Research Article

Use the Thermodynamic State Equations to Analyze the Non-ideality of Gas Mixtures

Volume: 27 Number: 1 March 1, 2024
EN

Use the Thermodynamic State Equations to Analyze the Non-ideality of Gas Mixtures

Abstract

The assessment of gas behavior in chemical engineering systems necessitates a profound understanding of thermodynamic principles that govern the interactions among the components within a given system. To this end, the deviation from ideality in a single gas or gas mixture is associated with the disparity between the actual behavior of the gas or gas mixture and the behavior anticipated by the ideal gas model. This study is aimed at scrutinizing the deviation from ideal behavior in a gas mixture composed of CH4 and CO2. The analysis employs the cubic equations of state: Van Der Waals, Soave-Redlich-Kwong, and generalized Virial equations, truncated to the third term. These equations are widely recognized for their utility in characterizing substance behavior under specific thermodynamic conditions. The investigation involves an evaluation of the mixture's behavior by assessing variations in the compressibility factor concerning pressure, volume, and pressure, using a thermodynamic calculator at 296.15 K and 15 bar. The findings of this study reveal the prevalence of attractive intermolecular forces at higher pressures and repulsive interactions at lower pressures. An analogous examination of the effect of altering the composition of CH4 was undertaken using the Soave-Redlich-Kwong equation, which incorporates parameters allowing for an evaluation of the impact of molecule size and intermolecular interactions within the mixture. Furthermore, experimental data were employed to validate the results obtained in this study. Consequently, it can be inferred that these equations provide insight into the influence of pressure on molecular interaction forces, encompassing repulsive and attractive forces, which in turn can define the new volume of a real system. Thus, based on the corroboration established herein, these equations demonstrate a high degree of consistency and applicability, thereby expanding the realm of thermodynamic inquiry.

Keywords

References

  1. A. Muachia, A. Manuel, J. Marques, M. Lemos and A. A. C. Barros. Uso das equações generalizadas de Pitzer para Avaliação termodinâmica de gases. SAPIENTIAE: Revista de Ciências Sociais, Humanas e Engenharias. vol. 1, pp. 35-43, 2020.
  2. V. U. Elechi, S. S. Ikiensikimama and I. I. Azubuike. A correlation for estimating gas compressibility factor in the Niger Delta. Festschrift for J. A. Ajienka, pp. 137–148, 2015.
  3. B. A. Mamedov, E. Somuncu and I. M. Askerov. Theoretical assessment of compressibility factor of gases by using second virial coefficient. Zeitschrift für Naturforschung. Vol. 73, nº 2, pp. 121-125, 2018. doi:10.1515/zna-2017-0225.
  4. Costa, M. A. (2006). Análise do desvio de comportamento entre gás real e gás ideal. (Master Dissertation), Centro Federal de Educação Tecnológica. Rio Grande do Norte, Brazil.
  5. B. H. Mahan and R. J. Myers. University Chemistry. California, USA. University of California, 1076 pages, 2008.
  6. P. Colonna, N. R. Nannan, A. A. Guardone and T. P. Van der Stelt. On the computation of the fundamental derivative of gas dynamics using equations of state. Fluid Phase Equilibria, vol. 286, nº 43, 2009.
  7. D. Rowland and P. M. May. Comparison of the Pitzer and Hückel equation frameworks for activity coefficients, osmotic coefficients and apparent molar relative enthalpies, heat capacities and volumes of binary aqueous strong electrolyte solutions at 25°C. J. Chem. Eng. Data, 2015. doi:10.1021/acs.jced.5b00161.
  8. Y. Adacid, I. Fijihara, M. Takamiya and K. Nakanishi. Generalized equation of state for Lennard-Jones fluids—I. Pure fluids and simple mixtures. Fluid Phase Equilibria Journal. Vol. 39. pp. 1-38, 1988. doi:10.1016/0378-3812 (88)80001-3.

Details

Primary Language

English

Subjects

Energy Systems Engineering (Other)

Journal Section

Research Article

Early Pub Date

November 6, 2023

Publication Date

March 1, 2024

Submission Date

July 17, 2023

Acceptance Date

September 27, 2023

Published in Issue

Year 2024 Volume: 27 Number: 1

APA
Manuel, N., Major, T., Pedro, S., & Barros, A. (2024). Use the Thermodynamic State Equations to Analyze the Non-ideality of Gas Mixtures. International Journal of Thermodynamics, 27(1), 43-50. https://doi.org/10.5541/ijot.1328839
AMA
1.Manuel N, Major T, Pedro S, Barros A. Use the Thermodynamic State Equations to Analyze the Non-ideality of Gas Mixtures. International Journal of Thermodynamics. 2024;27(1):43-50. doi:10.5541/ijot.1328839
Chicago
Manuel, Ngoma, T.c.f.s. Major, S.m. Pedro, and António Barros. 2024. “Use the Thermodynamic State Equations to Analyze the Non-Ideality of Gas Mixtures”. International Journal of Thermodynamics 27 (1): 43-50. https://doi.org/10.5541/ijot.1328839.
EndNote
Manuel N, Major T, Pedro S, Barros A (March 1, 2024) Use the Thermodynamic State Equations to Analyze the Non-ideality of Gas Mixtures. International Journal of Thermodynamics 27 1 43–50.
IEEE
[1]N. Manuel, T. Major, S. Pedro, and A. Barros, “Use the Thermodynamic State Equations to Analyze the Non-ideality of Gas Mixtures”, International Journal of Thermodynamics, vol. 27, no. 1, pp. 43–50, Mar. 2024, doi: 10.5541/ijot.1328839.
ISNAD
Manuel, Ngoma - Major, T.c.f.s. - Pedro, S.m. - Barros, António. “Use the Thermodynamic State Equations to Analyze the Non-Ideality of Gas Mixtures”. International Journal of Thermodynamics 27/1 (March 1, 2024): 43-50. https://doi.org/10.5541/ijot.1328839.
JAMA
1.Manuel N, Major T, Pedro S, Barros A. Use the Thermodynamic State Equations to Analyze the Non-ideality of Gas Mixtures. International Journal of Thermodynamics. 2024;27:43–50.
MLA
Manuel, Ngoma, et al. “Use the Thermodynamic State Equations to Analyze the Non-Ideality of Gas Mixtures”. International Journal of Thermodynamics, vol. 27, no. 1, Mar. 2024, pp. 43-50, doi:10.5541/ijot.1328839.
Vancouver
1.Ngoma Manuel, T.c.f.s. Major, S.m. Pedro, António Barros. Use the Thermodynamic State Equations to Analyze the Non-ideality of Gas Mixtures. International Journal of Thermodynamics. 2024 Mar. 1;27(1):43-50. doi:10.5541/ijot.1328839

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