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过渡瑞利-泰勒不稳定流中的湍流传质与混合:梯度扩散和相似性建模的先验评估。

Turbulent transport and mixing in transitional Rayleigh-Taylor unstable flow: A priori assessment of gradient-diffusion and similarity modeling.

机构信息

Lawrence Livermore National Laboratory, Livermore, California 94550, USA.

Department of Mechanical Engineering, Texas A&M University, College Station, Texas 77843, USA.

出版信息

Phys Rev E. 2017 Dec;96(6-1):063111. doi: 10.1103/PhysRevE.96.063111. Epub 2017 Dec 14.

Abstract

Data from a 1152×760×1280 direct numerical simulation [N. J. Mueschke and O. Schilling, Phys. Fluids 21, 014106 (2009)PHFLE61070-663110.1063/1.3064120] of a Rayleigh-Taylor mixing layer modeled after a small-Atwood-number water-channel experiment is used to investigate the validity of gradient diffusion and similarity closures a priori. The budgets of the mean flow, turbulent kinetic energy, turbulent kinetic energy dissipation rate, heavy-fluid mass fraction variance, and heavy-fluid mass fraction variance dissipation rate transport equations across the mixing layer were previously analyzed [O. Schilling and N. J. Mueschke, Phys. Fluids 22, 105102 (2010)PHFLE61070-663110.1063/1.3484247] at different evolution times to identify the most important transport and mixing mechanisms. Here a methodology is introduced to systematically estimate model coefficients as a function of time in the closures of the dynamically significant terms in the transport equations by minimizing the L_{2} norm of the difference between the model and correlations constructed using the simulation data. It is shown that gradient-diffusion and similarity closures used for the turbulent kinetic energy K, turbulent kinetic energy dissipation rate ε, heavy-fluid mass fraction variance S, and heavy-fluid mass fraction variance dissipation rate χ equations capture the shape of the exact, unclosed profiles well over the nonlinear and turbulent evolution regimes. Using order-of-magnitude estimates [O. Schilling and N. J. Mueschke, Phys. Fluids 22, 105102 (2010)PHFLE61070-663110.1063/1.3484247] for the terms in the exact transport equations and their closure models, it is shown that several of the standard closures for the turbulent production and dissipation (destruction) must be modified to include Reynolds-number scalings appropriate for Rayleigh-Taylor flow at small to intermediate Reynolds numbers. The late-time, large Reynolds number coefficients are determined to be different from those used in shear flow applications and largely adopted in two-equation Reynolds-averaged Navier-Stokes (RANS) models of Rayleigh-Taylor turbulent mixing. In addition, it is shown that the predictions of the Boussinesq model for the Reynolds stress agree better with the data when additional buoyancy-related terms are included. It is shown that an unsteady RANS paradigm is needed to predict the transitional flow dynamics from early evolution times, analogous to the small Reynolds number modifications in RANS models of wall-bounded flows in which the production-to-dissipation ratio is far from equilibrium. Although the present study is specific to one particular flow and one set of initial conditions, the methodology could be applied to calibrations of other Rayleigh-Taylor flows with different initial conditions (which may give different results during the early-time, transitional flow stages, and perhaps asymptotic stage). The implications of these findings for developing high-fidelity eddy viscosity-based turbulent transport and mixing models of Rayleigh-Taylor turbulence are discussed.

摘要

对基于小 Atwood 数水槽实验的瑞利-泰勒混合层的 1152×760×1280 直接数值模拟[N. J. Mueschke 和 O. Schilling,Phys. Fluids 21,014106(2009)PHFLE61070-663110.1063/1.3064120]的数据进行了研究,以预先验证梯度扩散和相似性封闭的有效性。先前分析了跨越混合层的平均流、湍流动能、湍流动能耗散率、重流体质量分数方差和重流体质量分数方差耗散率传输方程的预算[O. Schilling 和 N. J. Mueschke,Phys. Fluids 22,105102(2010)PHFLE61070-663110.1063/1.3484247],以在不同的演化时间识别最重要的传输和混合机制。这里引入了一种方法,通过最小化模型和使用模拟数据构建的相关项之间的 L_{2}范数差,系统地估计封闭项中的模型系数作为时间的函数,这些封闭项是传输方程中动态显著项的封闭项。结果表明,用于湍流动能 K、湍流动能耗散率 ε、重流体质量分数方差 S 和重流体质量分数方差耗散率 χ 方程的梯度扩散和相似性封闭能够很好地捕捉精确的、未封闭轮廓的形状,跨越非线性和湍流演化阶段。使用精确传输方程及其封闭模型的项的量级估计[O. Schilling 和 N. J. Mueschke,Phys. Fluids 22,105102(2010)PHFLE61070-663110.1063/1.3484247],表明几个用于湍流动产和耗散(破坏)的标准封闭必须进行修改,以包括适用于小到中等雷诺数的瑞利-泰勒流动的雷诺数标度。确定了大雷诺数后期的系数与剪切流应用中的系数不同,并且在 Rayleigh-Taylor 湍流混合的两方程雷诺平均 Navier-Stokes(RANS)模型中被广泛采用。此外,结果表明,当包含附加浮力相关项时,Boussinesq 模型对雷诺应力的预测与数据更吻合。结果表明,需要一种非定常 RANS 范例来预测从早期演化时间开始的过渡流动力学,类似于壁面边界流动中雷诺数修正的小雷诺数修改,其中生产与耗散的比率远未达到平衡。尽管本研究是针对特定的流动和一组初始条件进行的,但该方法可以应用于具有不同初始条件的其他瑞利-泰勒流动的校准(这可能会在早期过渡流阶段以及可能的渐近阶段产生不同的结果)。讨论了这些发现对开发基于高保真涡粘性的瑞利-泰勒湍流的湍流动输运和混合模型的意义。

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