Youngs David L
Atomic Weapons Establishment, Aldermaston, Berkshire RG7 4PR, UK.
Philos Trans A Math Phys Eng Sci. 2009 Jul 28;367(1899):2971-83. doi: 10.1098/rsta.2008.0303.
Rayleigh-Taylor (RT) instability occurs when a dense fluid rests on top of a light fluid in a gravitational field. It also occurs in an equivalent situation (in the absence of gravity) when an interface between fluids of different density is accelerated by a pressure gradient, e.g. in inertial confinement fusion implosions. Engineering models (Reynolds-averaged Navier-Stokes models) are needed to represent the effect of mixing in complex applications. However, large eddy simulation (LES) currently makes an essential contribution to understanding the mixing process and calibration or validation of the engineering models. In this paper, three cases are used to illustrate the current role of LES: (i) mixing at a plane boundary, (ii) break-up of a layer of dense fluid due to RT instability, and (iii) mixing in a simple spherical implosion. A monotone integrated LES approach is preferred because of the need to treat discontinuities in the flow, i.e. the initial density discontinuities or shock waves. Of particular interest is the influence of initial conditions and how this needs to be allowed for in engineering modelling. It is argued that loss of memory of the initial conditions is unlikely to occur in practical applications.
瑞利 - 泰勒(RT)不稳定性发生在重力场中重流体位于轻流体之上时。在等效情况下(无重力),当不同密度流体之间的界面因压力梯度而加速时,例如在惯性约束聚变内爆中,也会出现这种不稳定性。在复杂应用中,需要工程模型(雷诺平均纳维 - 斯托克斯模型)来描述混合效应。然而,大涡模拟(LES)目前对理解混合过程以及工程模型的校准或验证起着至关重要的作用。本文通过三个案例来说明LES当前的作用:(i)平面边界处的混合,(ii)由于RT不稳定性导致的重流体层破裂,以及(iii)简单球形内爆中的混合。由于需要处理流动中的不连续性,即初始密度不连续性或冲击波,因此首选单调积分LES方法。特别值得关注的是初始条件的影响以及在工程建模中如何考虑这一点。有人认为在实际应用中不太可能出现初始条件记忆丧失的情况。