Waste Heat to Energy Tech Opportunities in US Industry

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END NOTES 1 Turner, W., and Doty, S., Energy Management Handbook, p. 193, 2006 2 US DOE EIA, Annual Energy Review 2006 3 Energetics, Energy Use, Loss, and Opportunities Analysis: U.S Manufacturing & Mining, p. 17, 2004 4 PNNL, Opportunity Analysis for Recovering Energy from Industrial Waste Heat and Emissions, 2006 5 US EPA, Industrial Waste Heat Recovery and the Potential for Emissions Reduction, Volume 1, Main Report, 1984 6 Cook, E., The Flow of Energy in an Industrial Society. Scientific American 225(4), pp. 135­141, 1971 7 Based on 1984 energy consumption reported by DOE EIA, Annual Energy Review 2006 8 Goldstick, R., Principles of Waste Heat Recovery, Atlanta, GA: The Fairmont Press, Inc., 1986 9 Note: other sources use slightly different temperature ranges. For example, Turner 2006 classifies the temperature ranges as high: 1,100­3,000o F, medium: 400­1,100o F, and low: 50­400o F. 10 Peters, M. and Timmerhaus, K., Plant Design and Economics for Engineers, New York, McGraw­Hill, p.661, 2003 11 Hashemi, Reza, and Brown, Robert L., Heat Exchanger Fouling Causes Problems in Gas and Liquid Systems, Presented to the American Filtration Society Seminar, Chicago, Illinois, 1992 12 US DOE, Use Feedwater Economizers for Waste Heat Recovery, Energy Tips­Steam, 2006 13 Turner, p. 212 14 Turner, p. 208 15 Hauck Manufacturing Company, personal communication, 2007 16 Energy Research Company, Lexington Stack Melter, http://www.er­co.com/con_lex.htm, November 2007 17 International Energy Agency, CADDET, A Power Generating System by Low­temperature Waste Heat Recovery, http://lib.kier.re.kr/caddet/ee/R435.pdf, September 2002 18 Goldstick, pp. 89­90 19 Liu, Paul K.T., Gas Separations using Ceramic Membranes: Final Project Report, Prepared for the United States Department of Energy, January 5, 2006 20 Erickson, D.C., Anand, G., and Kyung, I., Heat Activated Dual Function Absorption Cycle, ASHRAE­SYMP­ 00138, New Orleans, Louisiana, 2004 21 Duffy, D., Better Cogeneration through Chemistry: the Organic Rankine Cycle, Distributed Energy, November/ December 2005, SOWA and Distributed Energy 22 Dutch Foundation for Applied Water Research (STOWA), Organic Rankine Cycle for Electricity Generation 23 STOWA, Organic Rankine Cycle for Electricity Generation, Selected Technologies, http://www.stowa­ selectedtechnologies.nl/Sheets/index.html, 2007 24 Duffy, D., Better Cogeneration through Chemistry: the Organic Rankine Cycle, Distributed Energy, November/ December 2005, SOWA and Distributed Energy 25 Heidelberg Cement, Organic Rankine Cycle Method, http://www.heidelbergcement.com/global/en/company/products_innovations/innovations/orc.htm, 2007 26IEA, Centre for the Analysis and Dissemination of Demonstrated Energy Technologies (CADDET), A Power Generating System for Low­temperature Heat Recovery, 2002 27 Ball, L. Presentation at Utah Geothermal Work Group Meeting, October 2005 28 IEA CADDET, 2002 29 BCS, Engineering Scoping Study of Thermoelectric Generator Packages for Industrial Waste Heat Recovery, 2006 30 BCS, Engineering Scoping Study, p.4, 2006 31 BCS, Engineering Scoping Study, pp. 15­16, 2006 32 BCS, Engineering Scoping Study, pp. 15­16, 2006 33 BCS, Engineering Scoping Study, pp. 15­16, 2006 34 BCS, Engineering Scoping Study, pp. 15­16, 2006 35 PNNL, Opportunity Analysis for Recovering Energy from Industrial Waste Heat and Emissions, p. 117, 2006 36 Nichols, G. and Saxton, P., Thermophotovoltaic Emitter Material Selection and Design, Report prepared for US DOE, 1997 37 US DOE EIA Annual Energy Outlook 2007, Supplemental Tables. Total adjusted to include electricity generation and transmission losses. 68 ­

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