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Numerical simulation of Richtmyer-Meshkov instability

机译:Richtmyer-Meshkov不稳定性的数值模拟

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摘要

The compressible Navier-Stokes equations discretized with a fourth order accurate compact finite difference scheme with group velocity control are used to simulate the Richtmyer-Meshkov (R-M) instability problem produced by cylindrical shock-cylindrical material interface with shock Mach number Ms=1.2 and density ratio 1:20 (interior density/outer density). Effect of shock refraction, reflection, interaction of the reflected shock with the material interface, and effect of initial perturbation modes on R-M instability are investigated numerically. It is noted that the shock refraction is a main physical mechanism of the initial phase changing of the material surface. The multiple interactions of the reflected shock from the origin with the interface and the R-M instability near the material interface are the reason for formation of the spike-bubble structures. Different viscosities lead to different spike-bubble structure characteristics. The vortex pairing phenomenon is found in the initial double mode simulation. The mode interaction is the main factor of small structures production near the interface.
机译:采用具有群速度控制的四阶精确紧致有限差分格式离散的可压缩Navier-Stokes方程,模拟了冲击马赫数Ms = 1.2和密度的圆柱激波-圆柱材料界面产生的Richtmyer-Meshkov(RM)不稳定性问题。比例1:20(内部密度/外部密度)。数值研究了冲击折射,反射,反射冲击与材料界面的相互作用以及初始摄动模式对R-M不稳定性的影响。注意,冲击折射是材料表面初始相变的主要物理机制。从原点到界面的反射冲击的多次相互作用以及材料界面附近的R-M不稳定性是形成尖峰气泡结构的原因。不同的粘度导致不同的尖峰气泡结构特征。在初始双模仿真中发现了涡旋配对现象。模式相互作用是界面附近小结构生产的主要因素。

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