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首页> 外文期刊>Physics Reports: A Review Section of Physics Letters (Section C) >Rayleigh–Taylor and Richtmyer–Meshkov instability induced flow, turbulence, and mixing. I
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Rayleigh–Taylor and Richtmyer–Meshkov instability induced flow, turbulence, and mixing. I

机译:Rayleigh-Taylor和Richtmyer-Meshkov不稳定诱导流动,湍流和混合。 一世

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AbstractRayleigh–Taylor (RT) and Richtmyer–Meshkov (RM) instabilities play an important role in a wide range of engineering, geophysical, and astrophysical flows. They represent a triggering event that, in many cases, leads to large-scale turbulent mixing. Much effort has been expended over the past 140 years, beginning with the seminal work of Lord Rayleigh, to predict the evolution of the instabilities and of the instability-induced mixing layers. The objective of Part I of this review is to provide the basic properties of the flow, turbulence, and mixing induced by RT, RM, and Kelvin–Helmholtz (KH) instabilities. Historical efforts to study these instabilities are briefly reviewed, and the significance of these instabilities is discussed for a variety of flows, particularly for astrophysical flows and for the case of inertial confinement fusion. Early experimental efforts are described, and analytical attempts to model the linear, and nonlinear regimes of these mixing layers are examined. These analytical efforts include models for both single-mode and multi-mode initial conditions, as well as multi-scale models to describe the evolution. Comparisons of these models and theories to experimental and simulation studies are then presented. Next, attention is paid to the issue of the influence of stabilizing mechanisms (e.g., viscosity, surface tension, and diffuse interface) on the evolution of these instabilities, as well as the limitations and successes of numerical methods. Efforts to study these instabilities and mixing layers using group-theoretic ideas, as well as more formal notions of turbulence cascade processes during the later stages of the induced mixing layers, are inspe
机译:<![cdata [ Abstract Rayleigh-Taylor(RT)和RichTmyer-Meshkov(RM)不稳定在各种工程,地球物理和天体物理流域中起重要作用。它们代表了一个触发事件,在许多情况下,导致大规模的湍流混合。在过去的140年开始,从Rayleigh勋爵的开创性工作开始,已经花了很多努力,以预测稳定性和不稳定诱导的混合层的演变。本综述的一部分的目标是提供RT,RM和Kelvin-Helmholtz(KH)稳定性诱导的流动,湍流和混合的基本性质。研究这些不稳定性的历史努力,讨论了这些不稳定性的重要性,用于各种流动,特别是对于天体物理流动和惯性监禁融合的情况。描述了早期的实验努力,并研究了模拟线性的分析尝试和这些混合层的非线性方案。这些分析工作包括用于单模和多模式初始条件的模型,以及用于描述演进的多尺度模型。然后介绍了这些模型的比较和实验和模拟研究的理论。接下来,关注稳定机制(例如,粘度,表面张力和漫反射界面)对这些不稳定性的演变的影响,以及数值方法的局限性和成功。使用群体理论思想研究这些不稳定性和混合层的努力以及在诱导混合层的后期阶段期间的湍流级联过程的更正式概念,是Inspe

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