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Mechanism and modelling of the secondary baroclinic vorticity in the Richtmyer-Meshkov instability

机译:Richtmyer-Meshkov稳定性中副曲金涡度的机制与建模

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摘要

We elucidate the effect of the secondary baroclinic vorticity (SBV) on the Richtmyer-Meshkov instability (RMI) accelerated by a weak incident shock and develop a vortex-based model for spike and bubble growth rates. Two major mechanisms of the single-mode RMI, the primary baroclinic vorticity (PBV) and the pressure perturbation, are distinguished by simplified models with the vortex-surface field. We find that the effect of the pressure perturbation can be neglected in the present RMI, and the growth of the interface or vortex surface is first driven by the PBV. Subsequently, the SBV, generated by the misalignment between the density gradient across the interface and the pressure gradient produced by the PBV-induced velocity, leads to the nonlinear growth of the interface with the generation of spikes and bubbles. Inspired by this mechanism, we develop a predictive model of spike and bubble growth rates using the motion of viscous vortex rings. The circulation of the vortex ring is modelled with the SBV effect. This model is validated by five data sets of direct numerical simulations and experiments of the single-mode RMI with various initial conditions.
机译:我们阐明了次级斜压涡度(SBV)对由弱入射激波加速的Richtmyer-Meshkov不稳定性(RMI)的影响,并建立了一个基于涡的尖峰和气泡增长率模型。通过带有涡面场的简化模型,区分了单模RMI的两个主要机制:主斜压涡度(PBV)和压力扰动。我们发现,在目前的RMI中,压力扰动的影响可以忽略,并且界面或旋涡表面的生长首先由PBV驱动。随后,由于界面上的密度梯度与PBV诱导速度产生的压力梯度之间的不一致而产生的SBV,导致界面非线性增长,并产生尖峰和气泡。受这一机制的启发,我们利用粘性涡环的运动建立了尖峰和气泡增长率的预测模型。涡环的循环是用SBV效应模拟的。该模型通过五组不同初始条件下的单模RMI直接数值模拟和实验数据进行了验证。

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  • 来源
    《Journal of Fluid Mechanics》 |2021年第1期|共37页
  • 作者单位

    Peking Univ Coll Engn State Key Lab Turbulence &

    Complex Syst Beijing 100871 Peoples R China;

    Peking Univ Coll Engn State Key Lab Turbulence &

    Complex Syst Beijing 100871 Peoples R China;

    Peking Univ Coll Engn State Key Lab Turbulence &

    Complex Syst Beijing 100871 Peoples R China;

    Peking Univ Coll Engn State Key Lab Turbulence &

    Complex Syst Beijing 100871 Peoples R China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 流体力学;
  • 关键词

    vortex dynamics; shock waves;

    机译:涡旋动力学;冲击波;

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