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1

L, Cler Gerald, and Construction Engineering Research Laboratories (U.S.), eds. Assessment of cogeneration technologies for use at Department of Defense installations. US Army Corps of Engineers, Construction Engineering Research Laboratories, 1996.

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2

George, Jacob. Household energy use pattern with levels of development: Factors affecting adoption of renewable technologies. National Institute of Rural Development, 1991.

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3

Canada Mortgage and Housing Corporation., ed. Strategies for reducing building energy use via innovative building envelope technologies. CMHC, 2004.

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4

Macknick, Jordan. Overview of opportunities for co-location of solar energy technologies and vegetation. National Renewable Energy Laboratory, 2013.

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5

Commission, European, ed. Fostering the use of clean coal technologies: The CARNOT programme. Office for Official Publications of the European Communities, 2001.

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6

Ludger, Gerdesmeyer, and Weil Lowell Scott, eds. Extracorporeal shock wave therapy: Technologies, basics, clinical results. Data Trace Pub., 2007.

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7

United States. Department of Energy and United States. Department of Energy. Office of Scientific and Technical Information, eds. Optimize deployment of renewable energy technologies for government agencies, industrial facilities, and military installations: NREL offers proven tools and resources to reduce energy use and improve efficiency. National Renewable Energy Laboratory, 2010.

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8

1931-, Branover Herman, and Israel. Miśrad ha-energyah ṿeha-tashtit. Agaf meḥḳar u-fituaḥ., eds. Techno-economical study of solar energy technologies in Russia and in Israel and development of conceptions for the use of solar energy in various fields. State of Israel, Ministry of Energy and Infrastructure, Research and Development Division, 1993.

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9

Silberglitt, R. S. Strengthening the grid: Effect of high-temperature superconducting power technologies on reliability, power transfer capacity, and energy use. Rand, 2002.

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10

European Seminar on Improved Technologies for the Rational Use of Energy in the Glass Industry (1992 Wiesbaden, Germany). European Seminar on Improved Technologies for the Rational Use of Energy in the Glass Industry: A Thermie programme action, Wiesbaden, Fed. Rep. of Germany, 4-6 February 1992 : proceedings. Fachinformationszentrum Karlsruhe, 1993.

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11

United States. Department of Energy. Office of Energy Efficiency and Renewable Energy. Enabling technologies: Supporting the development and use of innovative, energy-efficient, and environmentally friendly products and processes : advanced industrial, engineered ceramics/continuous fiber ceramic composites, industrial combustion, sensors and controls. U.S. Department of Energy, Office of Industrial Technologies, Energy Efficiency and Renewable Energy, 1999.

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12

Kazeykin, Valeriy, and Vladimir Tolstolugov. Theory and practice of implementation of high energy efficient technologies in construction based on Thermaron heat generators. INFRA-M Academic Publishing LLC., 2020. http://dx.doi.org/10.12737/1146805.

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The monograph summarizes the legislative and regulatory framework, as well as shows the theory and practice of energy saving and energy efficiency development in Russia and in the world with the actualization of the use of a breakthrough domestic high-energy-efficient technology based on molecular heat generators Termaron. These devices use the principles of hydrolysis, cavitation, magnetism, resonance and synergy of these processes. The results of research conducted with the participation of specialists from Dubna state University, as well as the practice of using the Termaron ATP, showed tha
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13

European Seminar on New Technologies for the Rational Use of Energy in Greenhouse Horticulture in Northern Europe (1992 Hague, Netherlands). Proceedings, European Seminar New Technologies for the Rational Use of Energy in Greenhouse Horticulture in Northern Europe: Papers presented at European Seminar on New Technologies for the Rational Use of Energy in Greenhouse Horticulture in Northern Europe : The Hague, The Netherlands, 13-14 May 1992. Secretariat of ISHS, 1992.

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14

Office, General Accounting. Fossil fuels: Outlook for utilities' potential use of clean coal technologies : report to the chairman, Subcommittee on Energy and Power, Committee on Energy and Commerce, House of Representatives. GAO, 1990.

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15

Office, General Accounting. Nuclear waste: Further actions needed to increase the use of innovative cleanup technologies : report to Congressional committees. The Office, 1998.

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16

Office, General Accounting. Nuclear waste: Further actions needed to increase the use of innovative cleanup technologies : report to Congressional committees. The Office, 1998.

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17

Office, General Accounting. Nuclear waste: Further actions needed to increase the use of innovative cleanup technologies : report to congressional commmittees. The Office, 1998.

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18

Office, General Accounting. Nuclear waste: Further actions needed to increase the use of innovative cleanup technologies : report to Congressional committees. The Office, 1998.

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19

Commission of the European Communities. Directorate-General Energy. European seminar on New technologies for the rational use of energy in the textile industry in Europe: Proceedings, A Thermie Programme Action for Industry, Milan, Italy, 16-17-18 October 1991. Commission of the European Communities, 1991.

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20

Morozko, Natalya, and Valyentina Didyenko. Financial relations small business energy complex. INFRA-M Academic Publishing LLC., 2016. http://dx.doi.org/10.12737/21561.

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The paper deals with the peculiarities of small organizations in the energy sector, taking into account the principles of effective financial cooperation of small businesses with a variety of large and medium-sized structures. We studied the experience of the financial relations of countries with developed economies on a set of market tools and in business management in the energy sector. The analysis of the financial condition of small organizations and energy sector. Defined financial planning tools of organizations that allow to carry out the relationship of financial planning practices wit
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21

Anohin, Yuriy, Boris Narkevich, and Nikolay Shimanovskiy. Application of nuclear and radiation technologies in medicine. INFRA-M Academic Publishing LLC., 2023. http://dx.doi.org/10.12737/1882570.

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The textbook contains information on new technologies of radiation diagnostics and therapy of oncological diseases, new and promising therapeutic and diagnostic radiopharmaceuticals, new directions in nuclear medicine in Russia and in developed foreign countries, as well as on the coordination of efforts of international organizations to maintain and improve the health of the population of different countries.
 The active activity of the Rosatom State Corporation on the introduction and development of programs for the non-energy use of nuclear and radiation technologies to improve the hea
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22

United States. Congress. House. Committee on Science, Space, and Technology (2011). Subcommittee on Energy and Environment. Review of DOE Vehicle Technologies Program management and activities: Assuring appropriate and effective use of taxpayer funding : hearing before the Subcommittee on Energy and Environment, Committee on Science, Space, and Technology, House of Representatives, One Hundred Twelfth Congress, second session, Thursday, July 26, 2012. U.S. Government Printing Office, 2012.

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23

Priya, Shashank, and Daniel J. Inman, eds. Energy Harvesting Technologies. Springer US, 2009. http://dx.doi.org/10.1007/978-0-387-76464-1.

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24

Hanjalić, K., R. Van de Krol, and A. Lekić, eds. Sustainable Energy Technologies. Springer Netherlands, 2008. http://dx.doi.org/10.1007/978-1-4020-6724-2.

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25

Dincer, Ibrahim, Dogan Erdemir, Muhammed Iberia Aydin, Huseyin Karasu, and Greg Vezina. Ammonia Energy Technologies. Springer International Publishing, 2022. http://dx.doi.org/10.1007/978-3-031-13532-3.

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26

Inman, D. J., and Shashank Priya. Energy harvesting technologies. Springer, 2009.

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27

P, Garg H., Datta Gouri, Gupta, Raj, of British Council Division., Indian Institute of Technology, Delhi., Great Britain. High Commission (India). British Council Division (New Delhi, India), and Indo-British Workshop on Renewable Energy Technologies (1995 : Indian Institute of Technology), eds. Renewable energy technologies. Indian Institute of Technology, 1997.

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28

Library of Congress. Congressional Research Service, ed. Renewable energy technologies. Congressional Research Service, Library of Congress, 1992.

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29

Goyal, Megh R., and Manoj K. Ghosal. Potential Use of Solar Energy and Emerging Technologies in Micro Irrigation. Taylor & Francis Group, 2016.

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30

Goyal, Megh R., and Manoj K. Ghosal. Potential Use of Solar Energy and Emerging Technologies in Micro Irrigation. Apple Academic Press, Incorporated, 2016.

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31

Goyal, Megh R., and Manoj K. Ghosal. Potential Use of Solar Energy and Emerging Technologies in Micro Irrigation. Apple Academic Press, Incorporated, 2016.

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32

Goyal, Megh R. Potential Use of Solar Energy and Emerging Technologies in Micro Irrigation. Apple Academic Press, 2016. http://dx.doi.org/10.1201/9781315366272.

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33

Brown, Marilyn A. A Strategy for Accelerating the Use of Energy Conserving Building Technologies. Oak Ridge National Laboratory, 1985.

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34

Goyal, Megh Raj, and M. K. Ghosal. Potential Use of Solar Energy and Emerging Technologies in Micro Irrigation. Taylor & Francis Group, 2021.

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35

Kumar, Mulmudi Hemant. Potential Use of Solar Energy and Emerging Technologies in Micro Irrigation. Arcler Education Inc, 2020.

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36

Kumar, Mulmudi Hemant. Potential Use of Solar Energy and Emerging Technologies in Micro Irrigation. Arcler Education Inc, 2020.

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37

Rocha, Jeltsyn. Potential Use of Solar Energy and Emerging Technologies in Micro Irrigation. Scitus Academics LLC, 2018.

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38

Potential Use of Solar Energy and Emerging Technologies in Micro Irrigation. Apple Academic Press, Incorporated, 2016.

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39

Extracorporeal shockwave therapy: Technologies, basics, clinical results. Data Trace Pub., 2006.

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40

Energy end-use data collection methodologies and the emerging role of digital technologies. OECD, 2020. http://dx.doi.org/10.1787/afeb5980-en.

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41

Olawuyi, Damilola S. Advancing Innovations in Renewable Energy Technologies as Alternatives to Fossil Fuel Use in the Middle East. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198822080.003.0020.

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Despite increasing political emphasis across the Middle East on the need to transition to lower carbon, efficient, and environmentally responsible energy systems and economies, legal innovations required to drive such transitions have not been given detailed analysis and consideration. This chapter develops a profile of law and governance innovations required to integrate and balance electricity generated from renewable energy sources (RES-E) with extant electricity grid structures in the Middle East, especially Gulf countries. It discusses the absence of renewable energy laws, the lack of leg
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42

Hyysalo, Sampsa, and Jouni K. Juntunen. User Innovation and Peer Assistance in Small-Scale Renewable Energy Technologies. Edited by Debra J. Davidson and Matthias Gross. Oxford University Press, 2018. http://dx.doi.org/10.1093/oxfordhb/9780190633851.013.22.

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There have been many attempts to include citizens as more active players in the proliferation of renewable energy technologies. However, the roles that citizen users play in renewables proliferation are not limited to adoption, but include technological domestication, innovation, and market creation. This chapter first reviews innovation by citizen users in the early phases of small-scale renewable energy technologies (S-RET) technology development in wind turbines, solar collectors, and low-energy housing. It then examines user innovation and peer assistance in the later phases of diffusion i
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43

Jelley, Nick. A Dictionary of Energy Science. Oxford University Press, 2017. http://dx.doi.org/10.1093/acref/9780191826276.001.0001.

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Over 700 entriesThis new dictionary covers terms related to energy technologies and their impact on the world’s energy use. It sets out the principles behind each technology’s operation, as well as its economic, environmental, and social impacts. Coverage includes energy demand and conservation, electricity generation and distribution, energy storage, renewable energy and fossil fuel technologies, nuclear energy, environmental issues, energy and society, and biographies of eminent energy scientists. The text is complemented by illustrations, a chronology, and global statistics on energy use.Th
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44

Development of energy screening criteria for use of natural gas-fueled technologies in the Department of Defense: Preliminary investigation. US Army Corps of Engineers, Construction Engineering Research Laboratories, 1996.

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45

Eversole, Finley, and Karl Maret. Energy Medicine Technologies: Ozone Healing, Microcrystals, Frequency Therapy, and the Future of Health. Inner Traditions International, Limited, 2013.

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46

Eversole, Finley, and Karl Maret. Energy Medicine Technologies: Ozone Healing, Microcrystals, Frequency Therapy, and the Future of Health. Inner Traditions International, Limited, 2013.

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47

Increasing the competitiveness of small and medium-sized enterprises through the use of environmentally sound technologies: Assessing the potential for the development of second-generation biofuels in the ESCWA region. United Nations, 2009.

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48

Goldemberg, José. Energy. Oxford University Press, 2012. http://dx.doi.org/10.1093/wentk/9780199812905.001.0001.

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Without a doubt, the topic of energy--from coal, oil, and nuclear to geothermal, solar and wind--is one of the most pressing across the globe. It is of paramount importance to policy makers, economists, environmentalists, and industry as they consider which technologies to invest in, how to promote use of renewable energy sources, and how to plan for dwindling reserves of non-renewable energy. In Energy: What Everyone Needs to Know, José Goldemberg, a nuclear physicist who has been hailed by Time magazine as one of the world's top "leaders and visionaries on the environment," takes readers thr
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49

Collin, Robin Morris, and Robert William Collin, eds. Energy Choices. Praeger, 2014. http://dx.doi.org/10.5040/9798216966913.

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A must-read for anyone seeking to understand the complex issues surrounding energy generation and use, this one-of-a-kind resource clarifies everything from the basic structure of the industry to the potential—and risks—of new technologies. Energy is a critical public concern in the 21st century, spurring demand for reliable, easy-to-understand information on subjects as varied as the drivers of prices, the potential for new technologies, the implications of a more diverse energy-supply portfolio, and the way government policies affect the energy marketplace. All of those issues and more are c
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50

Collin, Robin Morris, and Robert William Collin, eds. Energy Choices. Praeger, 2014. http://dx.doi.org/10.5040/9798216966906.

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A must-read for anyone seeking to understand the complex issues surrounding energy generation and use, this one-of-a-kind resource clarifies everything from the basic structure of the industry to the potential—and risks—of new technologies. Energy is a critical public concern in the 21st century, spurring demand for reliable, easy-to-understand information on subjects as varied as the drivers of prices, the potential for new technologies, the implications of a more diverse energy-supply portfolio, and the way government policies affect the energy marketplace. All of those issues and more are c
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