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1

Cryogenic regenerative heat exchangers. New York: Plenum Press, 1997.

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2

Coccia, Gianluca, Giovanni Di Nicola e Alejandro Hidalgo. Parabolic Trough Collector Prototypes for Low-Temperature Process Heat. Cham: Springer International Publishing, 2016. http://dx.doi.org/10.1007/978-3-319-27084-5.

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3

Toal, Bernard Robert Hugh. The application of heat pumps to low temperature drying. [S.l: The Author], 1985.

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4

Cryogenic heat transfer. Philadelphia, PA: Taylor and Francis, 1999.

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5

O'Rourke, Gareth. The cryogenic heat treatment of tool steels. Dublin: University College Dublin, 1998.

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6

Verkin, B. I. Teploobmen pri kipenii kriogennykh zhidkosteĭ. Kiev: Nauk. dumka, 1987.

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7

Meeting, Materials Research Society. High temperature radiator materials for applications in the low earth orbital environment. Cleveland, Ohio: [National Aeronautics and Space Administration], Lewis Research Center, 1987.

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8

Yen, Yin-Chao. Sensible heat flux measurements near a cold surface. [Hanover, N.H.]: U.S. Army Corps of Engineers, Cold Regions Research & Engineering Laboratory, 1995.

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9

Yen, Yin-Chao. On the temperature distribution near a cold surface. [Hanover, N.H.]: U.S. Army Corps of Engineers, Cold Regions Research and Engineering Laboratory, 1993.

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10

Yen, Yin-Chao. On the temperature distribution near a cold surface. [Hanover, N.H.]: U.S. Army Corps of Engineers, Cold Regions Research & Engineering Laboratory, 1993.

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11

Marini͡uk, B. T. Vakuumno-isparitelʹnye kholodilʹnye ustanovki, teploobmenniki i gazifikatory tekhniki nizkikh temperatur. [Moscow]: Ėnergoatomizdat, 2003.

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12

1975-, Jin Tao, e Tang Ke 1978-, a cura di. Di wen chuan re yu she bei. Beijing Shi: Guo fang gong ye chu ban she, 2008.

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13

Chorowski, Maciej. Modelowanie termohydrauliki dekondukcji w magnesach nadprzewodzących. Wrocław: Oficyna Wydawnicza Politechniki Wrocławskiej, 2000.

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14

International, Mechanical Engineering Congress and Exposition (2004 Anaheim Calif ). Proceedings of the ASME Process Industries Division--2004: Presented at 2004 ASME Mechanical Engineering Congress and Exposition : November 13-19, 2004, Anaheim, California, USA. New York, N.Y: ASME, 2004.

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15

Stephan, K. Thermal conductivity and viscosity data of fluid mixtures. [Frankfurt/Main]: Dechema, 1988.

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16

Meeting, American Society of Mechanical Engineers Winter. Low temperature biotechnology: Emerging applications and engineering contributions : presented at the Winter Annual Meeting of the American Society of Mechanical Engineers, Chicago, Illinois, November 27-December 2, 1988 ; sponsored by the Bioengineering Division and the Heat Division, ASME ; edited by J.J. McGrath, K.R. Diller. New York: The American Society of Mechanical Engineers, 1988.

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17

Nechaev, Vladimir, Andrey Shuba, Stanislav Gridnev e Vitaliy Topolov. Dimensional effects in phase transitions and physical properties of ferroics. ru: INFRA-M Academic Publishing LLC., 2022. http://dx.doi.org/10.12737/1898400.

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Abstract (sommario):
The monograph presents mathematical methods and a set of mathematical models describing, within the framework of phenomenological theory, phase transitions in 0D-. 1D-, 2D-, 3D-dimensional ferroelectrics, ferroelastics, ferromagnets and their static and dynamic physical properties near the phase transition point. The influence of the parameters characterizing the ferroic sample and its interaction with the environment on the features of the phase transition, phase transition temperature shift, heat capacity, generalized susceptibilities is analyzed. Mathematical models of multilayer thin-film structures and composite materials, where one of the components is a ferroic nanoparticle, are considered. In general, modern ideas about dimensional effects in ferroelectrics, ferroelastics, ferromagnets and mechanisms of purposeful influence on their properties are sufficiently fully covered. It is intended for researchers, students and postgraduates of physical specialties of universities interested in fundamental problems of formation of physical properties of low-dimensional materials. Research engineers, developers of new materials can use the presented material as a scientific and methodological basis to support the development of optimal solutions for their creation.
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18

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

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19

Cryogenic Regenerative Heat Exchangers. Springer, 2013.

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20

Markides, Christos. Power Generation Technologies for Low-Temperature and Distributed Heat. Elsevier Science & Technology, 2020.

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21

Markides, Christos. Power Generation Technologies for Low-Temperature and Distributed Heat. Elsevier Science & Technology, 2020.

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22

Coccia, Gianluca, Giovanni Di Nicola e Alejandro Hidalgo. Parabolic Trough Collector Prototypes for Low-Temperature Process Heat. Springer, 2016.

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23

Cryogenic Heat Transfer. CRC Press, 2016.

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24

Barron, Randall F., e Gregory F. Nellis. Cryogenic Heat Transfer. Taylor & Francis Group, 2017.

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25

Barron, Randall F. Cryogenic Heat Transfer. Taylor & Francis Group, 1999.

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26

Barron, Randall F., e Gregory F. Nellis. Cryogenic Heat Transfer. Taylor & Francis Group, 2017.

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27

J, Boyle Robert, e NASA Glenn Research Center, a cura di. Infrared low temperature turbine vane rough surface heat transfer measurements. [Cleveland, Ohio]: National Aeronautics and Space Administration, Glenn Research Center, 2000.

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28

1948-, Bejan Adrian, Adorjan Alexander S, American Society of Mechanical Engineers. Heat Transfer Division. e National Heat Transfer Conference (28th : 1991 : Minneapolis, Minn.), a cura di. Cryogenic heat transfer, 1991. New York, N.Y: American Society of Mechanical Engineers, 1991.

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29

Heat transfer in boiling cryogenic liquids. Moscow: Mir Publishers, 1989.

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30

Institution of Electrical Engineers (Corporate Author) e A. W. Crook (Editor), a cura di. Profiting from Low-Grade Heat: Thermodynamic Cycles for Low-Temperature Heat Sources - The Watt Committee on Energy Report No. 26 (The Watt Committee on Energy Report, No. 26). Institution of Electrical Engineers, 1994.

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31

Development of high temperature liquid lubricants for low-heat rejection heavy duty diesel engines. [Cleveland, Ohio]: National Aeronautics and Space Administration, Lewis Research Center, 1993.

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32

A, Kirichenko I͡U︡, e Fizyko-tekhnichnyĭ instytut nizʹkykh temperatur (Akademii͡a︡ nauk Ukraïnsʹkoï RSR), a cura di. Teplovye prot͡s︡essy v kriogennykh sistemakh: Sbornik nauchnykh trudov. Kiev: Nauk. dumka, 1986.

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33

Teplo- i massoobmen v kriogennoĭ tekhnike: Sbornik nauchnykh trudov. Kiev: Nauk. dumka, 1990.

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34

Matthias, Gottmann, e United States. National Aeronautics and Space Administration., a cura di. Thermal control systems for low-temperature heat rejection on a lunar base: Semiannual status report for grant NAG5-1572. Tucson, AZ: Dept. of Aerospace and Mechanical Engineering, University of Arizona, 1992.

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35

Matthias, Gottmann, Nanjundan Ashok e Goddard Space Flight Center, a cura di. Thermal control systems for low-temperature heat rejection on a lunar base: Annual progress report for grant NAG5-1572 (MOD). [Tucson, Ariz.?]: Aerospace and Mechanical Engineering, University of Arizona, 1993.

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36

Matthias, Gottmann, Nanjundan Ashok e Goddard Space Flight Center, a cura di. Thermal control systems for low-temperature heat rejection on a lunar base: Annual progress report for grant NAG5-1572 (MOD). [Tucson, Ariz.?]: Aerospace and Mechanical Engineering, University of Arizona, 1993.

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37

J, Bougard, Afgan Naim e International Center for Heat and Mass Transfer., a cura di. Heat and mass transfer in refrigeration and cryogenics. Washington: Hemisphere Pub. Corp., 1987.

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38

M, Kaviany, American Society of Mechanical Engineers. Heat Transfer Division. e AIAA/ASME Thermophysics and Heat Transfer Conference (6th : 1994 : Colorado Springs, Colo.), a cura di. Thermal phenomena at molecular and microscales and in cryogenic infrared detectors: Presented at the 6th AIAA/ASME Thermophysics and Heat Transfer Conference, Colorado Springs, Colorado, June 20-23, 1994. New York, N.Y: American Society of Mechanical Engineers, 1994.

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39

Proceedings of the Asme Process Industries Division--2004: Presented at 2004 Asme Mechanical Engineering Congress and Exposition: November 13-19, 2004. Not Avail, 2004.

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40

American Society of Mechanical Engineers. Process Industries Division. e International Mechanical Engineering Congress and Exposition (2005 : Orlando, Fla.), a cura di. Proceedings of the ASME Process Industries Division--2005 : presented at 2005 ASME Mechanical Engineering Congress and Exposition, November 5-11, 2005, Orlando, Florida, USA. New York, N.Y: ASME, 2005.

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41

American Society of Mechanical Engineers. Proceedings of the Asme Process Industries Division--2005: Presented at 2005 Asme International Mechanical Engineering Congress and Exposition, Novemb (PID). American Society of Mechanical Engineers, 2005.

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42

A, Papar Riyaz, American Society of Mechanical Engineers. Process Industries Division., American Society of Mechanical Engineers. Heat Transfer Division., American Society of Mechanical Engineers. Advanced Energy Systems Division. e International Mechanical Engineering Congress and Exposition (2001 : New York, N.Y.), a cura di. Proceedings of the ASME Process Industries Division, 2001 : presented at the 2001 ASME Mechanical Engineering Congress and Exposition, November 11-16, 2001, New York, New York. New York, N.Y: American Society of Mechanical Engineers, 2001.

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43

N, Amineni, American Society of Mechanical Engineers. Process Industries Division. e International Mechanical Engineering Congress and Exposition (2003 : Washington, D.C.), a cura di. Proceedings of the ASME Process Industries Division--2003: Presented at the 2003 ASME Mechanical Engineering Congress : November 15-21, 2003, Washington, D.C. New York, N.Y: American Society of Mechanical Engineers, 2003.

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44

Proceedings of the ASME Process Industries Division, 2002 : presented at the 2002 ASME Mechanical Engineering Congress and Exposition, November 17-22, 2002, New Orleans, Louisiana. New York, N.Y: American Society of Mechanical Engineers, 2002.

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45

Scott, Elaine P. Transport Phenomena In Manufacturing And Materials Processing Environmental Processing Low Temperature Heat Transfer: Transport Phenomena In Manufacturing ... of the Asme Heat Transfer Division). Amer Society of Mechanical, 2003.

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46

A modified thermal conductivity for low density plasma magnetic flux tubes. [Washington, D.C: American Geophysical Union, 1995.

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47

D, Craven P., Richards P. G e United States. National Aeronautics and Space Administration., a cura di. A modified thermal conductivity for low density plasma magnetic flux tubes. [Washington, D.C: American Geophysical Union, 1995.

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48

D, Craven P., Richards P. G e United States. National Aeronautics and Space Administration., a cura di. A modified thermal conductivity for low density plasma magnetic flux tubes. [Washington, D.C: American Geophysical Union, 1995.

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49

American Society of Mechanical Engineers. Process Industries Division. e International Mechanical Engineering Congress and Exposition (2006 : Chicago, Ill.), a cura di. Proceedings of the ASME Process Industries Division--2006 : presented at 2006 ASME International Mechanical Engineering Congress and Exposition, November 5-10, 2006, Chicago, Illinois, USA. New York: American Society of Mechanical Engineers, 2007.

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50

Brooks, Charlie R. Principles of the Heat Treatment of Plain Carbon and Low Alloy Steels. ASM International, 1996. http://dx.doi.org/10.31399/asm.tb.phtpclas.9781627083539.

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Abstract (sommario):
Principles of the Heat Treatment of Plain Carbon and Low Alloy Steels provides readers with a working knowledge of heat treat processes and how they can be tailored to optimize the microstructure and properties of steel. The book includes chapters on quenching, tempering, austenitization, and annealing as well as hardenability, modeling, and common treatments for structural steels. The first few chapters lay essential groundwork for understanding how time, temperature, and prior processing history influence the formation of Fe-C phases and the composition and morphology of the microconstituents found in carbon and low alloy steels. The chapter on structural steels explains how deformation and thermal processing are used for the development and control of grain size and how carbon and manganese content influence toughness, hardness, and strength. The final chapter presents worked solutions to real-world problems related to hardenability, quenching, grain size, alloy content, treatment times and temperatures, and the determination of property ranges. The book includes an extensive amount of composition and property data, a glossary of terms, and outlines for various calculation methods. For information on the print version, ISBN 978-0-87170-538-9, follow this link.
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