunction with the participating jurisdictions, completed an initial review of the proposals and short- listed Covanba Energy and VVhee|abnatorTeohno|ogies. As part of the initial review, the Authority met with Covanta and VVhee|abratorto clarify their proposals and to ensure that the initial financial modeling results correctly represented their proposals. and met the needs of the local jurisdictions. As of the time of this report, the Authority is currently seeking approvals from the jurisdictions to begin formal negotiations with the vendors to arrive at a final contract to be voted on by the jurisdictions' Commissioners. If approved by the jurisdictions, the permitting and construction of the facilities could take up to five years. 4.2.2 Hanford County, MD In May 2OO5,the Northeast Maryland Waste Disposal Authority began a search for firms with Qualified Technologies to provide an expansion of the WTE facility for Harford County, similar to the process conducted for Frederick and Carroll counties (see 5.2.1 above). In December 2006, The Authority issued a Request for Proposals (RFP) for a Resource Recovery Facility (RRF) located in Harford County, Maryland. This was the second step in the two-step competitive procurement being conducted by the B8B/C08027-01 18 August 1S,20OD Authority. While the RFPvvas open to all interested and qualified vendors, only those technologies deemed qualified by the Authority were eligible for consideration. The Authority was directed to obtain proposals for expanding the current VVTE capacity in two ways: /1l additional capacity at current meet Harfond County's needs, but not provide significant additional energy to the Aberdeen Pr oxing Ground (APG), and (2) build a new RRFto accommodate the waste disposal needs of Ha rford County, including capacity for some of the waste disposal needs of adjacent "Base Realignment and Closure Act" (BRAC affected counties (Baltimore and Cecil Counties), and provide a greater amount of the energy needs ofAPG. APG had agreed -' to |eaee an additional 20 acres of land next tothe existing FlRF for the larger regional facility. The Authority has short-listed both Oovanta Energy and Wheelabrator Technologies proposals as responsive and will continue the procurement process with those finns' The Authority is currently seeking approval from Harford County to begin formal negotiations with the vendors to arrive at a final contract to be voted on by the Harfnrd County Council. Best and final offers have been requested from both companies and should be received by the end of September 2008, followed by final selection and negotiations. 4.2~3 City of Sacramento, CA In August 2007, the City of Sacramento, CA issued an RFQ soliciting an experienced and qualified finn to partner with it to process MSVV utilizing alternative technologies premised on resource recovery and/or energy creation. To qualify, firms must have had demonstrated experience and capacity to finance, design, build, own and operate a facility that processed MSVV in excess of what the City currently disposes of, approximately 2,300 TPD after diversion. Sacramento was interested in e facility that used treatment technologies including, but not limited to, pyrolysis, gasification, advanced thermal recycling (a second generation advancement of mass-burn ~ techno|ogies�, biological, chemical, physical and/or a combination thereof. They wanted technologies that were well proven at commercial scale, had high landfill diversion rates, and could generate a wide range of useful by-products that could be marketed for revenue sharing by the City and its development partner. In October 2007, the City received 11responses to the RFQ, not all of them waste processing technologies. The City performed a technical evaluation of the responses and went to the Council to request an Exclusive Negotiating Rights Agreement (EN�A\ with a single company, U.S. Science and Technology. A plasma arc ^ ^ gasification project is being evaluated vv i | ted ithdue diligence expected to be completed in � early September. City officials traveled to Japan to visit a plant that employs a similar technology at a oonnnlencia| level (Westinghouse Plasma Corporation). A decision on the implementation of the project is expected in the near term. 4.2.4 Broward County, FL The Bmwand County Solid Waste Disposal District ( in July 2007 was considering changes to its solid waste management infrastructure in the near term. Because its disposal contracts with two privately-owned VVTEfacj|ities will reach the end of their initial service agreement terms in the near future, the District recognized that many options to be considered would require significant development time, and thus began the process to proactively evaluate such options. The District sought, through a Request for Expressions of Interest (RFEI), to identify firms that could GBB/C08027-01 19 August 15,2OO8 meet all or a portion of the District's future solid waste processing and disposal requirements, and that were consistent with its long-term objectives. While this was not procurement, it was understood that information obtained during the process would ba used to support future procurarnent(s). The expressions of interest were due bv October 2OO7, and 25vendors responded to the REFI. To date The Brovvard County Solid Waste Disposal District, Resource Recovery Board has received all the expressions of interests from the 25 respondents as well as 11 presentations made to the Board by some of the respondents and no further decisions have been made. Not all of the submittals were for VVTE solutions. Negotiations for a contract extension are taking place with VVhee|abnator, and a decision to move to forward is expected in2OO8. 4.2.5 St. Lucie County, FL On April 30,2006, the Board of County Commissioners, St. Lucie County, Florida, solicited offers for the purpose of obtaining services to permit, finance, construct, operate, and own a Plasma Arc Gasification Facility 'to process MSVV for St. Lucie County. The due date for the qualifications was May 2OO5. There was only one respondent to the RFO issued bv the County: ]a asma. As of November 2007, the development contract has been signed, and the County is moving forward with the project. The developer plans to process 3,000 TPD, generating 120 megawatts of electricity, one-third of which will be consumed internally. According to the developers, the plant will cost over $425 million and take two years toconstruct. Construction is slated to begin in 6 - 8 months pending permits. 4.2.6 Hawaii County, HI In 1985, the County started- searching fora landfill replacement. After searching for more than a decade and spending about $1 million, it selected VVheelabrator Technologies Inc., a wholly-owned subsidiary of Houston-based Waste Management Inc. VVhee|abrator emerged from a field of three finalists, including Covanta, which runs HPowaron Oahu, and L-Con Contractors, a partnership with Barlow Projects, Inc. In January 2008, the County received a best-and-final offer from VVhee|abrator, In May, the County Council voted against the 650 T-PD project because of the estimated $12.5 million coot, leaving the County with no plan for dealing with Hilo- area trash after 2012. 4.2.7 Pinellas County, FL Pinellas County had three companies bid on the contract to operate the existing VVTE plant. The process began with an RFQto pre-qualify firms. The three firms that were pre-qualified all submitted bids. Those respondents were VVhae|abrator, Covanto and Veo|ia. The bid want out in September 2006 for an operator nsp|amarnent for an existing 2,000 ton. per day plant and was awarded to Vao|1a in January 2007. Veo|ia actually began operating the facility effective May 7,2OO7. 4.2.8 Hillsborough and Lee Counties, FL Two operating mass-burn waterwall facilities in Florida began expansions in 2007. In Lee County, the 1200 TPD plant will add a third line with a 636TPD capacity, using the same Covanta technology as the two operating lines, at a cost of $123.2 million GBB/C08027-01 20 August 15,2OO8 or �194,0OO per ton of installed capacity. Hillsborough County sole-sourced to - 'nta a new 600 TPD line to add to the two operating 600 TPD lines already in ---- ra~~' The coat to Hillsborough County for the new line will be $123 million or OOO per installed ton of capacity. The project iaexpected to be completed, tested and accepted bv the County in July 2OO9' 4,2,9 Fairbanks North Star Borough, AK The Fairbanks North Star Borough (FNS2) is soliciting proposals for optimizing the management ofthe MSV stream. The FNSBigseeking a long-term partnership to innp|mrnant a method for economical disposal of the community's MSVV while returning energy savings to the Borough - with an emphasis on waste reduction, recycling and VVTEoptions. Proposals were due May 29,2OOQ. The following dates represented the FNS8's best estimate of the schedule being followed to select the successful proposer for this project. Proposal Evaluations June 1 -]u|y 31, 2008 Notice of Intent to Award (NOIA) Issued August 2008 Contract Negotiations August/5eptember2OO8 Assembly Approval of Contract Award Septennber/October2OO8 Contract Execution November 2008 After the Notice of Intent to Award has been issued, the Borough and the successful offeror shall conduct good faith negotiations to address all aspects of a resulting contract. Should the Borough be unable to negotiate a contract with the successful offeror, negotiations will be formally terminated. The Borough may then initiate negotiations with the second highest ranked offeror. This process may continue until an agreement isreached. 4.2.10 City of Tallahassee, FL The City of Tallahassee, FL, a Public Power Community, in November 2006 issued a letter of interest to seven project developers requesting a two-page summary for consideration of their technology for development of a renewable energy facility serving the City of Tallahassee's service territory within Leon County, FL. The City received three written responses, all from developers using biomass as fuel for conventional steam generation. Two additional companies made formal presentations to City nepnasentativesforadvanoed gasification projects, one project utilizing ;4SVV and the other utilizing woody biomass as fuel sources. In January 2007, the City began direct negotiations with one of the companies that made the formal presentations, Green Power Systems based in Jacksonville, Florida. In June of 2007, the City approved the contract for Green Power Systems to begin development of 1,000 TPD plasma gasification plant generating 35 MW nat. The purchase power agreement for the sale of electricity to the City of Tallahassee was signed in June 2007. To date, Green Power Systems is conducting gao-technical work on site suitability as well as design and engineering work based on site suitability. Financing has been secured for the development of the plant, and it is scheduled to begin operation |n October 2O1O. GBB/C08027-01 21 August 1S,2OO8 4.3 Comparison of Technologies Chosen in Recent Research/ Procurements In the foregoing studies, reports and procurements, a total of 78 technology vendors were represented, evaluated, screened or selected in some way for consideration as waste processing solutions for the local entities. These 78 vendors offered 14 different technologies. The listing of the 78 vendors is presented in Table A-1 in Appendix A of this paper. Several of those technologies/vendors were mentioned more than once. Table 4-1 lists the 14 that were cited three or more times in the various documents. The most often cited technology was mass burn, represented by Covanta and VVheaabrator, who have the most cornnnenda| experience of any of the vendors listed. Second on the list is gasification firm IVVT, which mrnp|oya theThmrmooe|ect technology in use in Europe and Japan. Other gasification technology providers are also mentioned, along with four anaerobic digestion vendors, one plasma arc firm two pyrolysis providers and a thermal depo|ynnedzadon firm. While this review is not systematic, it does provide a good summary of the firms and technologies that are most active in the field, and those that localities across the U.S have been most interested in using as they contemplate alternatives to |andfi||ing y4SVV. Table 4_1. Tech nollxgies/VendomsMentioned in Recent Procurements Vendor-designated Technology Vendor Total Times Cited Mass Burn Covanta Energy Corporation 7 Mass Burn Wheelabrator Technologies Inc. 5 Anaerobic Digestion Systems 4 Anaerobic Digestion Waste Recovery Seattle, Inc. (WRSI) 4 Anaerobic Digestion Arrow Ecology and Engineering 3 Anaerobic Digestion Urbaser 3 Gasification Taylor Recycling Facility 3 Gasification Whitten Group /Entech Renewable Energy System _ 3 Plasma Gasification Global Energy Solutions 3 Pyrolysis Pan American Resources 3 Pyrolysis International Environmental Solutions 3 Thermal Depolyrnerization Changing World Technologies 3 GBB/C08027-01 22 August 15, 2008 5°0 Opinion on Economic Feasibility, Effectiveness, and Environmental Issues of Waste Processing Technologies Technologies ��.1 EcoKO��rni��Feasi��iU�y of��aste��rocessNKD�� K�_'_� The economic characteristics of the waste processing technologies, including capital and operating costs and risk, are summarized in Table Ar2in Appendix A. Generally, capital cost for the proven technologies are in the range of $150,000 to $250,000 per ton ofinste||ed capacity, depending on size and plant configuration. Operating costs are in the range of $35 to $GO per ton processed, not including residue disposal, again dependent on size, e |uiprnentand operating profile, and assuming a private operator. These figures are based on industry rules-of-thumb, recent operating results from selected facilities, surveys of industry professionals and related references. A significant factor in the net operating costs for these facilities is revenue from the sale of recovered energy and recyo|ab|es' The energy revenue is a function of negotiaUons between the tad|ity operator and the energy markets, typically e utility, and may include, besides e power rata, revenue for capacity and a requirement for standby power. Capital equipment necessary for utility connections can also be part of the negotiations, and the actual figures have to be developed and refined for specific sites and requirements during a procu rem ent/deve|opnnentand negotiation process. 5.1.1 Typical Waste Processing Technologies Project Economic Estimates To provide the County with an idea of the project economics that it could expect from adopting a VVTE strategy for the future management of its MSW that is not red uoed/used/naoydad, a representative preliminary project pro forma Operating Statement was prepared. By deriving an order-of-magnitude cost per ton for the processing and disposal of [�SVV using a waste processing technology, the County -� can mornpa ne'the cost of developing new landfill capacity or other means of disposal after the existing landfill is filled to capacity. The technology chosen for modeling was mass burn/vvahenwa|| incineration, the technology with the most extensive track record at the size and scale needed to serve the County. The nominal size of the facility selected is 300 TPD, making it one of the smallest VVTE plants in the United States. (There are two mass-burn facilities in that size range - Commerce, CA and Wallingford, []'') This assumes that Orange County would be able to partner with an adjacent community. The procurement method assumed for the analysis was a design-build-operate public-private partnership, with public ownership and financing through 100 percent tax-exempt revenue bonds. This structure |o the one recommended by numerous solid waste financing professionals and experienced facility owners throughout the U.S. This method gives the County the benefit ofsingle-source private involvement in the construction and long-term operation of the facility, while retaining the advantages of public ownership. Such advantages include: GBB/C08027-01 23 August 15,2OO8 1. Lower overall financing costs. Tax - exempt debt is generally less costly than private debt - equity structures, even if the private debt portion of the financing is through tax - exempt private activity bonds. 2. More waste flow control. Public owners have a greater ability to control waste flow to their facilities based on the recent Oneida - Herkimer Supreme Court decision (See reference in Section 4.0). 3. Post- financing control. After the expiration of the initial financing, usually 20- 30 years, the County would still be the owner of the plant, reaping the benefit of lower disposal costs without debt service payments, and not subject to market pricing by a private owner - operator. Several existing plants, especially in New England, are now reaching the end of their initial service agreements and financings, and the communities they are serving that still need disposal services are facing higher tipping fees or loss of guaranteed available capacity. Of course, the actual procurement method should be the result of an open procurement process with several alternatives open to proposers to suggest as they deem them advantageous to the County. 5.1.2 Assumptions The following are the assumptions used for the pro forma Operating Statement: 1. Size/Throughput. As stated above,, the representative plant is 300 TPD processing a total of 87,600 tons per year, which equals an availability of about 80 percent. The remainder of the annual waste generated would need to be transferred and landfilled; a cost of $50.00 per ton has been assumed for bypass. 2. Ash Generation /Disposal. Using a rule of thumb, 25 percent of the annually processed waste (21,900 tons) would remain as ash after the thermal recovery process. The ash can be disposed at a landfill at $50.00 per ton but may have to be disposed separately from the bypassed waste in an ash monofill. If found to be hazardous, ash would need to be separately disposed of as a hazardous waste. The cost of such ash management would be in the range of $150 to $250 per ton, including transportation and disposal at a specially designed and operated landfill. If a beneficial use, such as alternative daily landfill cover, was found, the cost could be reduced. 3. Capital Cost /Financing. The capital cost per ton is set at $150,000 per ton of installed capacity or a total of $45 million. The effective net amount to be financed was estimated at 125 percent of the cost of the installed capacity, taking into account development and permitting costs, financing costs, etc. That brings the total financed to $56.25 million. The all -in cost of financing using revenue bonds was estimated at 5 percent for 25 years, an annual financing factor of 0.0651, bringing net annual debt service to $3.99 million. 4. Electricity Revenues. The net amount of electricity generated from the system, excluding in -plant use was set at 350 kilowatt -hours per ton processed. The assumed price of the electricity sold was $0.06 per kilowatt - hour, which is typical of what many plants receive for their electrical sales. Any electrical agreement and its associated price would have to be negotiated with the utility. It was also assumed that the plant operator would receive 10 percent of the electricity sales as an incentive payment, with 90 percent going to the County. GBB /C08027 -01 24 August 15, 2008 5' Materials Revenues. Ferrous metals can be recovered from the bottom ash adLhat2 perc�ntofth� and sold as scrap on the open market. It was assurn incoming waste or 1,752 tons per year would be recovered and sold at a current phoa of $80.00 per ton' It was assumed that the plant operator would receive 50 percent of the sales as an incentive payment, a standard industry practice. 6. Operating Costs. A cost of $57.00 per ton processed was assumed for the 5.1.3 Pro Forma Operating Statement Based on the assumptions above, the annual Operating Statement of the system would be as presented in Table 5-1' Table 5-1. Pro Forma Annual Operating Statement Revenues Electricity $1/839,500 Ferrous Recovery $140,160 Total Revenues $1,979,760 Costs operating &Maintenance Ash Disposal ByPaseDispoaa| Annual Debt Service Operator Revenue Sharing Total Costs $4,993,200 $1,095,000 ¢66O,UOO $3,991,076 ¢183,96O $10,923,236 Net Cost ¢8,943/476 Net Cost/Ton $102.09 The ash produced bv the facility would need to be transferred and b*ndfUed' The estimated cost for this is projected at$5O per ton in Table 5-1. The cost per ton is quite sensitive to the price of electricity. For example, if it could be assumed that electricity could be sold for $0.09 per kilowatt-.hour instead of $0.06 per kilowatt-hour, the net disposal cost of approximately $102 per ton would be reduced to$89 per ton, an approximate 13 percent reduction incost. 5.2 Effectiveness of Waste Processing Technologies Since any VVPT will have some residual in need of disposal, when discussing effectiveness of VVPT, emphasis is placed on obtaining the least amount of residual material for final disposal. While combustion technologies significantly reduce the volume of material destined for landfills, the resulting ash must be managed. Typical management methods include disposal in a Subtitle D landfill or beneficial use in construction projects and alternative daily cover for landfill wastes. In Europe, where land for |andM|\ing is scarce and several countries have banned landfills, the ' 25 August 2008 G8B/CO8O��-01 , ash is processed to recycle the ferrous and nonferrous metals and the remainder is graded and used in road and other construction. ' The biological processes produce residues as well. These are of two types: [1) inert residues that are |andfi||ed and �2l organic residues that can be cured to be a soil amendment or compost. Biological '' VVPT are mass reduction technologies so that contaminants such as heavy metals are concentrated in the residue. Tests for these contaminants need to be conducted during operations and appropriate measures taken. For all but the high-temperature thermal options and the anaerobic digestion system, an ash will be generated. Bottom ash will be discharged from the bottom of the furnace chamber, and fly ash will be collected by the air pollution control system. In accordance with applicable law, VVTE ash nnue± be tested to ensure it is non- hazardous. The test is called the toxicity Characteristic Leaching Procedure (TCLP),. Generally, the bottom ash has not been classified as a hazardous material, subject to ash testing and analysis. Fly ash, however, will have a higher concentration ofheavy metals and may also contain residual organics. As such, it would likely be classified as a hazardous material if it fails toxicity testing, unless it is combined with bottom ash, as is the current U.S. practice. It should be noted that communities with aggressive, comprehensive recycling programs and programs focused on removing tox|csfrom the MSVVstream, such as those to divert used electronics /a-waste), household hazardous waste (HHVV), nnercurytherrnorneters,fluorescent 'light fixtures, battehes,variousrneta|s and white goods, and the like, could be expected to have a post-diversion MSVV stream for combustion containing less toxic materials and thus the ash from combustion to have a lower potential to exhibit hazardous characteristics upon TCLPtesting. The solids residual from high temperature systems, such as plasma-arc or pyrolysis, may have a better opportunity for end-use applications and marketing. These glassy-type granules may be classified as non-hazardous and used in construction materials orasafill. Vendors claim the substrate after digestion is beneficially processed and recovered, with the residue from anaerobic digestion is nothing more than stones, glass or similar items, vvh|oh is normally directed to a solid waste landfill. However, digestion, like combustion, is a concentrating process. This is the result of the organic matter being converted to gas and utilized or released into the atmosphere. As a result tonic materials in the waste will be part of the residue but in a higher concentration than in the original feedstock. These claims are unproven in plants operating using MSVV as feedstock. 5.3 Environmental Issues of Waste Processing Technologies 5.3.1 Air Quality 5,3~1.1 Applicable Regulations Solid waste incinerators, vvh|oh the U.S. EPA refers to as Municipal Waste Combustors, are regulated under the federal Clean Air Act, originally passed by Congress in 1963 and updated in 1967, 1970, 1977,1990 and 1995 'and 1998. Numerous city and local governments have enacted similar legislation, either GBB/C08027-01 26 August 15, 2008 implementing federal programs or filling in kxca|k/ important gaps in federal programs. Section 111 of the federal Clean Air Act directs the U.S. EPA to establish pollution control requirements for certain industrial activities which emit significant "criteria air pollutants." These requirements are known as new source performance standards (NSPS) and regulate pollutants. For thermal destruction of solid waste, the NSPG control particulate matter (PM), sulfur diooide(BC )' carbon monoxide (CO)' nitrogen oxides [0Oxl, v chloride (HO), dioxins/furans, cadmium, lead, mercury, fugitive'ash'andopac|ty. NSPS are detailed in Chapter 40 of the Code of Federal Regulations, Part GO (40 CFR Part 60), and are intended primarily to establish nninirnurn nationwide requirements for new facilities. Section 112 of the pre-1990 federal Clean Air Act directed the U.S. EPA to establish standards to naduos emissions of hazardous air pollutants (HAPo). These pollutants include asbestos, benzene, beryllium, inorganic arsenic, mercury, radionuclides, and vinyl chloride. National emission standards for hazardous air pollutants (NESHAPs) are detailed in 40 CFR Part 61 and establish rn|nirnurn nationwide requirements for exiatingand new facilities. The post 199O NESHAPs nsqu|ns the nnaxirnurn achievable control technology (MA[]) for a particular industrial source category, and are often referred to as "MA[][ standards." The pne-1990 Clean Air Act prescribed a risk-based cherniuo|-bv-cbennios| approach. The 1990 Clean Air Act Amendments outlined a new approach with two main components. The first component involves establishing techno|ogy-baaed source category standards, and the second component involves addressing any significant remaining risk after the national standards are in place. The NESHAPs promulgated under the 1990 Clean Air Act Amendments can be found in 40 CFR Part 53 and establish nationwide requirements for existing and new facilities. The U.S' EPA may implement and enforce the requirements, or the U.S. EPA may delegate such authority to state or local regulatory agencies. Clean Air Act Section 111 and 112 emissions limits applicable to new Municipal Waste Combustors are: Diuxin/funan (CDO/CDF) 13 nonognanns per dry standard cubic rnatmr Cadmium (Cd) 10 micrograms per dry standard cubic meter Lead (Pb) 140 micrograms per dry standard cubic meter Mercury (Hg) 50 micrograms per dry standard cubic meter Particulate Matter (PM) 2O milligrams per dry standard cubic meter Hydrogen chloride (HC|) 25 PPM or 95 percent reduction Sulfur dioxide ��Ozl 3Oppnnor8O percent reduction Nitrogen Oxides ' (N/ x) 180 pprn dry volume, and 150 ppnn dry volume after first year ofoperation A new source review (NSR) permit is required for a new municipal waste combustor and, in addition, depending on its size and emission quantities, it must meet the prevention of significant deterioration (PSD) permit requirements. 5.3.1.2 Air Quality Impacts In the early 1g80s,dioxins were discovered in the exhaust ofaWTE facility onLong Island, NY. This chemical, toxic to animals in even very small quantities, was considered a major pollutant. Other VVTE plants were tested, as well as other GBB/C08027_'01 27 August 15,2OO8 industries, and were found to bea major dioxin source. In 1995, amendments to the Clean Air Act (CAA) were enacted to control the emissions of dioxins, as well as other toxins, such . as mercury, hydrogen chloride and particulate matter. With the implementation of the CAA requirements in the following years, dioxin emissions from VVTEdecreased significantly, as shown in Figure 5_1. 14 The U.S. EPA has stated that "VVaste-to-Energy is no longer e major contributor of dioxin emissions." Figure 5-1~ Dioxin Emissions from Wl[E Facilities, 1990 — 2005 4,500 4,173 3,998 4,000 � ' o soo .m x.noo �� 2,500 FA 2,000 AA 1,500 UJ � 1.nuo son 40.6 12.0 o 1990 1993 1996 1999 oouo u»os Year Mercury is another toxin that was found in VVTE exhaust and that was addressed in the C/V\ amendments. BY modifications in the burning process and the use of activated carbon injection in the air pollution control system, dioxins and mercury, as well as hydrocarbons and otharconstituents, have effectively been removed from the gas stream. Mercury emissions from VVTE have been reduced from 1990 levels, as shown in Figure 5-2- 1s Figure 5-2. Mercury Emission from Wl[E Facilities, 1990- 2005 � tz 40.0 .52 30.0 LU 20.0 1(lO MIA IN Year 4.05 ^"Emisyionsfnom/LangaMVVCUnitsatMA[TConnp|iance,DucketA-9O-45(LargeMVVCs),U.5. EPA, Research Triangle Park, NC. 15 Ibid. GBB/C08027-01 28 August 15, 2008 5.3.2 Water Mass-burn and RDFindneraton technologies and any VVTE that produces steam will require a water supply, and all types of projects have a wastewater discharge. Water is required for the boilers, and domestic water for workers is also needed. Non-potable water may be used as cooling water for the steam condensers, but the large cooling vvabar supplies necessary for condenser cooling are normally not available, and cooling towers or cooling water ponds are provided as part of the facility. . Air-cooled condensers are an option, but they increase capital costs and reduce net power production. If the energy is going to a otaarn customer, the water requirement may be increased significantly from that needed for electricity generation, assuming that the customer generally does not return condensate. Some projects may roganenate steam and electricity for sale, such as district heating/cooling projects or those with a significant steam user in proximity of the VVTE facility site. Technologies such as gasification and anaerobic digestion will not necessarily use a boiler. They may generate a gas stream for use off-site and not require a condenser cooling water system. They may utilize the gas to power a turbine or piston engine. These approaches are not inherent waterusens; however, gasification systems may require water in the gas cleanup and processing. Each system would need individual evaluation. Biologic systems, including ethanol production and anaerobic digestion, are wet processes. The question to be examined is how much water is required and how much is recycled. The answers to these questions will be system -specifio. For example, Arrow-Bio, which uses a water-based system, dainno that no water is required for the pnoceasotherthan that in the waste, which is recycled. GBB/CO8027-01 29 August 15, 2008 6.0 Opinion on Which Waste Processing Technologies Should Be Considered for Orange County Of the waste processing technologies examined only WTE is a proven technology which could be recommended for implementation consideration by Orange County at this point in time. As mentioned earlier, there are 89 VVTE plants generating power in the U.S. and hundreds worldwide. The other technologies discussed are in various stages ofdevelopment. The alternative technologies aro not mature enough to mitigate the risks potentially inherent with their implementation: Risk of technical failure - The technology ksunproven. Risk of pricing uncertainty - Should the County enter into a purchasing agreement with a vendor for a VV *the ultimate price paid may be much higher than that indicated in the proposal. Risk of environmental non-compliance - The technology's environmental performance may be insufficient tn meet regulations. In evaluating waste processing technologies for Orange County to consider, it is apparent that there is not enough waste generated by the County to gain the economies of scale necessary to make a waste processing technology a cost-effective investment. The estimated cost to process a ton of waste ataVVTE facility |nOrange County is $102. To improve the economics of utilizing waste processing technology, Orange County would need to partner with an adjacent The $1O2 per ton is not competitive with the County's current landfill disposal fee of $49, nor with Waste Industries' cost of $42 per ton to transfer and dispose of waste. Although currently unknown, the cost of the County's new transfer station and |andfi||ing at a remote site is unlikely to reach $100 per ton. As the County investigates the cost of transfer and disposal in preparation of its landfill dosing, VVPT may be more economically attractive once the cost of transfer and disposal is known. If $102 look it i ended that Orange County conduct ' VVTE plant feasibility study which considers both mass-burn and modular technologies, and/or fuel production approaches. ` GB8VC08027-01 30 August 15,2OO8 Table A-1. RnmsEvaluated bv Recent Waste Processing Studies or Procurements Table A-2. Summary of Municipal Waste Processing Technologies GBB/C08027-01 August 15, 2008 T�h�e A-1 Firmc Fu;lluatpd by Recent Waste Processing Studies or Procurements •..v.... -. _. ......_ ____��___ — _ ` \` 0 0\ O yea � `oQ° aya aye ay ay Qr Qr Qr Qr cam. OP `Q y y c1 cl of O o �' aa� Technology Jurisdiction °9a�0 �a�0 Goac Good' °�G °o oa�oy a Goo �aol�`a6 ° clAN yva IF ce�� ?e G` �.° �.° Q� �a G` 0�° 5�• Q. .�o Vendors Advanced Thermal Recycling Global Environmental Technologies X 1 Advanced Thermal Recycling Consutech Systems LLC X 1 1 Advanced Thermal Recycling Basic Envirolech Inc. X Aerobic composting Wright Environmental Mana ement Inc. ri ght X X 2 Aerobic com ostin American Bio-Tech X 1 1 Aerobic composting Horstmann Recyclingtechnik GmbH X Aerobic Digestion Mining Organics X 1 1 Aerobic Digestion Real Earth Technologies X Aerobic Digestion American Bio-Tech X 1 1 Aerobic Di estion HotRol Exports Ltd, or Outspoken Industries X 1 Aerobic Digestion International Bio Recovery Corporation (IBR) X Anaerobic Di estion Arrow Ecology and Engineering X X X 3 2 Anaerobic Digestion Canada Composting X X 1 Anaerobic Digestion Kame /DePlano X 1 Anaerobic Digestion New bio X 1 Anaerobic Di estion O aworld X 2 Anaerobic Digestion organic Waste Systems X X 1 Anaerobic Digestion VAGRON X X 4 Anaerobic Di estion Valo a S.A.S. Vale a /Waste Recove S stems X X X Anaerobic digestion Canada Composting, Inc. CCI X 1 Anaerobic digestion organic Waste Systems N.V. OWS X 1 Anaerobic digestion ISKA GmbH X 1 1 Anaerobic digestion Arrow Ecology Ltd. (Arrow) X 1 Anaerobic digestion Citec X 2 Anaerobic digestion Global Renewabies /ISKA X X 4 Anaerobic DI estion Waste Recovery Seattle, Inc. RSI X X X X 3 Anaerobic Digestion Urbaser X' X X X' 1 Composting Zenker X 1 Composting RRI - Switzerland 2 Gasification BRI Energy X X 1 Gasification necolo X 3 Gasification Ebara X X X 1 Gasification Ecosystem Pro acts X 1 Gasification Emerald Power /Isabella City X 1 Gasification GEM America X 1 Gasification ILS Partners/ romex X X 6 Gasification Interstate Waste Technolo iesffhermoselecl 1 X X X X X Gasification Jov Theodore Somesfalean X 1 Gasification Kame /DePlano X 1 3 Gasification Taylor Recycling Facility X X X 1 Gasification Thermo enics X 2 Gasification Primene RRA X X 1 Gasification Omnifuei /Downstream Systems (Omni) X Gasification Whitten Group /Enlech Renewable Ene System X X X 3 Gasification Energy Products of Idaho EPI X 1 1 Gasification Brightstar Environmental X 1 Gasification Omnifuel Technologies, Inc. X Gasification Green Energy Co X X t 1 Gasification Envire ei 1 Gasification Zia Metallurgical Processes, Inc. X 1 Hydrolysis Arkenai Fuels X 1 Hydrolysis Biotin X 1 H drol sis Masada O not X X X X X X X X 7 Mass Bum Covanta Energy Corporation X X X X 5 Mass Bum WheelabralorTechnologies Inc. X Mass Bum Veolia Environmental Services X 1 Mass Bum Se hers Kappa] Technology, Inc. Se hers X X 2 Other Thermal Microwave Molecular Waste Technologies, Inc. X 1 Plasma Gasification Global Energy Solutions X X X 3 1 Plasma Gasification GSB Technologies X 1 Plasma Gasification Peat International/Menlo Int. X 2 Plasma Gasification Rigel Resource Recovery and Conversion Com an X X Plasma Gasification Selena Group X 1 1 Plasma Gasification Startech Environmental X X 2 Plasma Gasification Geo lasma LLC X 1 Plasma Gasification Plasma Environmental Technologies, Inc. X Plasma Gasification Plasco Energy Group X X 1 1 Plasma Gasification USST 1 Pyrolysis Enlro is Technologies Corporation X Pyrolysis Pan American Resources X X X 3 Pyrolysis WasteGen Ltd. /TechTrade asteGen X X 2 Pyrolysis Conrad Industries X 1 1 pyrolysis Graveson Energy Management X Pyrolysis International Environmental Solution X X X 3 S Classification BLT/Wodd Waste Technologies X 1 zation Changing World Technologies X X X 3 1 Thermal ZemsTechnolo Holding X i ------ :.,......ti...w— .. nnmw—d mm—ai in in—I —emmemt GBB /C08027 -01 A -1 August 15, 2008 IM 0 'S c u a) IM (D #A to 0 IL L .2 c 0 M E E co 0 0 rq Lr w En =1 E (U E U) > M E H c E ; EMz CJ it u M q, w u. u W" .2 u E"a 0 8 u Z cr A! u m o Z; � - "M - g, E 3: E= cm E ' 3. a !' u W g! r , , :3 u. w uH 2.0 u 7-5 u.2 0 'oc� 0, -o' J ,� r a Mt u .2 = 91 u a T . e 00 w . = 'owu) 0 Z E. 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EM M. 0 tf) .9 > 'M 0, w 4) M w 0 X; a a .2 -o N r- -@ 3W o CD M. E E r - 12 c R a u D W -22 @ M 0 r E,of w ", E w ir =. CD u (v E M D. cu) a m > E tn az N . a', �: C 0 In u B M a -r c U) 03 M x 0 r u -MZi 'E o a) CL a 0 W M .0 v tM T3 0 0 M X ul a u FV 12 R :!e 73 T -M 0 c (U . d) -M < , 42 UI w 1! w 2 CL u 0 v "u . -u , : , U r CWI c t� M 0 a-MM M 0 Cn -- . 80 0 0 0 M M M S. W w M 2! MM w i>z� 0 - Ln r -� - v f6 a -�a OE' M P E C.0 E > -W PM M . U ME W� r M,M a w 2 M 0 " - v �: R . E a-m w 0 02 r 1. "W 'T s t c - -E lw 0 Bt- M12 0 12 WE . -0 04C , - -:8r M.!= - .2 V c 0":s u 2:8r -M g zu; M 0 > 0 a 'w 0 , w", (u -0 -0M w M m wa m- -w E gn 'En '6 LnBwE=; V3:w,w>. --6-mw "n w >0 r 2 B -12 >- wow tn w >—@ 0, E w E w g CL W -T m m 2 Ln `L' Ou O's .9 T E.5 - Ln u u 2:2 2! -r- W w -S W (n w m 0- o --o BBMa" Cc .no w w uz� W U-ia �ER :E B? E.., r M "o 7@ w 0 0, > = u T M 0 u u u E-tj u w =M E! 3: �5 , t !§ E o." .0 .6 �w B . > "M M > 2i . u C3 B - f-Hr"t-2- E a! b M r- w = H lu M -0 M En E'um E a, =(n .5 E w M w M M w w a= Mi3 g.tn�gcc M CL-W-60 V 11 V > -o M w w r 0 -M M M 0 2 U. u 2 W w 2.9 LL M M 'D Mck 0 M ;a M I M x - M 06 Km 9 C6 . I - co 0 0 rq Lr w En =1 •: • -. •.. q ..• • • GBB/C08027 -01 August 15, 2008 Appendix B Overview of Waste Processing Technologies (WPlF) 1.1 "Proven" Technologies Waste has been converted to beneficial use on a large scale for well over 100 years. Incineration with electric power generation was first applied to MSVV in 1894 in New York City. Since that time, the burning ofMSVV with energy recovery (now known as VVTE) has matured into safe, effective and environmentally acceptable technology. The proven large-scale waste processing methods include incineration and starved- air combustion, as defined below: Incineration: This is the controlled combustion of organic or inorganic waste with more than the ideal air (stoichinnnethu) requirement - excess air - to assure that complete burning occurs. Combustion: Starved Air Starved air incineration utilizes |aas air than conventional incineration, and it produces ash similar in appearance to that from o conventional incineration process. The gases that result are burned in a second chamber. The lower air requirement leads to smaller equipment sizes. This process, however, is an incineration process. Refuse-derived Fuel : An RDF system processes waste by shredding it and removing ferrous metals in preparation for combustion. The removal of non- combustibles can increase the specific heat content by over 10 percent and can allow for revenues from the metals removed. It has been found that recycling, the most preferred waste management option aside from waste reduction, increases when VVTEexiste in the United States aswell as in other countries. As shown in 8ioCvzl*'s "2006 State of Garbage in America," (ht±p://vvvvvv.jgpraas.ozrn/archivag/_jrae/000048,htrn|), most of the states with large energy recovery rates have recycling notes higher than the national recycling average of 28.5 percent.' These recycling rates range from 43 percent in Minnesota (where 21 percent ofthe waste is burned for energy) to 24 percent in Connecticut (where 65 percent of the waste is burned for energy). North Carolina illustrates the inverse with 19 percent recycling and '9 percent combustion for energy. Apparently, where VVTE.axists, there is greater public awareness of waste disposal and the need to deal with waste reduction overall. Other methods of MSVV disposal, such as mixed-waste composting and |andfi||ing, are being used but they are becoming less and less attractive. Mixed-waste composting requires large land areas, creates significant odor, and produces compost that is ||nnitad in its application because of contaminants. Landfi||ing is not a processing technology, it is storage. It also requires large land areas or a large capital investment, generates methane (a greenhouse gas that is more than 20 times as potent ascarbon dioxide, which is generated from VVTE), and creates other 1 BioQLcle includes recycling, composting,. yard waste, VVTE and landfill collection in its figures. EPA reports MSVV from a slightly different source. They include collection receipts for domestic waste and for industrial waste, but their recycling quantities are derived from firms that recycle the waste, such as paper mills or steel plants, rather than from collection data. This difference in methodology from that used byBioc is reflected in the difference in recycling rates in the United States in 2006, which is reported as 32.5% by EPA and 28.596 byBdZg�cle. GBB/C08027-01. B-1 August 15, 2008 environmental impacts, like uncontrolled discharge of |aachate that may pollute groundwater sources. VVTE has proven to be a reliable method for waste processing and disposal. Modern plants are compatible with aggressive recycling programs and have an environmentally acceptable track record. While new VVTE procurements have declined in the United States, the market for this equipment has increased in Europe and in Eastern Asia. European and Japanese systems suppliers actively market their systems and are consistently improving their performance. The technology is well bested and is used more than any other for VVPT facilities in the United States and overseas. Table B-1 illustrates the use ofVVTE technology throughout the World. Table B-1~ WTE Facilities Worldwide Source: "The 2008 IWSA Directory of Waste-to-Energy Plants," Integrated Waste Management Services Association websde Table B-2 illustrates the size and ownership of VVTE facilities in operation in the United States. �oo� of the ��|�� a� owned � public entities, VVhma|abratorTechnology (Waste Management Inc.) owns 13 percent Covanta Energy owns 21 percent, and other private firms own 13 percent. Private companies own more of the larger facilities. Table B-2. WTE Facilities in the United States Size (Ton Per Day) Number of Amount of MSW Managed by WTE as a Location Facilities of Total MSW Generated 12.5% based on MSW reported by U.S. EPA and USA 89 BioCycle's data Europe 400 Varies from country to country Japan 100 70 to 80% Other nations (Taiwan, 70 Varies from country to country Singapore, China, etc.) Source: "The 2008 IWSA Directory of Waste-to-Energy Plants," Integrated Waste Management Services Association websde Table B-2 illustrates the size and ownership of VVTE facilities in operation in the United States. �oo� of the ��|�� a� owned � public entities, VVhma|abratorTechnology (Waste Management Inc.) owns 13 percent Covanta Energy owns 21 percent, and other private firms own 13 percent. Private companies own more of the larger facilities. Table B-2. WTE Facilities in the United States Size (Ton Per Day) Publicly owned Privately owned Total 101-499 14 5 19 500-999 8 17 25 1,000-1,999 11 9 20 Total 46 43 89 Table B-3 shows the various technologies used in U.B. plants with the majority of plants utilizing mass burn technology. GBE/CO8027-01 B-2 August 15,2OO8 Table B-3. U.S. WTE Plants by Technology Technology Operating Plants Daily Design Capacity (TPD) Annual Capacity 1 (Million Tons) Mass Burn 65 71,354 22.1 Modular 9 1,342 0.4 Combustion 10 15,428 4.8 RDF-Processing Only 5 6,075 1.9 RDF-Combustion Only 5 4,592 1.4 Total U.S. Plants 2 94 98,791 30.6 Alexandria 975 ` Annual Capacity equals daily ypu/ or oesen covuuw mumv.=" "' O", p=,W,=". multiplied by 85 percent of the design capacity is a typical system guarantee of annual facility throughput. ^Tota|P|an\sinc|udesRDFPnocessingfaci|0eothatdonoLganeraUepowernnsKe. Source: J.V.L. Kiser and M. Zannas, Integrated VVasUo Management Services Association, April 2004. In the region, 10 VVTE facilities currently operate, processing almost 12,000 TPD of MSVV. Table B-4 describes those plants. Table B-4. WTE Plants in Region Location Size (TPD) Start Date Energy Product Owner/Operator North Carolina New Hanover County 500 1984 electricity' New Hanover County South Carolina Charleston 600 1989 steam & electricity AT&T/Montenay Charleston RRI Virginia Alexandria 975 1988 electricity Covanta Arlington-Alexandria, Inc. Fairfax County 3000 1990 electricity Covanta Fairfax, Inc.' Hampton 240 1980 steam NASA and City of Hampton/City of Hampton Harrisonburg 200 1982 steam & electricity City of Harrisonburg Southeastern Public Service Authority Portsmouth 2000 1988 RDF & electricity Maryland John Hancock Life Insurance Company/ Baltimore 2250 1985 electricity Wheelabrator Baltimore, L.P. Northeast Maryland Waste Disposal Harford County 360 1988 steam &electricity Authority/Energy Recovery Operations, Inc. Northeast Maryland Waste Disposal Montgomery County 1800 1995 electricity LAuthority/ Covanta Montgomery, Inc. I Originally built asa^steam^plant, the facility now generates and sells electricity. Source: Integrated Waste Management Services Association The following sections describe the basic types of MSW combustion technologies, all of which have been in use for decades in the U.S. zNmwHannverCountyGovernmunt,DepartmantofEmvironmenta|Managamentwebsito. GBB/C08027-01 B-3 August 15i2OOB 1.1.1 Mass-Summ/WaterweaUUCommbustion In mass-burn vvatenwaU combustion, MSVV is placed directly into the system for incineration with no pre-processing except for narnova| of identifiable white goods (refrigerators, washing machines, microwave ovens, etc.). Waste is placed onto a grate at the bottom of combustion chamber in a furnace with walls built of water tubes, as shown in Figure B-1. Air for combustion is forced through the grates (under-fire air) and through parts in the sides of the combustion ohannber(overfira Figure B+1. WaterwaUKFurnace Section Half the heat generated from the burning waste is absorbed by the watenwa||s and the balance heats water in the boiler, as shown Figure B-2. I Source: Babcock and Wilcox. GBB/CO8027-01 B-4 August 15,2OO8 Fiiif.ie Radiant Libre Turbine, Added chute neudbur stem Cartim Dolomitic Sdo Lim Mew, Daidnt� cou—S Grate Strike, Lime Enrissuart. Surface Gurle Added Manurin Cw Mal 'a Figure B+2. Typical Mass-Burn Watermall The off-gas exiting the boiler passes through an air pollution control system where the majority of pollutants is removed and is discharged through a stack to the atmosphere. Waste is burned out toan ash in the furnace. Heat extracted from the vvatenwa||e and the boiler section generates steam which, in most facilities, is directed to a turbine generator for electric power production. VVatenwa|| systems are fabricated on-site. They are generally applied to larger systems, 200 TPD up to 750 TPD, with multiple units used when higher capacity is required. They are forgiving in their operation, and are reasonably efficient in the burnout of waste and in the generation ofenergy. 1.1.2 Mass-Burn/ Modular Combustion Modular combustion is another incineration process. Unprocessed SVV is |aoed directly into a refractory lined chamber. The primary chamber of the incinerator includes a series of charging rams which push the burning waste from one level to another until it burns out to an ash and is discharged to a wet ash pit, as in Figure 13- 3. No or limited under-fire air is used to limit the entraining of ash into the flue (exhaust) gas stream. 4 Source: Fairfax County, VA. GB8/C08027-01 B-5 August 15,2OO8 .. Figure B-3. Typical Modular Combustion Less than the ideal (stoiohiometrid amount of combustion air is injected into the primary combustion chamber, and a combustible gas is produced from the incomplete waste combustion. The gas from the burning waste is directed to a secondary combustion chamber where additional air is added to complete the burning process. Hot gases pass though a separate waste heat boiler for steam generation and then through an air pollution control system before discharge through the stack to the atmosphere. A major advantage of this system is injection of |use air than ideal in the primary combustion chamber. With less air, the fans can be smaller and the chamber its elf, can be mrna||or than with other systems. Also, with less air flow, less particulate matter (soot) enters the gas stream and the air pollution system can be sized fora smaller load. Modular systems are factory built and can be brought to a site and set up in a relatively short period of time. They are less efficient than watanwa|| units in waste burn-out and in energy generation. They have been built in unit sizes up to 150 TPD. Multiple units are used to increase plant size to 300 - 400 T'PD, such as in Agawam, MA. 1~1.3 Refuse-derived Fuel/Dedicated Boiler RDF,inits simplest form, is shredded MEW with ferrous metals removed. Additional processing, such as screening, can be applied to the incoming waste stream to remove and recover glass, aluminum, and other non-combustible materials. Additional processing stages may also be placed in the processing line, such as sSource: ConsutechSysten/s Richmond, VA. GBB/C08027-01 B-G August 15,2OO8 pelletizing. Pelletizing is the compression of "fluff" RDF into dense pellets generally to be fired along with lump coal. The pellet size depends on the size of the coal used in existing power plants. RDF production is a distinct process; therefore, it is not necessary to be co-located with the combustion plant. In Figure B-4, RDF in blown into the furnace from the left, -above the grate. What does not burn in suspension (above the grate) will burn on the, grate, and the hot gases generated will pass through a wabenwa|| section and then a boiler section. This system is similar to the mass-burn wahanwa|| facility except in the nature of waste changing and burnout. VEAM FOR INMN'nty � and MAIIOC�: Nirf arkI Figure B-4. TypicaURDF CommbustiomFacila�v The unique feature of RDF systems is in the pre-processing of waste. As seen in the diagram of typical RDF processing facility in Figure B-5, MSVV enters the facility and then passes through a tnornnne|, where bags of waste are broken open and large material is removed. The snna|| nnataha| dropping out of the firsttrornnne| pauses through second trammel to remove fine noncombustible material. The majority of waste goes through a shredder for size reduction. A magnetic separator removes ferrous metals and the balance of the material is fired in the furnace. »Source: Energy Answers Corporation. GBB/C08027-01 B-7 August 15, 2008 Figure B-5. Typica0RDF Processing Other configurations may include additional separating equipment or exclude tnonnnncdo, but the RDF generated is always shredded so that it is capable of being blown into a furnace. Although results vary with the processing configuration, in general, about 80 percent of the incoming waste stream is converted into RDF for the thermal process. An advantage of this system is in the removal of metals and other materials from the waste stream. While not all these facilities include this step in the processing line, those that do can realize revenue from the sale of recovered metal. For instance, at the North County Resource Recovery Project in West Palm Beach, Florida, the nominal 3,000 TPO facility removed and sold over 30,000 tons of ferrous metals in 2003, which represented over 3 percent of the weight of the incoming waste stream. With the removal of non-com buotib|es, the specific heat content of the RDF can be increased by 10 percent over the original MSVV. 1.1.4 Refuse-derived Fuel/Fluidized Bed In this incineration process, y4SVV |s shredded to less than four inches mean particle size (the same as with the RDF process described in 1.3,1 above) to produce the fuel (see Figure B-5l before it is blown into a bed of sand in a vertical cylindrical furnace. Hot air isalso injected into the bed from below, and the sand has the appearance of a bubbling fluid as the hot air agitates the sand particles. Moisture in the RDF is evaporated almost instantaneously upon entering the bed, and organics burn out both within the bed and in the freeboard, the volume above the bed. Bbaarn tubes are embedded within the bed, and a transverse section of boiler tubes captures heat from the flue gas exiting the furnace, as shown in Figure B-6. / Source: generic. GBB/C08027-01 B-8 August 15, 2008 Figure B-6. Typical RDF Fluid Bed SystemB Fluid bad incineration is more efficient than grate burning-based incineration systems. The bed is very .effective in waste destruction and requires less air Oovv than mass-burn or modular systems. The fluid bed, however, does require relatively uniform-sized material, and RDFpnepanation is necessary for system operation, not for resource recovery, as discussed above. 1.2 "Emerging" Technologies There are many technologies currently being proposed for the treatment and disposal of MSVV throughout the world. Most of these involve thermal processing, but some others comprise the biological or chemical decomposition of the organic fraction of the waste to produce useful products like compost or energy products, notably synthetic gas (oyngas) for downstream combustion. Thermal processing refers to a number of different types of technologies utilizing heat as the mode of waste treatment. However, most of them, as listed and described below, are variations of conventional incineration. GasifcatiCXl: Heating of an organic waste to produce a burnable gas (approximately 85 percent hydrogen and carbon monoxide rniz) for use off-site. As long as the off- gas produced from the system is usable and burned off-site, the system is gasifier, not an incinerator. Typically, the energy in MSVV is both used to fire the system and contained |n the gas product. Pyrolysis: Afornn of gasification where organic waste is heated without air. A gas is generated that is burned in the gaseous phase ' requiring much less oxygen than conventional incineration. This process also generates a char, orfrit, depending on the pnuoase temperature. (Fht is a glassy, granular material that is uniform in appearance.) The presence of secondary combustion chamber for the burnout of the pyrolysis gas requires that this system be classified as an incinerator. Plasma arc: Plasma arc refers to the means of introducing heat into the process. Essentially a plasma arc system is a pyrolysis orstarved air process generating heat by firing the waste with a plasma arc to produce eyngas, which is then combusted to produce steam and/or electricity, and is classified as an incinerator. If the system oSourca: Energy Products nf Idaho, Coeur DyAene,ID. GBB/C08027-01 B-9 August 15,2OO8 generates an of-gas that contains burnable gases (e.g., hydrogen and carbon monoxide) that can be used off-site, it can be classified as gasifier. 1.2.1 Gasification Gasification is the heating of an organic waste (MSVV) to produce a burnable gas (approximately 85 percent hydrogen and carbon monoxide mix) for use off-site. While pyrolysis systems are phrnah|v focused on waste destruction, a gasifier is designed primarily to produce a usable gas. As shown in Figure B-7,Thennoae|edt, a European firm represented in the U.S. by InberCity Waste Technologies of Malvern, PA, has developed a system composed of 400 TPO modules processing MSVV' Figure B-7. Typical Gasification Systern9 Waste is fed into a gasification chamber to begin the heating process, after being compressed to remove entrapped air. Some oxygen, sufficient only to maintain the heat necessary for the process to proceed, is injected into the reactor where temperatures in excess of 3,OOO»F are generated. At this high temperature, organic materials in the y4SVVwill dissociate into hydrogen, methane, carbon dioxide, water vapor, etc., and non-organics will nndt and form a glass-like slag. After the gas is cleaned, water is removed, and the gas can be used for power generation, heating, or other purposes. The glass-like slag can be used as fill, or as a building material for roads, etc. A variation of the fluid bed incineration system described in this section is the fluidized-bed gasifier, shown |n Figure B-8. 9 Source: International Waste Technologies, Malvern, PA. GBB/C08027-01 B-10 August 15, 2008 Superheated Steam Heater Fluidi7ADd&ed 11 500 R a ����009C Non-combustibles molten slag A� E�m�� Bag Filter Preheater Figure B-8. RDF Fluidized Bed Gasification Systernlo Although this system is described as gasification technology, it does not export a burnable gas' RDF is first prepared using a process similar to the ones illustrated in Figures B-4 and B-5. The RDF (called "wastes" in Figures B-7 and B-8) is then charged to the fluid bed and the gas generated is directed to a secondary combustion chamber, shown above, with molten slag dropping out to a water-cooled sump. The molten slag solidifies into a glass-like material which can be used as a construction nnmteha| or fill. Heat from the gas fired in the combustion chamber is captured in hot water tubes to generate steam which can be used for electric power genonation. Without the generation of usable gas etnaarn and with the necessity of a combustion chamber forgao burn-out, this system is an incinerator. Aga5ifier marketed foryVISVV is built by EnTmoh of Devon, England, as shown in the schematic in Figure B-9. This is a complex system which generates recyclable metals, plastics and other potential revenue streams, in addition to a salable gas (syngas). EnTech provides case studies of nine small-scale facilities in operation. A 67TPO facility operates on a mixture ofMSVV. u`Source: Ebara Corporation, Tokyo. GB8/C08027-01 B-11 August 15,2OO8 Figure B-9. EnTeoh Process As shown in Figure B-9, MSVV is classified by a o»nnNnobon bag breaker and gravity separator process, termed a Kinetic Streamer. Oversize materials, which are basically inorganic, are directed either to a plastics necyc|mr or a non-plastics recycling station, while the majority of waste (presumably organic) is directed to a dryer to narnovo entrained moisture. The dryer utilizes the latent heat inherent in the organic content of the waste to produce the heat necessary to drive the gasification process. The syngas can be fired in a waste heat- boiler for steam and subsequent electric power production. 1.2.2 Pyrolysis In pyrolysis, an organic waste (MSVV) is heated without oxygen (or air), similar to the generation of coke from coal or charcoal from wood. Both a char and a gas are generated. The gas is burned out in a gaseous phase, requiring much less oxygen than incineration. The char will usually melt at the temperatures within the pyrolysis chamber and will be discharged along with a black gravel-like substance, termed fr|t. Advantages of this process are in the lack of air entering the chamber and the resulting snna||ar size of system components. Without air, there is little nitrogen oxide generation and low particulate (soot) formation. There have been many attempts to develop this technology outside a laboratory or a pilot plant. In full- scale demonstrations in the 1970s, it was difficult to maintain a sealed chamber to keep air out/ and waste variability creates problems in maintaining consistent operation. When the pyrolysis gas is fired in a combustion chamber that is part of the system, the system is classified as an incinerator. As shown in Figure B-10, MSVV is shred into a uniform size capable of feeding into the thermal converter, or pyrolysis chamber. The pyrolysis gas generated is fired in a secondary combustion chamber, or thermal oxidizer, and passes through a waste heat boiler for heat recovery. Char drops out the bottom of the pyrolysis chamber for disposal or further processing for recovery of noata|a and other constituents. Although this system is marketed as pyrolysis system, a combustion chamber is necessary for its operation (for destroying organics in the off-gas) and the presence of this chamber classifies the system asanincinerator. Source: Entach. GBB/C08027-01 B-12 August 15, 2008 Water CL Organic Organic MSW Wastec Residues Residues E:ntec h Syngas Kinetic Dryer [:Gasifier asifier Streamer Solid Residue Figure B-9. EnTeoh Process As shown in Figure B-9, MSVV is classified by a o»nnNnobon bag breaker and gravity separator process, termed a Kinetic Streamer. Oversize materials, which are basically inorganic, are directed either to a plastics necyc|mr or a non-plastics recycling station, while the majority of waste (presumably organic) is directed to a dryer to narnovo entrained moisture. The dryer utilizes the latent heat inherent in the organic content of the waste to produce the heat necessary to drive the gasification process. The syngas can be fired in a waste heat- boiler for steam and subsequent electric power production. 1.2.2 Pyrolysis In pyrolysis, an organic waste (MSVV) is heated without oxygen (or air), similar to the generation of coke from coal or charcoal from wood. Both a char and a gas are generated. The gas is burned out in a gaseous phase, requiring much less oxygen than incineration. The char will usually melt at the temperatures within the pyrolysis chamber and will be discharged along with a black gravel-like substance, termed fr|t. Advantages of this process are in the lack of air entering the chamber and the resulting snna||ar size of system components. Without air, there is little nitrogen oxide generation and low particulate (soot) formation. There have been many attempts to develop this technology outside a laboratory or a pilot plant. In full- scale demonstrations in the 1970s, it was difficult to maintain a sealed chamber to keep air out/ and waste variability creates problems in maintaining consistent operation. When the pyrolysis gas is fired in a combustion chamber that is part of the system, the system is classified as an incinerator. As shown in Figure B-10, MSVV is shred into a uniform size capable of feeding into the thermal converter, or pyrolysis chamber. The pyrolysis gas generated is fired in a secondary combustion chamber, or thermal oxidizer, and passes through a waste heat boiler for heat recovery. Char drops out the bottom of the pyrolysis chamber for disposal or further processing for recovery of noata|a and other constituents. Although this system is marketed as pyrolysis system, a combustion chamber is necessary for its operation (for destroying organics in the off-gas) and the presence of this chamber classifies the system asanincinerator. Source: Entach. GBB/C08027-01 B-12 August 15, 2008 Figure B+10. Process Diagram mf a Pyrolysis SysteM12 1.2.3 Plasma Arc Plasma arc technology is a gasification system that uses the intense heat generated by plasma torch todhvethe process. Net energy generation is not established based on Japanese and European experience. It is a pyrolysis- related process where ||tt|m or no oxygen is injected into a reactor. Atypica| unit is shown in Figure B-11' Electric current is passed through a series of torches at the bottom of a reactor, which heat process gas (not shown) to a temperature .in excess of5,OOOoF. This hot gas stream heats waste within the reactor to over 3,500vF and, as air is provided to the system at aldVV-contro||ed rate, some of the waste will burn to help maintain reactor `temperature. At this high temperature, organics within the waste will form elemental compounds, such as hydrogen, oxygen and carbon, with some of this carbon converting to carbon monoxide ormethane. The gas flow will have a high enough heat content to be able to sustain its own combustion and be used as a fuel gas external to the system. The inorganic portion of the waste will form a liquid slag which eventually drops from the reactor into a water bath. As soon as it hits the water it will shatter into a glassy-looking residue orhhtthat may be suitable for fill or use as a construction material. 12 Source: Integrated Energy Systems, Ino, Rornotand, CA. GBB/C08027-01 B-13 August 15, 2008 � PLASMA HEATING SYSTEM aAdAwmttnouT�ET— SYNGAS OUT aASIFICA110N. ZONE AIR PLASMA HEATING SYSTEM Figure B-11~ Cross-Section of a Plasma Arc Furnace 13 1.3 Biological Fuel Production Producing a"fuel" product from organic materials in waste by biological processes is termed biological fuel production. Typically, this fuel product takes the shape of combustible gas or liquid formed when organic nnaheha| in waste breaks down. Decomposition of the organic portion of waste by microorganisms in the absence of oxygen, known as "anaerobic digesting," creates methane /CH*) and other gases in combination with about half the energy of natural gas. This biogaa can be used as a fuel and burned for energy or power production directly. It can also be refined to produce a pipeline-quality gas that is almost pure methane and further processed into a liquid fuel like methanol. 1.3.1 Cellulosic Ethanol Et�a��,e��,�a��t�isu�|�o�u���s�r���� oan' be produced from wood, grasses, or other cellulose containing material, including the organic portion of solid waste. This is referred to as ad|u|msio ethanol. It is chemically identical to ethanol from other sources, such as corn starch or sugar, but has the advantage that the feedstock is |ignoca||u|ooe raw material that is highly abundant and diverse. (The word "cellulosic" simply refers to the source material.) However, it differs in that it requires a greater amount of processing to make the sugar monomers available bothe microorganisms that are typically used to produce ethanol byfermentation. oGanplasma,Atlanta, GA. GBE/CO8027-01 B-14 August 1E,2OO8 According to U.G. Department of Energy studies conducted by the Argonne Laboratories of the University of Chicago, one of the benefits of cellulosic ethanol is that it reduces greenhouse gas emissions (GHG) by 85 percent over reformulated gasoline. By contrast, ethanol from corn, which most frequently uses natural gas to provide energy for the process, may not reduce GHG emissions at all depending on how the starch-based feedstock isproduced. There are five steps to produce ethanol using a biological approach: 1. A "pretreatment" phase to make the |ignooe||uk»aic material, such as wood, straw or solid waste, amenable to hydrolysis, and to remove asmany contaminants aepossible; 2. Cellulose hydrolysis (ma||u|o|ysis) to break down the molecules into sugars; 3. Separation of the sugar solution from the residual rnahaha|s, notably lignin; 4. Microbial fermentation ofthe sugar solution; S. Distillation to produce 99.5 percent pure alcohol. The process is shown graphically in Figure B-12; however, steps 2, 3 and 4 are shown in one stage or process. Abengoa accomplishes these steps in a single 1. Pretreatment The first stage is physical processing of the feedstock: size reduction and removal of contaminants. This is similar to the production of RDF. This is especially important with solid waste where the fermentable portion may only be 60 to 70 percent of the feed. Once the MSVV is physically prepared cellulose, its susceptibility to fermentation is still curtailed by its rigid structure. As the result, an effective additional treatment is needed to liberate the cellulose from the lignin seal and its crystalline structure so as to render it accessible for a subsequent hydrolysis step. A number of pretreatment approaches have been developed to liberate the cellulose and increase its reactabi|ity' To date, the available pretreatment techniques include acid hydrolysis, steam explosion, ammonia fiber expansion, alkaline wet oxidation and ozone pretreatment. Besides effective cellulose liberation, an ideal pretreatment has to minimize the formation of degradation products because of their inhibitory effects on subsequent hydrolysis and fermentation processes. GB8/C08027-01 B+15 August 15, 2008 OEM Figure B-12. Process Flow of the BCyL Biomass Ethanol Plant 14 2. Hydrolysis The cellulose molecules are composed of long chains of sugar molecules. In order to break the maUu|osa down into sugars, the hydrolysis process is employed. Thera are two major cellulose hydrolysis processes: al Acid hydrolysis - dilute add may be used under high heat and high pressure, or more concentrated acid can be used at lower temperatures and pressure. A deorysta|ized cellulosic mixture of acid and sugars reacts in the presence of water to complete individual sugar molecules (hydrolysis). b) Enzymatic hydrolysis - uses several enzymes at various stages of this conversion and has the advantage that |ignoce||u|os|c materials can be hydrolyzed with relatively mild processing conditions, which avoids the formation of byproducts that would otherwise inhibit enzyme activity. These have been utilized singly or in combination to break the cellulose chains into free sugar, which is fermented for alcohol production. 14 Source: Abengoa8ioenergy GBB/C08027-01 8-16 August 15i2OO8 3. Sugar Separation Approximately half nfthe energy value in the cellulosic feedstock is captured in the sugars produced in hydrolysis. Fermentation will be more efficient if this is separated from other compounds, especially lignin. This can be accomplished with membranes. The lignin also contains about half of the energy and can be used as an energy source for the process. 4. Fermentation Once the cellulose has been broken into sugars, microorganisms are used toferment the sugar and produce ethanol. Traditionally, baker's yeast has long been used in the brewing industry to produce ethanol from hexoseo (6-carbon sugar). When |ignooa||u|osic biomass io hydrolyzed to produce sugars, several sugars are produced including ny|oaeand arab|nose[6-carbonsugars). As result, specially engineered microorganisms, mainly yeasts, have been developed and utilized in fuel ethanol production from cellulose. S. Distillation The liquid resulting from fermentation is separated from any solids and heated to vo|aUze the ethyl alcohol which is then condensed. The process is repeated to increase the ethanol concentration. An adsorption technique may be used toremove the remaining water to produce anhydrous ethanol. Because of the concern about using food crops to produce fuels and the potential cost savings, e large number of companies have developed cellulosic ethanol technologies, including: ° Abengoa 0oenergy " AJioo • B|ueRre Ethanol • China Resources Alcohol Corporation [CRAC1 ° Dyadic International, Inc. ° GneenFie|d Ethanol � Gulf Coast Energy ° IogenCorponation * Masoorna ° POETB|onafinery " Range Fuels � SunOpta Inc * Vereniurn Corporation ° Xethano| 1.3.2 KBiogam Roger Haug defines composting as "the biological decomposition and stabilization of organic substrates, under conditions that allow development of thenmophi|io temperatures as a result of biologically produced heat, to produce a final product that isstable, free of pathogens and plant seeds, and can be beneficially applied to land." 15 Composting of MSVV or a portion ofy4SVV such as yard waste is usually carried out in the presence of air (aerobically) to produce a soil amendment and to reduce the amount ofMSVV being deposited in landfills. When composting is done in the absence of air (anaerobically), the biogas produced contains a significant amount 1sRogerT.Haug,ThaPractca|HandbookofCompostEnginaahng,LewisPubUshens,1993. {]BB/C08027-01 8-17 August 15,2OO8 of methane, about 50 percent. To capture this biogao the process must be in a closed vessel. When anaerobic digestion is applied to the organic fraction ofMS\N, the primary purpose of the facility shifts from landfill diversion to biogas production. There are many anaerobic digestion plants both in use today and historically that have been installed to produce and utilize biogasaswell as manage a waste. However, most of these facilities utilize sewage sludge, animal manures and other homogenous wastes as feedstock. Very few utilize »4SVVasafeedstock. It has long been o/rnrnon pnadjoa in Europe to use anaerobic digestion at waste water treatment plants to treat sewage sludge. It has been less common over the same period to use anaerobic digestion to treat industrial effluents and agricultural sludges, although there are a number of examples dating back to the 1950s. In the last ten years or so in Europe, because ofthe introduction of requirement, that the separated organic fraction of MSVV be treated before landfill disposal, anaerobic digestion has been adopted for this purpose. Anaerobic digestion has long been popular in India where a large number of anna|| and simple plants are in use processing farm wastes. Currently, a number ofvendors are offering farm-based systems in both Europe and the United States. The process of producing biogasfnorn y4SVV by anaerobic digestion has similar steps to the production of liquid biofue| discussed above. - [haprooessindudes: 1. A"pretnaatnment" phase to make the organic material more available for digestion by size reduction and to remove recyclable materials and contaminates; 3. Digestion of the organic material in closed vessel by microorganisms; 3. Treatment of the biogas to remove water, compress the gas, and other processes depending on the end use; and 4. Curing of the solid residue from the digestion to produce a compost product which may bemarketable. The longest established anaerobic treatment processes include: ° Anaerobic suspended growth, ° Upflmw and down-flow anaerobic attached growth, ° Fluidized-bed attached growth, ° UoMow anaerobic sludge blanket (uaob), ° Covered anaerobic lagoons, ° Membrane separation anaerobic processes, and ° Dry process anaerobic digestion ofMSVV. The above emerge in process designs, when developed and offered by the technology providers, which are either optimized to: 1. Efficiently remove material (mostly organic) from liquid streams topermit discharge of a treated effluent to a specified water quality standard, and biogas production may be just incidental; or 2' To provide treatment ofa waste material, including plSVV, to make it suitable for diversion away from landfill, with biogas generation optimized for revenue creation, and potential sales of fibrous and liquid fertilizer by-products. []88/C08027-01 B-18 August 15,2OO8 Table B-5 provides a list of vendors that are offering anaerobic digestion systems in Europe and elsewhere. The table categorizes the technologies offered by moisture level, process temperature (mesophilic low temperature and thermophilic high temperature) and number of stages of the process. The U.S. EPA recently published an industry directory for firms offering equipment and services in this technology. 16 , Table B-5. International Anaerobic Digestion and Biogas Vendors Mechanical-Biological-Treatment: A Guide for Decision Makers — Processes, Policies and Markets, Juniper Consultancy Services, 2005 16 Industry Directory for On-Farm Biogas Recovery Systems, U.S. EPA, March 2008. GBB/C08027-01 B-19 August 15, 2008 Anaerobic Digestion 'Technology Provider Wet Single Stage Mesophilic Wet Single-Stage Thermophilic Dry Single-Stage Mesophilic D ry Single-Stage Thermophilic Wet Multi-Stage Mesophilic Wet Multi-Stage Thermophilic 1ArrowBio -V jBiogen TBD JBTA T -V ICAMBI v, jCiTEC TBD iDranco -V lEco Technology JVV Oy TBD Entec Biogas GMBH -V -V GRL -V Farmatic AG TBD i jGrontmij jHaase jHese jHiRAD TBD JISKA jKompogas TBD jKruger ASBioTherm I TBD I 11-incle iOWS (Dranco) -V Passavant -V jPaques TBD IPortagester i !RosRoca -V ISBI jSchmack Biogas AG TBD !Schwarting (Uhde) iValorga Wehrle Mechanical-Biological-Treatment: A Guide for Decision Makers — Processes, Policies and Markets, Juniper Consultancy Services, 2005 16 Industry Directory for On-Farm Biogas Recovery Systems, U.S. EPA, March 2008. GBB/C08027-01 B-19 August 15, 2008 1.3.3 Anaerobic Digestion As applied to the processing of MSVV, anaerobic digestion is a wet treatment process vvhena vvaotm is first pre-sorted and then fed into water tanks. Using agitators, pumps, conveyors and other nnabsha|o handling equipment, MSVV is wetted and dissolved. Metals, glass and other constituents of MSVV that have no affinity for water are eventually discharged from the system into dedicated containers for recycling, further processing or final disposal. The paper, garbage, soluble components, etc., generate "black water" which has a relatively high organic content. This stream is taken to a series of digesters where the time it sits in the chamber, the residence time, will be sufficient to generate an off-gas. The process is shown in the schematic in Figure B-13. � Figure B-13. P�cems�ow��r Anaerobic Digestion Systemm This gas is hdl in methane and other organics and can be burned as a fuel for heating or for electric power generation. The solid residual from the digestion process is similar to compost and can be used as a soil amendment. The process also separates out recyclable materials such as glass and rnata|a. There are many such facilities processing sewage sludge, manure and other homogeneous wastes. ArrovvBio of Haifa, Israel, is an example of a vendor that is offering to construct anaerobic digestion facilities to process MSVV in the United States. They have responded to procurements in Los Angeles and New York. They operate a 300 TPD full-scale o4SVVdemonstration process line in Tel Aviv, illustrated in Figure B-14' 17 The system operates without high temperatures or pressure. In theory, it is en±nsrne|y simple, relying on non-specialized mechanical equipment (pumps, screens, macerators, tanks, conveyors, etc.) for operation. Digestion occurs through the presence of natural microorganisms in MSVV, so charging with specialty or unique bacteria is not necessary. It has a high resistance to upsets because of the scale of its operation, i.e., 300 tons ofMSVV entering the system per day, and any poisons that might threaten the digestion process (as has been experienced with sewage treatment plant digesters) are likely to be of such snna|| fraction that it will have no significant effect on digester cultures. The system is equipment and labor intensive. Although redundancy is normally built into the system, with multiple process lines and duplication of critical pumps, 17 Source: ArrowBio, Haifa, Israel. GB8/C08027-01 B-20 August 15,2OO8 conveyors, etc., additional equipment adds to the number ofseparate process and associated equipment necessary for operation. The Tel Aviv installation of Arrow has thus far experienced many shut-downs due to the presence of troublesome components in the input waste stream. To combat this, a higher level of pre- processing is being implemented so that future applications can operate more Figure B-14.ArrownBilo Facility in Haifa G8B/C08027-01 B-21 August 15,2O08