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1

Hoyle, Russell. Thermodynamic cycles and processes. U.M.I., 1988.

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2

Wu, Chih. Gas closed system cycles. Nova Science Publishers, 2009.

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3

Invernizzi, Costante Mario. Closed Power Cycles: Thermodynamic Fundamentals and Applications. Springer London, 2013.

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4

K, Kamilov I., and Fatakhov M. M, eds. Sbornik nauchnykh trudov po termodinamicheskim t︠s︡iklam Ibadullaeva. Nauka, 2008.

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5

United States. National Aeronautics and Space Administration., ed. ANL-RBC: A computer code for the analysis of Rankine bottoming cycles, including system cost evaluation and off-design performance. National Aeronautics and Space Administration, 1986.

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6

United States. National Aeronautics and Space Administration., ed. ANL-RBC: A computer code for the analysis of Rankine bottoming cycles, including system cost evaluation and off-design performance. National Aeronautics and Space Administration, 1986.

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7

J, Bitteker L., Jones J. E, and George C. Marshall Space Flight Center., eds. Prospects for nuclear electric propulsion using closed-cycle magnetohydrodynamic energy conversion. National Aeronautics and Space Administration, George C. Marshall Space Flight Center, 2001.

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8

Y, Hwang S., and United States. National Aeronautics and Space Administration., eds. Cyclic creep analysis from elastic finite-element solutions. National Aeronautics and Space Administration, 1986.

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9

United States. National Aeronautics and Space Administration., ed. "Composites research in support of the NASP Institute for composites (NIC)": NCC3-218 period covered, June 1, 1991 through August 31, 1994. National Aeronautics and Space Administration, 1994.

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10

H, Levack Daniel J., Nixon Robert F, and United States. National Aeronautics and Space Administration., eds. Advanced low-cost O₂/H₂ engines for the SSTO application. American Institute of Aeronautics and Astronautics, 1994.

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11

H, Levack Daniel J., Nixon Robert F, and United States. National Aeronautics and Space Administration., eds. Advanced low-cost O₂/H₂ engines for the SSTO application. American Institute of Aeronautics and Astronautics, 1994.

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12

H, Levack Daniel J., Nixon Robert F, and United States. National Aeronautics and Space Administration., eds. Advanced low-cost O₂/H₂ engines for the SSTO application. American Institute of Aeronautics and Astronautics, 1994.

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13

United States. Dept. of Energy. Division of Buildings and Community Systems. and Lewis Research Center, eds. Overview of free-piston Stirling SP-100 activities at the NASA Lewis Research Center. National Aeronautics and Space Administration, Lewis Research Center, 1986.

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14

United States. Dept. of Energy. Division of Buildings and Community Systems. and Lewis Research Center, eds. Overview of free-piston Stirling SP-100 activities at the NASA Lewis Research Center. National Aeronautics and Space Administration, Lewis Research Center, 1986.

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15

Center, Ames Research, ed. Qualitative models for space system engineering: Final report. National Aeronautics and Space Administration, 1990.

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16

Cole, G. H. A. Thermal power cycles. E. Arnold, 1991.

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17

Kaushik, Shubhash C., Sudhir K. Tyagi, and Pramod Kumar. Finite Time Thermodynamics of Power and Refrigeration Cycles. Springer International Publishing, 2017. http://dx.doi.org/10.1007/978-3-319-62812-7.

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18

Kosowski, Krzysztof. Ship turbine power plants: Fundamentals of thermodynamical cycles. Foundation for the Promotion of Maritime Industry, 2000.

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19

Cole, G. H. A. Thermodynamics in engineering and physical science: Heat-power conversion by gas and vapour cycles. Albion Pub., 1996.

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20

Hoffman, E. J. Power cycles and energy efficiency. Academic Press, 1996.

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21

Caton, Jerald A., ed. An Introduction to Thermodynamic Cycle Simulations for Internal Combustion Engines. John Wiley & Sons, Ltd, 2015. http://dx.doi.org/10.1002/9781119037576.

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22

Caton, J. A. An introduction to thermodynamic cycle simulations for internal combustion engines. John Wiley & Sons Inc, 2015.

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23

Organ, Allan J. Thermodynamics and gas dynamics of the stirling cycle machine. University ofBirmingham, 1994.

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24

Blanco, H. Perez. Comparative first- and second-law analysis of an absorption cycle. Oak Ridge National Laboratory, 1985.

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25

Hill, Terrell L. Free energy transduction and biochemical cycle kinetics. Springer-Verlag, 1989.

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26

Gorla, Rama S. R. Probabilistic analysis of gas turbine field performance. National Aeronautics and Space Administration, Glenn Research Center, 2002.

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27

Glassman, Arthur J. Computer code for single-point thermodynamic analysis of hydrogen/oxygen expander-cycle rocket engines. Lewis Research Center, 1991.

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28

M, Jones Scott, and United States. National Aeronautics and Space Administration., eds. Computer code for single-point thermodynamic analysis of hydrogen/oxygen expander-cycle rocket engines. National Aeronautics and Space Administration, 1991.

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29

Penrose, Roger. Cycles of time: An extraordinary new view of the universe. Bodley Head, 2010.

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30

Domanski, Piotr. Impact of refrigerant property uncertainties on prediction of vapor compression cycle performance. U.S. Dept. of Commerce, National Bureau of Standards, 1987.

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31

Thermodynamic Cycles. Marcel Dekker, Inc., 2003.

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32

Wu, Chih. Thermodynamic Cycles. Taylor & Francis Group, 2019.

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33

SUBRAMANIAN, George. Thermodynamic Cycles Renewable Energy Hb. Institute of Physics Publishing, 2021.

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34

Wu, Chih. Thermodynamic Cycles: Computer-Aided Design and Optimization. Taylor & Francis Group, 2003.

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35

Invernizzi, Costante Mario. Closed Power Cycles: Thermodynamic Fundamentals and Applications. Springer, 2013.

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36

Invernizzi, Costante Mario. Closed Power Cycles: Thermodynamic Fundamentals and Applications. Springer, 2013.

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37

Wu, Chih. Thermodynamic Cycles: Computer-Aided Design and Optimization. Taylor & Francis Group, 2003.

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38

Thermodynamic cycles: Computer-aided design and optimization. Marcel Dekker, 2004.

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39

Wu, Chih. Thermodynamic Cycles: Computer-Aided Design and Optimization. Taylor & Francis Group, 2003.

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40

Wu, Chih. Thermodynamic Cycles: Computer-Aided Design and Optimization. Taylor & Francis Group, 2003.

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41

Invernizzi, Costante Mario. Closed Power Cycles: Thermodynamic Fundamentals and Applications. Springer, 2015.

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42

Wu, Chih. Thermodynamic Cycles: Computer-Aided Design and Optimization. Taylor & Francis Group, 2003.

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43

Benton, D. James. Thermodynamic Cycles: Effective Modeling Strategies for Software Development. Independently Published, 2019.

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44

Sbornik nauchnykh trudov po termodinamicheskim t︠s︡iklam Ibadullaeva. Nauka, 2008.

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45

Wu, Chih. Thermodynamic Cycles: Computer-Aided Design and Optimization (Chemical Industries, V. 99). CRC, 2003.

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46

Profiting from low-grade heat: Thermodynamic cycles for low-temperature heat sources. Institution of Electrical Engineers, 1994.

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47

Qualitative and quantitative reasoning about thermodynamics. Dept. of Computer Science, University of Illinois at Urbana-Champaign, 1989.

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48

Copeland, O. Multifluid Thermodynamic Power Cycles: An Invention Report and a Preliminary Assessment of the Potential. Amer Solar Energy Society, 1985.

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49

Sherwood, Dennis, and Paul Dalby. The First Law of Thermodynamics. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198782957.003.0005.

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The First Law of Thermodynamics, and how the First Law relates a change in a state function, internal energy, to changes in the path functions work and heat. Thermodynamic cycles. Heat capacities at constant volume, and the definition CV = (∂U/∂T)V. Mathematics of internal energy. Examples of the application of the First Law to isothermal, isobaric, isochoric and adiabatic changes. Reversible and irreversible paths. Mixing and friction as irreversible processes. Proof that that any path involving friction (or any other dissipative process) must be irreversible, implying that all real paths are
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50

Dincer, Ibrahim, and Calin Zamfirescu. Advanced Power Generation Systems. Elsevier Science & Technology Books, 2014.

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