Books on the topic 'Waste heat recovery chiller'

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1

Dorgan, Chad B. Chiller heat recovery application guide. Atlanta, Ga: American Society of Heating, Refrigerating, and Air-Conditioning Engineers, 1999.

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2

Goldstick, Robert. Principles of waste heat recovery. Atlanta, Ga: Fairmont Press, 1986.

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3

Albert, Thumann, ed. Principles of waste heat recovery. Hemel Hempstead: Prentice-Hall, 1986.

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4

Meeting, American Society of Mechanical Engineers Winter. Heat transfer in waste heat recovery and heat rejection systems. New York (345 E. 47th St., New York 10017): ASME, 1986.

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5

Cole, William E. Fluidized-bed waste-heat recovery system development. Waltham, Mass: Thermo Electron Corp., 1987.

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6

Woodward, John B. Engine waste heat thermodynamics. Ann Arbor, MI: Sarah Jennings Press, 1985.

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7

Gettings, Mike. Heat recovery from high temperature waste gas streams. [London]: Energy Efficiency Office, 1987.

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8

Quantification process for waste heat recovery project - streamlined. Edmonton: Alberta Environment, 2007.

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9

Alberta. Scientific and Engineering Services and Research Division. Methods for the recovery and reuse of waste heat in some commercial operations. Edmonton, AB: Alberta Energy, Scientific and Engineering Services and Research Division, 1988.

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10

Patch, Keith D. Fluidized-bed waste-heat recovery system development: Final report. [Oak Ridge, Tenn: Office of Scientific and Technical Information, 1988.

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11

Junior, Christine, Daniel Jänsch, and Oliver Dingel, eds. Energy and Thermal Management, Air Conditioning, Waste Heat Recovery. Cham: Springer International Publishing, 2017. http://dx.doi.org/10.1007/978-3-319-47196-9.

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12

Savoie, Martin J. Air pollution aspects of modular heat-recovery incinerators. Champaign, Ill: US Army Corps of Engineers, Construction Engineering Research Laboratory, 1986.

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13

Rebello, Wilfred. Cost/performance analysis of high temperature waste heat recovery equipment: Final report. Washington, D.C: U.S. Dept. of Energy, Office of Industrial Programs, 1987.

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14

Specified gas emitters regulation: Quantification protocol for waste heat recovery projects. [Edmonton]: Alberta Environment, 2007.

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15

Dixon, J. Design of waste heat boilers for the recovery of energy from arc furnace waste gases. Luxembourg: Commission of the European Communities, 1985.

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16

Verspyck, R. J. Evaluation of a Dynatherm waste heat recovery system installed on a Poensgen tunnel washer. Harrogate: FabricCare Research Association, 1987.

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17

R, Davis L., Sohal M. S, Sengupta S. 1948-, and American Society of Mechanical Engineers. Heat Transfer Division., eds. Waste heat utilization: Presented at the Winter Annual Meeting of the American Society of Mechanical Engineers, San Francisco, California, December 10-15, 1989. New York, N.Y: American Society of Mechanical Engineers, 1989.

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18

Wzorek, Zbigniew. Odzysk zwia̜zków fosforu z termicznie przetworzonych odpadów i ich zastosowanie jako substytutu naturalnych surowców fosforowych. Kraków: Wydawn. PK, 2008.

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19

Committee, CAPCOA/ARB/EPA Cogeneration. Cogeneration and resource recovery permitting handbook. [California?]: The Committee, 1986.

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20

Minerals, Metals and Materials Society. Meeting, Minerals, Metals and Materials Society, and Minerals, Metals and Materials Society. Extraction and Processing Division, eds. Energy Technology 2011: Carbon dioxide and other greenhouse gas reduction metallurgy and waste heat recovery : proceedings of a symposium sponsored by the Energy Committee of the Extraction and Processing Division of TMS (The Minerals, Metals & Materials Society) held during the TMS 2011 Annual Meeting & Exhibition, San Diego, California, USA, February 27-March 3, 2011. Hoboken, N.J: John Wiley & Sons Inc. [for] TMS, 2011.

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21

Heat Exchangers for Waste Heat Recovery. MDPI, 2020. http://dx.doi.org/10.3390/books978-3-03936-476-3.

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22

Waste heat recovery heat pipe, Inventronics Ltd. [Ottawa]: Energy, Mines and Resources, Canada, 1985.

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23

Jouhara, Hussam. Waste Heat Recovery in Process Industries. Wiley & Sons, Limited, John, 2021.

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24

Programme, Best Practice, Great Britain. Energy Efficiency Office., David Reay and Associates, and Osprey Environmental Technologies Ltd, eds. Waste heat recovery in the process industries. Harwell: Energy Efficiency Office, 1996.

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25

New York State Energy Research and Development Authority., ed. A guide to industrial heat pumps for waste heat recovery. [Albany, N.Y.]: New York State Energy Research and Development Authority, 1985.

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26

W, Cole, ed. Fluidized-bed waste-heat recovery system development: Reports. U.S. Dept. of Energy, 1988.

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27

Great Britain. Department of the Environment., Harwell Laboratory. Energy TechnologySupport Unit., and Linden Consultants, eds. Waste heat recovery from high temperature gas streams. Harwell: ETSU, 1996.

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28

Wors<179>e-Schmidt, P., and K. S<179>rensen. Multi-stage Solid Absorption Heat Transformers for Recovery of Industrial Waste Heat. European Communities / Union (EUR-OP/OOPEC/OPOCE), 1989.

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29

1932-, Lee Samuel S., and Sengupta Subrata 1948-, eds. Proceedings of the third Conference on Waste Heat Management and Utilization, May 11-13, 1981, Miami Beach, Florida. [Coral Gables, Fla.]: Mechanical Engineering Dept., University of Miami, 1985.

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30

Lasala, Silvia, ed. Organic Rankine Cycles for Waste Heat Recovery - Analysis and Applications. IntechOpen, 2020. http://dx.doi.org/10.5772/intechopen.77463.

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31

Institute of Energy. South Coast Branch., ed. Waste heat: Recovery and utilisation symposium, Portsmouth, 25th September, 1985. Portsmouth: Institute of Energy, South Coast Branch, 1985.

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32

W, Schanche Gary, and Construction Engineering Research Laboratory, eds. The potential role of heat-recovery incineration (HRI) in managing Army installation solid waste. Champaign, Ill: US Army Corps of Engineers, Construction Engineering Research Laboratory, 1992.

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33

Corporation, RIT Research, and New York State Energy Research and Development Authority., eds. Case-Hoyt/Rochester Corporation printing waste heat recovery project: Final report. Albany, N.Y: The Authority, 1987.

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34

Great Britain. Energy Efficiency Office. and Atomic Energy Research Establishment. Energy Technology Support Unit., eds. Industrial heat recovery: The availability of waste heat in eight UK high temperature process industries. Newmarket: Energy Publications, 1985.

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35

Zhang, Jianhua, and Jinliang Xu. Modelling and Control of Organic Rankine Cycle Based Waste Heat Recovery Systems. Elsevier Science & Technology Books, 2019.

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36

Burch, David W. A systems approach to financial appraisal of greenhouse heating with power plant cooling water. 1985.

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37

Krishnan, R., G. R. Breag, and A. P. Robinson. Wood Carbonization Unit: Design & Development of a Prototype with Recovery of Waste Heat. Hyperion Books, 1992.

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38

Great Britain. Energy Efficiency Office., ed. Guidance notes for the implementation of heat recovery from high temperature waste gas streams. Energy Efficiency Office, Department of Energy, 1990.

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39

Guinn, Gerald R. Technologies and applications of industrial heat pumps for recovery of waste heat: A manual to improve the energy effic. Alabama Dept. of Economic and Community, 1988.

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40

Neelameggham, Neale R., Mark Jolly, Cynthia K. Belt, Yurko, and Ramana G. Reddy. Energy Technology 2011: Carbon Dioxide and Other Greenhouse Gas Reduction Metallurgy and Waste Heat Recovery. Wiley & Sons, Incorporated, John, 2011.

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41

Neelameggham, Neale R., Mark Jolly, Cynthia K. Belt, Yurko, and Ramana G. Reddy. Energy Technology 2011: Carbon Dioxide and Other Greenhouse Gas Reduction Metallurgy and Waste Heat Recovery. Wiley & Sons, Incorporated, John, 2011.

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42

Washington (State). Dept. of Ecology., ed. Recovering heat energy while burning dangerous waste: The regulatory status of a "unit.". [Olympia]: Washington State Dept. of Ecology, 1994.

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43

Appc, Cda, and Odnri. Proceedings of a Workshop on Coconut Shell Carbonization/Waste Heat Recovery, Colombo, Sri Lanka, September 1989. Hyperion Books, 1991.

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44

Junior, Christine, Daniel Jänsch, and Oliver Dingel. Energy and Thermal Management, Air Conditioning, Waste Heat Recovery: 1st ETA Conference, December 1-2, 2016, Berlin, Germany. Springer, 2018.

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45

Industrial utilization of heat exchangers for waste heat recovery in New York State: Final report : prepared for New York State Energy Research and Development Authority, Project Manager: David Wentworth. [Albany, N.Y.?: The Authority?], 1985.

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46

Regional Workshop on Waste Heat Recovery Technology in Coconut Processing (1989 Colombo). Report of the APCC\CDA\ODNRI Regional Workshop on Waste Heat Recovery Technology in Coconut Processing: 20-22 September 1989 Columbo, Sri Lanka. Asian & Pacific Coconut Community, 1989.

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47

Bauer, G. E. W. Spin Caloritronics. Oxford University Press, 2017. http://dx.doi.org/10.1093/oso/9780198787075.003.0009.

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This chapter focuses on spin caloritronics, the field combining thermoelectrics with spintronics and nanomagnetism. Spin caloritronics is concerned with new physics related to spin, charge, and entropy/energy transport in materials and nanoscale structures and devices. Heat and spin effects are also coupled by the dissipation and noise associated with magnetization dynamics. Spin caloritronics lead to low power nan-scale devices and provide new strategies for waste heat recovery.
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48

Commercial Vehicles 2021. VDI Verlag, 2021. http://dx.doi.org/10.51202/9783181023808.

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Contents Ways to achieve Zero Emission ZF E-Mobility products and software for commercial vehicles ..... 1 Thermoelectric generators for heavy-duty vehicles as an economical waste heat recovery system ..... 17 Hybridization of heavy duty trucks – Market analysis and technology for high voltage as well as low voltage solutions ..... 33 Development processes and methods Lightweight construction and cost reduction – a lean, agile MSCDPS® product development process ..... 43 eDrive & Fuel Cell powertrain systems engineering for commercial vehicles ..... 55 Fatigue development of a 10x10 commercial vehicle frame using dynamic and/or strength simulation, virtual iteration and component testing together with measurement data acquisition ..... 73 Data-driven selection of vehicle variants for the E/E integration test – Increasing variants and complex technology versus test coverage ..... 81 Hydrogen propulsion High performance and efficiency hydrogen engine using westport fuel systems’ Commercially available HPDI fuel system ..... 97 E/E architecture and operating strategy for fuel-cell trucks – Challenges...
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