4.7 Article

Multiple-relaxation-time discrete Boltzmann modeling of multicomponent mixture with nonequilibrium effects

期刊

PHYSICAL REVIEW E
卷 103, 期 1, 页码 -

出版社

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevE.103.013305

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资金

  1. National Natural Science Foundation of China (NSFC) [51806116, 91441120, 11772064, 11875001]
  2. CAEP Foundation [CX2019033]
  3. opening project of State Key Laboratory of Explosion Science and Technology (Beijing Institute of Technology)
  4. Natural Science Foundation of Fujian Province [2018J01654]
  5. U.K. Engineering and Physical Sciences Research Council under the project UK Consortium on Mesoscale Engineering Sciences (UKCOMES) [EP/R029598/1]
  6. EPSRC [EP/R029598/1] Funding Source: UKRI

向作者/读者索取更多资源

A multiple-relaxation-time discrete Boltzmann model is proposed for multicomponent mixtures to account for compressible, hydrodynamic, and thermodynamic nonequilibrium effects. The model provides more kinetic information and enables the study of entropy production mechanisms in complex flows, particularly in multicomponent mixtures. It shows that heat conduction and temperature have slight influences on the formation and evolution of the Kelvin-Helmholtz instability morphological structure.
A multiple-relaxation-time discrete Boltzmann model (DBM) is proposed for multicomponent mixtures, where compressible, hydrodynamic, and thermodynamic nonequilibrium effects are taken into account. It allows the specific heat ratio and the Prandtl number to be adjustable, and is suitable for both low and high speed fluid flows. From the physical side, besides being consistent with the multicomponent Navier-Stokes equations, Fick's law, and Stefan-Maxwell diffusion equation in the hydrodynamic limit, the DBM provides more kinetic information about the nonequilibrium effects. The physical capability of DBM to describe the nonequilibrium flows, beyond the Navier-Stokes representation, enables the study of the entropy production mechanism in complex flows, especially in multicomponent mixtures. Moreover, the current kinetic model is employed to investigate nonequilibrium behaviors of the compressible Kelvin-Helmholtz instability (KHI). The entropy of mixing, the mixing area, the mixing width, the kinetic and internal energies, and the maximum and minimum temperatures are investigated during the dynamic KHI process. It is found that the mixing degree and fluid flow are similar in the KHI process for cases with various thermal conductivity and initial temperature configurations, while the maximum and minimum temperatures show different trends in cases with or without initial temperature gradients. Physically, both heat conduction and temperature exert slight influences on the formation and evolution of the KHI morphological structure.

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