压缩性对重质/轻质界面里氏不稳定性的影响

Jiaxuan Li, Chenren Chen, Z. Zhai, Xisheng Luo
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引用次数: 0

摘要

对初始振幅较小的冲击加速 SF6/空气界面的演变进行了实验和数值研究。通过改变冲击强度和流体性质,强调了可压缩性对扰动早期发展的影响。分析了稀释波反射时的启动过程,并给出了启动过程的特征时间。阐明了不同入射冲击强度下相位反转过程与启动过程之间的关系。根据启动时间,给出了归一化的新起点,从而更好地归一化早期阶段的振幅增长。此外,还通过数值模拟强调了入射冲击强度和流体物理性质对线性增长率的影响。当入射冲击强度较大时,不可压缩线性模型失去了有效性,而现有的旋转模型在任何冲击强度下都能提供出色的预测,这一点得到了验证。重流体绝热指数的减小或轻流体绝热指数的增大都会降低线性增长率。随着阿特伍德数绝对值的增加,重流体的绝热指数比轻流体的绝热指数对线性增长的影响更大。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Effects of compressibility on Richtmyer–Meshkov instability of heavy/light interface
Experimental and numerical studies on the evolution of shock-accelerated SF6/air interface with small initial amplitude are conducted. The effect of compressibility on the early development of perturbation is highlighted by varying shock intensity and fluid properties. The startup process is analyzed when rarefaction waves are reflected and the characteristic time of the startup process is provided. The relationship between the phase inversion process and the startup process under different incident shock strengths is clarified. According to the startup time, a new start point for normalization is given, which can better normalize the amplitude growth at the early stage. In addition, the effects of incident shock strength and physical properties of fluids on the linear growth rate are highlighted through numerical simulations. The incompressible linear model loses validity when the incident shock is strong, and the existing rotational model is verified to provide excellent predictions under any shock strengths. The decrease in adiabatic exponent of the heavy fluid or the increase in adiabatic exponent of the light fluid can reduce the linear growth rate. As the absolute value of Atwood number increases, the adiabatic exponent of the heavy fluid has a more significant effect on the linear growth than that of the light fluid.
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