Influence of Cross Perturbations on Turbulent Kelvin–Helmholtz Instability

Fluids Pub Date : 2024-02-20 DOI:10.3390/fluids9030052
Mae L. Sementilli, Rozie Zangeneh, James Chen
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Abstract

Kelvin–Helmholtz instability has been studied extensively in 2D. This study attempts to address the influence of turbulent flow and cross perturbation on the growth rate of the instability and the development of mixing layers in 3D by means of direct numerical simulation. Two perfect gases are considered to be working fluids moving as opposite streams, inducing shear instability at the interface between the fluids and resulting in Kelvin–Helmholtz instability. The results show that cross perturbation affects the instability by increasing the amplitude growth while adding turbulence has almost no effect on the amplitude growth. Furthermore, by increasing the turbulence intensity, a more distinct presence of the inner flow can be seen in the mixing layer of the two phases, and the presence of turbulence expands the range of high-frequency motion significantly due to turbulence structures. The results give a basis for which 3D Kelvin–Helmholtz phenomena should be further investigated using numerical simulation for predictive modeling, beyond the use of simplified 2D theoretical models.
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交叉扰动对湍流开尔文-赫姆霍兹不稳定性的影响
开尔文-赫尔姆霍兹不稳定性已在二维中得到广泛研究。本研究试图通过直接数值模拟,解决湍流和交叉扰动对三维不稳定性增长率和混合层发展的影响。将两种完全气体视为工作流体,它们以相反的流向运动,在流体之间的界面上引起剪切不稳定性,导致开尔文-赫尔姆霍兹不稳定性。结果表明,交叉扰动通过增加振幅增长来影响不稳定性,而增加湍流对振幅增长几乎没有影响。此外,通过增加湍流强度,可以在两相混合层中看到更明显的内流存在,而且由于湍流结构的存在,高频运动范围显著扩大。这些结果为进一步研究三维开尔文-赫尔姆霍兹现象提供了依据,除了使用简化的二维理论模型之外,还应该使用数值模拟进行预测建模。
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