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1

M, Becker, Klimas Paul C, Chavez James M, Kolb Gregory J, Meinecke W, Deutsche Forschungsanstalt für Luft- und Raumfahrt., and Sandia National Laboratories, eds. Second generation central receiver technologies: A status report. Karlsruhe: C.F. Müller, 1993.

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2

Co, Business Communications, ed. Solar thermal and photovoltaics: World growth markets. Norwalk, CT: Business Communications Co., 1991.

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3

Robert, Moran. Solar thermal and photovoltaics: World growth markets. Norwalk, CT: Business Communications Co., 1996.

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4

S, Mehos Mark, and National Renewable Energy Laboratory (U.S.), eds. Enabling greater penetration of solar power via the use of CSP with thermal energy storage. Golden, CO: National Renewable Energy Laboratory, 2011.

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5

Li, Jing. Structural Optimization and Experimental Investigation of the Organic Rankine Cycle for Solar Thermal Power Generation. Berlin, Heidelberg: Springer Berlin Heidelberg, 2015. http://dx.doi.org/10.1007/978-3-662-45623-1.

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6

Perez-Davis, Marla E. Sensible heat receiver for solar dynamic space power system. [Washington, DC]: National Aeronautics and Space Administration, 1991.

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7

Feuermann, D. Analysis and evaluation of the Paz solar thermal system at the Ben-Gurion Sede Boqer Test Center for Solar Electricity Generating Technologies. [Jerusalem?]: State of Israel, Ministry of Energy & Infrastructure, Division of Research & Development, 1990.

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8

Krauter, Stefan C. W. Solar electric power generation - photovoltaic energy systems: Modeling of optical and thermal performance, electrical yield, energy balance, effect on reduction of greenhouse gas emissions. Berlin: Springer, 2006.

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9

Functional materials for sustainable energy applications. Oxford: Woodhead Pub., 2012.

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10

Forum on New Materials (5th 2010 Montecatini Terme, Italy). New materials II: Thermal-to-electrical energy conversion, photovoltaic solar energy conversion and concentrating solar technologies : proceedings of the 5th Forum on New Materials, part of CIMTEC 2010, 12th International Ceramics Congress and 5th Forum on New Materials, Montecatini Terme, Italy, June 13-18, 2010. Stafa-Zurich, Switzerland: Trans Tech Publications, 2011.

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11

H, Castle C., Reimer R. R, and United States. National Aeronautics and Space Administration., eds. Solar concentrator technology development for space based applications, engineering report, ER-1001: Final report. Cleveland, Ohio: Cleveland State University, Advanced Manufacturing Center, 1995.

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12

Casal, Federico G. Solar Thermal Power Plants. Edited by Paul Kesselring and Carl-Jochen Winter. Berlin, Heidelberg: Springer Berlin Heidelberg, 1987. http://dx.doi.org/10.1007/978-3-642-52281-9.

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13

Illinois. Department of Commerce and Economic Opportunity. Renewable Energy Resources Rebate Program. Springfield, Ill.]: [Illinois] Dept. of Commerce and Economic Opportunity, 2005.

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14

Polischuk, Vladimir. Total energy. ru: INFRA-M Academic Publishing LLC., 2020. http://dx.doi.org/10.12737/1039242.

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The training manual sets out General issues of energy systems, fundamentals of converting various forms of energy (thermal, nuclear, hydraulic, solar, wind, geothermal, etc.) into electrical energy, explained the device, principles of operation, modes of operation of heat and power generating equipment and the main issues related to the transmission and distribution of electric energy. Designed for students enrolled in the direction "Electro - and heat power engineering".
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15

Bailey, Diane. Solar power. Mankato, MN: Creative Education, 2015.

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16

Solar electricity generation. Oxford, U.K: Alpha Science International Ltd., 2015.

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17

Erich, Schneider Klaus, ed. Thermal spraying for power generation components. Weinheim: Wiley-VCH, 2006.

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18

Norton, Brian. Solar Energy Thermal Technology. London: Springer London, 1992.

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19

Kesselring, Paul, and Clifford S. Selvage, eds. The IEA/SSPS Solar Thermal Power Plants. Berlin, Heidelberg: Springer Berlin Heidelberg, 1986. http://dx.doi.org/10.1007/978-3-642-82680-1.

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20

Kesselring, Paul, and Clifford S. Selvage, eds. The IEA/SSPS Solar Thermal Power Plants. Berlin, Heidelberg: Springer Berlin Heidelberg, 1986. http://dx.doi.org/10.1007/978-3-642-82682-5.

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21

Chmielniak, Tadeusz. Diagnostics of new-generation thermal power plants. Gdańsk: Wydawnictwo IMP PAN, 2008.

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22

Subramanian, S. A. Thermal power generation, an overview: Lectures & papers. New Delhi: Research Scheme on Power, Central Board of Irrigation and Power, 1985.

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23

Engineering thermodynamics of thermal radiation for solar power utilization. New York: McGraw Hill, 2010.

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24

Flournoy, Don M. Solar power satellites. New York: Springer, 2012.

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25

Petela, Ryszard. Engineering thermodynamics of thermal radiation for solar power utilization. New York: McGraw Hill, 2010.

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26

(Organization), IT Power, ed. Solar photovoltaic power generation using PV technology. [Manila?]: Asian Development Bank, 1996.

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27

Solar power generation: Technology, new concepts & policy. Boca Raton, FL: CRC Press, 2012.

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28

Eisl, Holger. Photovoltaic cells: Converting government purchasing power into solar power. Flushing, N.Y: CBNS, 1993.

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29

Cabrerizo, Enrique Alcor. Instalaciones de energía solar fotovoltáica. [Madrid?]: Progensa, 1985.

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30

Deambi, Suneel. Solar PV power: A global perspective. New Delhi: The Energy and Resources Institute, 2011.

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31

Alobaid, Falah. Numerical Simulation for Next Generation Thermal Power Plants. Cham: Springer International Publishing, 2018. http://dx.doi.org/10.1007/978-3-319-76234-0.

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32

Organization, Asian Productivity, ed. Thermal power generation and distribution: Achieving higher efficiency. Tokyo, Japan: Asian Productivity Organization, 1988.

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33

Solar Receivers for Thermal Power Generation. Elsevier, 2022. http://dx.doi.org/10.1016/c2020-0-02543-0.

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34

Madhlopa, Amos. Solar Receivers for Thermal Power Generation: Fundamentals and Advanced Concepts. Elsevier Science & Technology Books, 2022.

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35

Madhlopa, Amos. Solar Receivers for Thermal Power Generation: Fundamentals and Advanced Concepts. Elsevier Science & Technology, 2022.

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36

Rez, Peter. Electrical Power Generation: Renewables—Solar and Wind. Oxford University Press, 2017. http://dx.doi.org/10.1093/oso/9780198802297.003.0007.

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Solar and wind power have low power densities. Large areas will be required to generate the electrical energy that we are using right now. These energy sources are intermittent, although sunshine is reasonably predictable in desert climates. Even in these ideal locations, fixed rooftop PV can only be used to meet a relatively small proportion of total electrical demand. Solar thermal with molten salt storage has a higher efficiency, and can better match electrical demands in these places. For wind turbines to generate their advertised or rated power, winds have to be blowing at about 12 m/sec (20 kt or 24 mph). In the United States, except in mountain passes and the Texas panhandle, this does not appear to happen very often. A simple test of whether a given renewable energy source is practical is to check whether it can meet the electrical demands of a single house.
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37

Control Of Solar Energy Systems. Springer, 2012.

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38

Berenguel, Manuel, Eduardo F. F. Camacho, Francisco R. Rubio, and Diego Martínez. Control of Solar Energy Systems. Springer, 2014.

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39

Bringing solar thermal technology to the marketplace: A report to the US Congress. Washington, DC: U.S. Dept. of Energy, Assistant Secretary for Conservation and Renewable Energy, 1988.

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40

Purohit, Ishan, and Pallav Purohit. Technical and Economic Potential of Concentrating Solar Thermal Power Generation in India. Elsevier, 2017. http://dx.doi.org/10.1596/29300.

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41

Li, Jing. Structural Optimization and Experimental Investigation of the Organic Rankine Cycle for Solar Thermal Power Generation. Springer, 2016.

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42

PowerTherm: A photovoltaic-thermal hybrid commercial roofing system. [Sacramento]: California Energy Commission, 2002.

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43

Li, Jing. Structural Optimization and Experimental Investigation of the Organic Rankine Cycle for Solar Thermal Power Generation. Springer Berlin / Heidelberg, 2014.

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44

Li, Jing. Structural Optimization and Experimental Investigation of the Organic Rankine Cycle for Solar Thermal Power Generation. Springer, 2014.

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45

Building Integrated Photovoltaic Thermal Systems For Sustainable Developments. Royal Society of Chemistry, 2010.

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46

Renewable energy technology: A review of legislation, research, and trade. Washington, D.C: Library of Congress, Congressional Research Service, 1987.

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47

Krauter, Stefan C. W. Solar Electric Power Generation - Photovoltaic Energy Systems: Modeling of Optical and Thermal Performance, Electrical Yield, Energy Balance, Effect on Reduction of Greenhouse Gas Emissions. Springer, 2006.

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48

Krauter, Stefan C. W. Solar Electric Power Generation - Photovoltaic Energy Systems: Modeling of Optical and Thermal Performance, Electrical Yield, Energy Balance, Effect on Reduction of Greenhouse Gas Emissions. Springer Berlin / Heidelberg, 2010.

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49

Krauter, Stefan C. W. Solar Electric Power Generation - Photovoltaic Energy Systems: Modeling of Optical and Thermal Performance, Electrical Yield, Energy Balance, Effect on Reduction of Greenhouse Gas Emissions. Springer London, Limited, 2007.

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50

Edwards, P. P., John A. Kilner, S. J. C. Irvine, and Stephen J. Skinner. Functional Materials for Sustainable Energy Applications. Elsevier Science & Technology, 2016.

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