Discrete unified gas kinetic scheme for all Knudsen number flows. IV. Strongly inhomogeneous fluids

Baochao Shan, Peng Wang, Yonghao Zhang, Zhaoli Guo

Research output: Contribution to journalArticlepeer-review

Abstract / Description of output

This work is an extension of the discrete unified gas kinetic scheme (DUGKS) from rarefied gas dynamics to strongly inhomogeneous dense fluid systems. The fluid molecular size can be ignored for dilute gases, while the nonlocal intermolecular collisions and the competition of solid-fluid and fluid-fluid interactions play an important role for surface-confined fluid flows at the nanometer scale. The nonequilibrium state induces strong fluid structural-confined inhomogeneity and anomalous fluid flow dynamics. According to the previous kinetic model [Guo et al., Phys. Rev. E 71, 035301(R) (2005)10.1103/PhysRevE.71.035301], the long-range intermolecular attraction is modeled by the mean-field approximation, and the volume exclusion effect is considered by the hard-sphere potential in the collision operator. The kinetic model is solved by the DUGKS, which has the characteristics of asymptotic preserving, low dissipation, second-order accuracy, and multidimensional nature. Both static fluid structure and dynamic flow behaviors are calculated and validated with Monte Carlo or molecular dynamics results. It is shown that the flow of dense fluid systems tends to that of rarefied gases as the dense degree decreases or the mean flow path increases. The DUGKS is proved to be applicable to simulate such nonequilibrium dense fluid systems.
Original languageEnglish
Article number043303
JournalPhysical Review E
Issue number4
Publication statusPublished - 8 Apr 2020

Keywords / Materials (for Non-textual outputs)

  • discrete unified gas kinetic scheme
  • rarefied gas
  • fluid flows


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