4.7 Article

Evaluation of a lattice Boltzmann method in a complex nanoflow

期刊

PHYSICAL REVIEW E
卷 82, 期 1, 页码 -

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AMER PHYSICAL SOC
DOI: 10.1103/PhysRevE.82.016701

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资金

  1. Core Research for Evolutional Science and Technology (CREST) of Japan Science Technology (JST) Agency [228205R]
  2. Japan Society for the Promotion of Science [18360050]
  3. Grants-in-Aid for Scientific Research [18360050] Funding Source: KAKEN

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In order to establish a cost-effective strategy to simulate complex flows in continuum to slip and transitional regimes, the present study assesses the performance of a lattice Boltzmann method (LBM) formerly discussed by the present authors' group [Niu et al., Phys. Rev. E 76, 036711 (2007)]. This LBM is based on a diffuse scattering wall boundary condition, a regularization procedure, and an effective relaxation time associated with the Knudsen number. The present assessment is on its regularization procedure and third-order truncated system based on the two-dimensional twenty-one discrete velocity (D2Q21) model for the Cartesian lattices. The test flow cases are force-driven Poiseuille flows, the Couette flows and a flow around a square cylinder situated in a nanochannel. For producing the reference data of the square cylinder flow, the molecular dynamics simulation using Lennard-Jones potential is also performed. Although the flow profiles and the slip velocities of the Poiseuille flows and the Couette flows are more accurately predicted by the third-order truncated system, the general velocity profiles around the square cylinder are also well predicted by the second-order truncated system based on the two-dimensional nine discrete velocity (D2Q9) model. It is also confirmed that without the regularization process, the entire flow field prediction suffers unphysical momentum oscillations around the square cylinder.

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