Thermodynamic and Transport Properties of Fluids

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Thermodynamic and Transport Properties of Fluids

Thermodynamic and Transport Properties of Fluids

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Kh. I. Amirkhanov, A. M. Kerimov, and B. G. Alibekov, in Critical Phenomena and Fluctuations in Solutions (Mosk. Gos. Univ., Moscow, 1960), p. 5 [in Russian]. Kunz, O. & Wagner, W. The GERG-2008 wide-range equation of state for natural gases and other mixtures: an expansion of GERG-2004. J. Chem. Eng. data 57, 3032–3091 (2012). M. A. Anisimov, Critical Phenomena in Liquids and Liquid Crystals (Gordon and Breach, Philadelphia, 1991). Ely, J. F. & Hanley, H. J. M. Prediction of transport properties. 2. Thermal conductivity of pure fluids and mixtures. Ind. Eng. Chem. Fundam. 22, 90–97 (1983). Heinemann, N. et al. Hydrogen storage in porous geological formations–onshore play opportunities in the midland valley (Scotland, UK). Int. J. Hydrogen Energy 43, 20861–20874 (2018).

Gao, W., Robinson, R. L. & Gasem, K. A. M. Solubilities of Hydrogen in Hexane and of Carbon Monoxide in Cyclohexane at Temperatures from 344.3 to 410.9 K and Pressures to 15 MPa. J. Chem. Eng. Data 46, 609–612 (2001). B. le Neindre, G. Lombardi, P. Desmarest, M. Kayser, T. R. Bilalov, F. M. Gumerov, and Y. Garrabos, Fluid Phase Equilib. 481, 66 (2019). B. Widom, in Phase Transitions and Critical Phenomena, Ed. by C. Domb and M. S. Green (Academic, London, New York, 1972), Vol. 2. M. A. Anisimov, B. A. Koval’chk, V. A. Rabinovich, and V. A. Smirnov, in Thermophysical Properties of Substances and Materials (GSSSD, Moscow, 1975), Vol. 8, p. 237 [in Russian].Dymond, J. H. Solubility of a Series of Gases in Cyclohexane and Dimethylsulfoxide. J. Phys. Chem. 71, 1829–1831 (1967). A. V. Zyuzgin, A. I. Ivanov, V. I. Polezhaev, G. F. Putin, and E. B. Soboleva, Cosmic Res. 39, 175 (2001). WNA (World Nuclear Association). Generation IV nuclear reactors. Available from http://www.world-nuclear.org/info/Nuclear-Fuel-Cycle/Power-Reactors/Generation-IV-Nuclear-Reactors. Accessed 7 June 2015. L. M. Radzhabova, G. V. Stepanov, I. M. Abdulagatov, and K. A. Shakhbanov, J. Supercrit. Fluids 63, 115 (2012). Song, L. et al. Thermodynamics study of hydrogen storage materials. J. Chem. Thermodyn. 46, 86–93 (2012).

Haltiwanger JF, Davidson JH, Wilson EJ. Renewable hydrogen from the Zn/ZnO solar thermo chemical cycle: a cost and policy analysis. J SolEnergy Eng. 2010;132:041011–8. The molar enthalpies of reaction, A%", on p. 21 are for a reference temperature of T = 298.15 K and are , virtually independent of pressure. Corresponding values of Gibbs function of reaction, Aij". may be found from values of equilibrium constant K " using the relation J. V. Sengers, in Proceedings of the Conference on Phenomena in the Neighborhood of Critical Points, Ed. by M. S. Green and J. V. Sengers (NBS Misc, Washington, DC, 1966), p. 165. N. G. Polikhronidi, I. M. Abdulagatov, R. G. Batyrova, and G. V. Stepanov, Int. J. Thermophys. 30, 737 (2009).

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N. G. Polikhronidi, R. G. Batyrova, J. W. Magee, and I. M. Abdulagatov, J. Chem. Thermodyn. 133 (Spec. Iss.), 46 (2019).

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Sh. P. Adamov and V. A. Smirnov, Thermophysical Studies at Low Temperatures (VNIIFTRI, Moscow, 1981) [in Russian]. Beghi GE. A decade of research on thermochemical hydrogen at the joint research center, Ispra. Int J Hydrogen Energy. 1986;11:761–71. I. M. Abdulagatov, V. I. Dvoryanchikov, A. N. Kamalov, E. G. Abramova, and A. A. Abdurashidova, J. Solution Chem. 28, 865 (1999). I. M. Abdulagatov, S. B. Kiselev, L. N. Levina, Z. R. Zakaryaev, and O. N. Mamchenkova, Int. J. Thermophys. 17, 423 (1996). Akers, W. W. & Eubanks, L. S. Vapor-liquid equilibria in the system hydrogen-nitrogen-carbon monoxide. In Advances in Cryogenic Engineering 275–293 (Springer, 1960).



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