论文标题

高阶气体运动方案和平行计算,用于直接对湍流的数值模拟

High-order gas-kinetic scheme with parallel computation for direct numerical simulation of turbulent flows

论文作者

Cao, Guiyu, Pan, Liang, Xu, Kun

论文摘要

已经研究了高阶气体运动方案(HGK)的性能,以直到超音速制度的各向同性压缩湍流的直接数值模拟(DNS)。由于多尺度性质和耦合的时间空间演化过程,HGKS为可压缩湍流的数值模拟提供了有效的工具。基于域的分解和消息传递接口(MPI),在本文中开发了用于大规模计算的平行HGKS代码。从几乎不可压缩流到超音速的标准测试(包括泰勒绿色涡流问题,湍流通道流量和各向同性可压缩的湍流),以验证并行实现的并行可伸缩性,效率,准确性和鲁棒性。 HGK对于几乎不可压缩的湍流的性能与高阶有限差方案相当,包括流动结构的分辨率和计算效率。基于数值解的准确性,对湍流模拟中方案的数值耗散进行了定量评估。作为一种介观方法,由于其高阶精度,HGK的性能优于晶格Boltzmann方法(LBM)和离散的统一气体运动方案(DUGKS)。同时,基于动力学配方,HGK具有超音速湍流模拟的优势,其准确性和稳健性。当前的工作证明了HGK作为从低速到超音速湍流研究的强大DNS工具的能力,在有限体积方案的框架下,它的报道较少。

The performance of high-order gas-kinetic scheme (HGKS) has been investigated for the direct numerical simulation (DNS) of isotropic compressible turbulence up to the supersonic regime. Due to the multi-scale nature and coupled temporal-spatial evolution process, HGKS provides a valid tool for the numerical simulation of compressible turbulent flow. Based on the domain decomposition and message passing interface (MPI), a parallel HGKS code is developed for large-scale computation in this paper. The standard tests from the nearly incompressible flow to the supersonic one, including Taylor-Green vortex problem, turbulent channel flow and isotropic compressible turbulence, are presented to validate the parallel scalability, efficiency, accuracy and robustness of parallel implementation. The performance of HGKS for the nearly incompressible turbulence is comparable with the high-order finite difference scheme, including the resolution of flow structure and efficiency of computation. Based on the accuracy of the numerical solution, the numerical dissipation of the scheme in the turbulence simulation is quantitatively evaluated. As a mesoscopic method, HGKS performs better than both lattice Boltzmann method (LBM) and discrete unified gas-kinetic scheme (DUGKS), due to its high-order accuracy. Meanwhile, based on the kinetic formulation HGKS shows advantage for supersonic turbulent flow simulation with its accuracy and robustness. The current work demonstrates the capability of HGKS as a powerful DNS tool from the low speed to supersonic turbulence study, which is less reported under the framework of finite volume scheme.

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