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首页> 外文期刊>Journal of Computational and Applied Mathematics >Parallel implicit DNS of temporally-evolving turbulent shear layer instability
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Parallel implicit DNS of temporally-evolving turbulent shear layer instability

机译:随时间变化的湍流剪切层不稳定性的并行隐式DNS

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摘要

In this study, a temporally-evolving incompressible and compressible Turbulent Shear Layer (TSL) instability problem is solved using an all-speed (all-Mach), implicit, nondissipative and kinetic energy conserving algorithm. An in-house, fully parallel, finitevolume Direct Numerical Simulation (DNS) solver was developed using PETSc. Convergence characteristics at low-Mach numbers were also improved using a relaxation procedure. We aim here to assess the performance and behavior of the present algorithm for complex flows which contain multi-scale physics and gradually evolve into turbulence. The results show that the algorithm is able to produce correct physical mechanisms and capture the evolution of the turbulent fluctuations for both incompressible and compressible cases. It is observed that the non-dissipative and kinetic energy conserving properties make the algorithm powerful and applicable to challenging problems. For higher Mach numbers, a shock-capturing or a dissipative mechanism is required for robustness.
机译:在这项研究中,使用全速(all-Mach),隐式,非耗散和动能守恒算法解决了时间演化的不可压缩和可压缩湍流剪切层(TSL)的不稳定性问题。使用PETSc开发了内部完全并行的有限体积直接数值模拟(DNS)求解器。在低马赫数下的收敛特性也使用松弛程序得到了改善。我们的目的是评估包含多尺度物理并逐渐演变成湍流的复杂流的本算法的性能和行为。结果表明,该算法能够产生正确的物理机制,并捕获不可压缩和可压缩情况下湍流波动的演变。观察到,非耗散和动能守恒的特性使该算法功能强大,可应用于具有挑战性的问题。对于更高的马赫数,需要使用震荡捕获或耗散机制来增强鲁棒性。

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