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1

S, Hemingway Bruce, and Geological Survey (U.S.), eds. Estimating heat capacity and heat content of rocks. U.S. Geological Survey, 1995.

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2

Barron, T. H. K. Heat capacity and thermal expansion at low temperatures. Kluwer Academic/Plenum, 1999.

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3

Barron, T. H. K., and G. K. White. Heat Capacity and Thermal Expansion at Low Temperatures. Springer US, 1999. http://dx.doi.org/10.1007/978-1-4615-4695-5.

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4

Barron, T. H. K. Heat Capacity and Thermal Expansion at Low Temperatures. Springer US, 1999.

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5

Hemingway, Bruce S. Heat capacity and thermodynamic properties of equilibrium sulfur to the temperature 388.36 K, and the heat capacity of Calorimetry Conference copper. U.S. Dept. of the Interior, Geological Survey, 1999.

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6

Hemingway, Bruce S. Heat capacity and thermodynamic properties for coesite and jadeite. U.S. Dept. of the Interior, U.S. Geological Survey, 1995.

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7

C, Price John, ed. Interpretation of thermal infrared data: The heat capacity mapping mission. Harwood, 1986.

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8

Hemingway, Bruce S. Revised heat capacity values for topaz and staurolite based upon a better analysis of the water content of the samples. U.S. Dept. of the Interior, U.S. Geological Survey, 1995.

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9

Abdulagatov, I. M., A. I. Abdulagatov, and Gennadiĭ Vladimirovich Stepanov. Isochoric heat capacity of fluids and fluid mixtures in the critical and supercritical regions: Experiment and theory. Nova Science Publishers, 2011.

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10

Yi, Chʻun-u. Yongnyang kabyŏnhyŏng chiyŏrwŏn tajung konggan naengnanbang sisŭtʻem =: The development of capacity variable type geo-thermal source multi space cooling & heating system. Chisik Kyŏngjebu, 2008.

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11

Yi, Chʻun-u. Yongnyang kabyŏnhyŏng chiyŏrwŏn tajung konggan naengnanbang sisŭtʻem =: The development of capacity variable type geo-thermal source multi space cooling & heating system. Chisik Kyŏngjebu, 2008.

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12

Yi, Chʻun-u. Yongnyang kabyŏnhyŏng chiyŏrwŏn tajung konggan naengnanbang sisŭtʻem =: The development of capacity variable type geo-thermal source multi space cooling & heating system. Chisik Kyŏngjebu, 2008.

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13

Musella, Manuela. Development and test of a method for the simultaneous measurement of heat capacity and thermal diffusivity by laser-flash technique at very high temperatures: Application to uranium dioxide. typescript, 1999.

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14

AGMA Enclosed Drives for Industrial Applications Committee. AGMA 947-A23, Gear Reducers - Thermal Capacity. American Gear Manufacturers Association, 2023.

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15

Kreysa, Gerhard. Solid and Liquid Heat Capacity Data Collection. Wiley-VCH, 1998.

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16

Solid and liquid heat capacity data collection: C₁-C₃₃ compounds. DECHEMA, 1997.

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17

Underwood, Christopher Patrick. An Investigation into the dynamic thermal modelling and capacity control of the absorption heat pump. 1986.

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18

Price, J. Interpretation of Thermal Infrared Data: The Heat Capacity Mapping Mission (Remote Sensing Reviews Series Volume 1, Part 2). Routledge, 1986.

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19

Clarke, Andrew. Energy and heat. Oxford University Press, 2017. http://dx.doi.org/10.1093/oso/9780199551668.003.0002.

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Energy is the capacity to do work and heat is the spontaneous flow of energy from one body or system to another through the random movement of atoms or molecules. The entropy of a system determines how much of its internal energy is unavailable for work under isothermal conditions, and the Gibbs energy is the energy available for work under isothermal conditions and constant pressure. The Second Law of Thermodynamics states that for any reaction to proceed spontaneously the total entropy (system plus surroundings) must increase, which is why metabolic processes release heat. All organisms are
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20

Energy Storage for Power Systems. Institution of Engineering & Technology, 2020.

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21

Energy Storage for Power Systems. Institution of Engineering & Technology, 2011.

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