Unified Gas-kinetic Scheme with Multigrid Convergence for Rarefied Flow Study
arXiv:1704.03151 · doi:10.1063/1.4994020
Abstract
The unified gas kinetic scheme (UGKS) is a direct modeling method based on the gas dynamical model on the mesh size and time step scales. With the implementation of particle transport and collision in a time-dependent flux function, the UGKS can recover multiple flow physics from the kinetic particle transport to the hydrodynamic wave propagation. In comparison with direct simulation Monte Carlo (DSMC), the equations-based UGKS can use the implicit techniques in the updates of macroscopic conservative variables and microscopic distribution function. The implicit UGKS significantly increases the convergence speed for steady flow computations, especially in the highly rarefied and near continuum regime. In order to further improve the computational efficiency, for the first time a geometric multigrid technique is introduced into the implicit UGKS, where the prediction step for the equilibrium state and the evolution step for the distribution function are both treated with multigrid acceleration. The multigrid implicit UGKS (MIUGKS) is used in the non-equilibrium flow study, which includes microflow, such as lid-driven cavity flow and the flow passing through a finite-length flat plate, and high speed one, such as supersonic flow over a square cylinder. The MIUGKS shows 5 to 9 times efficiency increase over the previous implicit scheme. For the low speed microflow, the efficiency of MIUGKS is several orders of magnitude higher than the DSMC. Even for the hypersonic flow at Mach number 5 and Knudsen number 0.1, the MIUGKS is still more than 100 times faster than the DSMC method for a convergent steady state solution.
References in corpus (1)
Cited by in corpus (16)
- Unified Gas-kinetic Wave-Particle Methods II: Multiscale Simulation on Unstructured Mesh
- Conserved discrete unified gas-kinetic scheme with unstructured discrete velocity space
- An Implicit Unified Gas-kinetic Scheme for Unsteady Flow in All Knudsen Regimes
- A multi-prediction implicit scheme for steady state solutions of gas flow in all flow regimes
- A three-dimensional unified gas-kinetic wave-particle solver for flow computation in all regimes
- A Unified Gas-kinetic Scheme for Continuum and Rarefied Flows VI: Dilute Disperse Gas-Particle Multiphase System
- General synthetic iteration scheme for non-linear gas kinetic simulation of multi-scale rarefied gas flows
- Modeling and computation for non-equilibrium gas dynamics: beyond kinetic relaxation model
- A unified gas kinetic scheme for transport and collision effects in plasma
- Unified gas-kinetic wave-particle methods V: diatomic molecular flow
- GPU acceleration of an iterative scheme for gas-kinetic model equations with memory reduction techniques
- A direct relaxation process for particle methods in gas kinetic theory
- An implicit kinetic inviscid flux for predicting continuum flows in all speed regimes
- The first decade of unified gas kinetic scheme
- A conservative implicit scheme for steady state solutions of diatomic gas flow in all flow regimes
- General Implicit Iterative Method for Unified Gas-kinetic Scheme