4.7 Article

Discrete Boltzmann method for non-equilibrium flows: Based on Shakhov model

期刊

COMPUTER PHYSICS COMMUNICATIONS
卷 238, 期 -, 页码 50-65

出版社

ELSEVIER SCIENCE BV
DOI: 10.1016/j.cpc.2018.12.018

关键词

Discrete Boltzmann model; Shakhov model; Slip flow; Transition flow; Non-equilibrium strength

资金

  1. National Natural Science Foundation of China [11772064, 11502117, U1530261]
  2. CAEP Foundation [CX2019033]
  3. State Key Laboratory of Explosion Science and Technology (Beijing Institute of Technology) [KFJJ19-01 M]
  4. Science Challenge Project, China [JCKY2016212A501]

向作者/读者索取更多资源

A general framework for constructing discrete Boltzmann model for non-equilibrium flows based on the Shakhov model is presented. The Hermite polynomial expansion and a set of discrete velocity with high spatial isotropy are adopted to solve the kinetic moments of discrete equilibrium distribution function. Such a model possesses both an adjustable specific heat ratio and Prandd number, and can be applied to a wide range of flow regimes including continuous, slip, and transition flows. To recover results for actual situations, the nondimensionalization process is demonstrated. To verify and validate the new model, several typical non-equilibrium flows including the Couette flow, Fourier flow, unsteady boundary heating problem, cavity flow, and Kelvin-Helmholtz instability are simulated. Comparisons are made between the results of discrete Boltzmann model and those of previous models including analytic solution in slip flow, Lattice ES-BGK, and DSMC based on both BGK and hard-sphere models. The results show that the new model can accurately capture the velocity slip and temperature jump near the wall, and show excellent performance in predicting the non-equilibrium flow even in transition flow regime. In addition, the measurement of non-equilibrium effects is further developed and the non-equilibrium strength D-n* in the nth order moment space is defined. The non-equilibrium characteristics and the advantage of using D-n* in Kelvin-Helmholtz instability are discussed. It concludes that the non-equilibrium strength D-n* is more appropriate to describe the interfaces than the individual components of Delta(n)*. Besides, the D-3* and D-3,D-1* can provide higher resolution interfaces in the simulation of Kelvin-Helmholtz instability. (C) 2018 Elsevier B.V. All rights reserved.

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