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The kinetic chemical equilibrium regime

Author

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  • Ern, Alexandre
  • Giovangigli, Vincent

Abstract

We investigate reactive gas mixtures in the kinetic chemical equilibrium regime. Our starting point is a generalized Boltzmann equation with a chemical source term valid for arbitrary reaction mechanisms and yielding a positive entropy production. We first study the Enskog expansion in the kinetic chemical equilibrium regime. We derive a new set of macroscopic equations in the zeroth- and first-order regimes, expressing conservation of element densities, momentum and energy. The transport fluxes arising in the Navier–Stokes equilibrium regime are the element diffusion velocities, the heat flux vector and the pressure tensor and are written in terms of transport coefficients. Upon introducing species diffusion velocities, the kinetic equilibrium regime appears to be formally equivalent to the one obtained for gas mixtures in chemical nonequilibrium and then letting the chemical reactions approach equilibrium. The actual values of the transport coefficients are, however, different. Finally, we derive the entropy conservation equation in the Navier–Stokes equilibrium regime and show that the source term is positive and that it is compatible with Onsager’s reciprocal relations.

Suggested Citation

  • Ern, Alexandre & Giovangigli, Vincent, 1998. "The kinetic chemical equilibrium regime," Physica A: Statistical Mechanics and its Applications, Elsevier, vol. 260(1), pages 49-72.
  • Handle: RePEc:eee:phsmap:v:260:y:1998:i:1:p:49-72
    DOI: 10.1016/S0378-4371(98)00303-3
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    Citations

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    Cited by:

    1. Carvalho, Filipe & Polewczak, Jacek & Silva, Adriano W. & Soares, Ana Jacinta, 2018. "Transport coefficients for the simple reacting spheres kinetic model I: Reaction rate and shear viscosity," Physica A: Statistical Mechanics and its Applications, Elsevier, vol. 505(C), pages 1018-1037.
    2. Orlac’h, Jean-Maxime & Giovangigli, Vincent & Novikova, Tatiana & Roca i Cabarrocas, Pere, 2018. "Kinetic theory of two-temperature polyatomic plasmas," Physica A: Statistical Mechanics and its Applications, Elsevier, vol. 494(C), pages 503-546.
    3. Rydalevskaya, Maria A., 2017. "Simplified method for calculation of equilibrium plasma composition," Physica A: Statistical Mechanics and its Applications, Elsevier, vol. 476(C), pages 49-57.
    4. Giovangigli, Vincent & Graille, Benjamin, 2003. "Kinetic theory of partially ionized reactive gas mixtures," Physica A: Statistical Mechanics and its Applications, Elsevier, vol. 327(3), pages 313-348.
    5. Aoki, Kazuo & Giovangigli, Vincent, 2021. "Kinetic theory of chemical reactions on crystal surfaces," Physica A: Statistical Mechanics and its Applications, Elsevier, vol. 565(C).
    6. Zhdanov, V.M. & Stepanenko, A.A., 2016. "Kinetic theory of transport processes in partially ionized reactive plasma, I: General transport equations," Physica A: Statistical Mechanics and its Applications, Elsevier, vol. 446(C), pages 35-53.

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