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Numerical Prediction of Interfacial Instabilities: The Sharp Interface Method for Compressible Flows

机译:界面不稳定性的数值预测:可压缩流的Sharp接口方法

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We introduce a new numerical method for solving the compressible Navier-Stokes equations in flow domains that may be separated by any number of interfaces, fluid-to-fluid or fluid-to-solid, at arbitrarily high density ratios and acoustic-impedance mismatch, and subjected to pressure waves of arbitrarily high amplitudes and steepness. A principal aim is the ab initio prediction of interfacial instabilities under superposition of multiple active modes (Rayleigh-Taylor, Kelvin-Helmholtz, Richtmeyer-Meshkov) along with mean flow development, as found for example in rapidly-accelerated immersed-fluid bodies. We insist on a sharp-interface treatment (fluid-property and normal-stress jumps), and a unique feature of our approach is solving for motion of each element of the piecewise-curved interface as an exact Riemann problem within an overall conservative scheme that couples consistently the bulk-fluid motions to that of the interface. Sample simulations of liquid drops subjected to shock waves demonstrate for the first time the numerical prediction of the key phenomena found in recent experimental and theoretical studies of this class of problems [Theofanous, Ann. Rev. Fluid Mech. 43:661-90,2011].
机译:我们引入了一种新的数值方法,用于求解在流动域中可压缩的Navier-Stokes方程,该流动域可以由任意数量的高密度比和声阻抗失配的任意数量的界面(流体与流体或流体与固体)分开,并受到振幅和陡度任意高的压力波的影响。一个主要目的是从头开始预测在多个活动模式(Rayleigh-Taylor,Kelvin-Helmholtz,Richtmeyer-Meshkov)叠加下的界面不稳定性以及平均流的发展,例如在快速加速的浸没流体中发现的那样。我们坚持采用尖锐的界面处理方法(流体特性和法向应力跃变),并且我们方法的独特之处在于,将分段弯曲界面的每个元素的运动作为一个整体保守方案中的精确黎曼问题解决,始终将大流体运动与界面运动耦合在一起。受到冲击波影响的液滴的样本模拟首次证明了对这类问题的最新实验和理论研究发现的关键现象的数值预测[Theofanous,Ann。 Rev.流体机械。 43:661-90,2011]。

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