On the reduced form of thermodynamic coefficients of real gases
Problemy fiziki, matematiki i tehniki, no. 4 (2022), pp. 25-29.

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A form of writing the relationships that determine the physical parameters (thermodynamic coefficients) based on the equations of state of real gases is proposed. For each ratio, the main dimensionless part, expressed in terms of the given thermodynamic variables, is singled out. An explicit form of the reduced relations for the van der Waals, Redlich–Kwong and Soave–Redlich–Kwong equations of state is obtained. The graphs of coefficients in the given variables are constructed.
Mots-clés : thermodynamic coefficient
Keywords: reduced variables, equation of real gas state, van der Waals equation, Soave–Redlich–Kwong equation, Redlich–Kwong equation.
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E. A. Dey; G. Yu. Tyumenkov. On the reduced form of thermodynamic coefficients of real gases. Problemy fiziki, matematiki i tehniki, no. 4 (2022), pp. 25-29. http://geodesic.mathdoc.fr/item/PFMT_2022_4_a4/

[1] Yu.B. Rumer, M.Sh. Ryvkin, Termodinamika, statisticheskaya fizika i kinetika, Izdatelstvo Novosibirskogo universiteta, Novosibirsk, 2000, 608 pp.

[2] V.A. Kudinov, E.M. Kartashov, E.V. Stefanyuk, Tekhnicheskaya termodinamika i teploperedacha, Izdatelstvo Yurait, M., 2021, 454 pp.

[3] S. Ueiles, Fazovye ravnovesiya v khimicheskoi tekhnologii, v 2-ch., v. 1, Mir, M., 1989, 304 pp.

[4] O. Redlich, J.N.S. Kwong, “On the thermodynamics of solutions V. equation of state: fugacity of gaseous solutions”, Chemical Reviews, 44 (1949), 233–244 | DOI | MR

[5] G. Soave, “Equilibrium constants from a modified Redlich - Kwong equation of state”, Chem. Engng. Sci., 2 (1972), 1197–1203 | DOI

[6] D.Y. Peng, D.B. Robinson, “A new two-constant equation of state”, Ind. Eng. Chem. Fundam., 15:1 (1976), 59–64 | DOI | MR | Zbl

[7] Zhao Wenying, Xia LI, Sun Xiaoyan, Xiang Shuguang, “A Review of the Alpha Functions of Cubic Equations of State for Diferent Research Systems”, International Journal of Thermophysics, 40 (2019), 105 | DOI

[8] Xin Chen, Huazhou Li, “An improved volume-translated SRK EOS dedicated to more accurate determination of saturated and single-phase liquid densities”, Fluid Phase Equilibria, 521 (2020), 2724

[9] Pedro Velho, Xiaodong Liang, Eugénia A. Macedo, Elena Gómez, Georgios M. Kontogeorgis, “Towards a predictive Cubic Plus Association equation of state”, Fluid Phase Equilibria, 540 (2021), 113045 | DOI

[10] E.A. Dei, O.V. Novikova, G.Yu. Tyumenkov, “Raschet parametrov izoentalpicheskogo okhlazhdeniya gazov Redlikha - Kvonga”, Izvestiya Gomelskogo gosudarstvennogo universiteta imeni F. Skoriny, 2012, no. 6 (75), 38–42

[11] E.A. Dei, G.Yu. Tyumenkov, “Krivye inversii effekta Dzhoulya - Tomsona dlya obobschennogo uravneniya Van-der-Vaalsa”, Izvestiya Gomelskogo gosudarstvennogo universiteta imeni F. Skoriny, 2015, no. 6 (93), 117–120

[12] E.A. Dei, G.Yu. Tyumenkov, “Granichnye parametry dlya sostoyaniya rastyanutoi zhidkosti”, Problemy fiziki, matematiki i tekhniki, 2018, no. 4 (37), 18–20