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Extended integral wall-model for large-eddy simulations of compressible wall-bounded turbulent flows

机译:用于压缩墙面湍流流动的大涡模拟的扩展整体壁模型

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摘要

Wall-modeling is required to make large-eddy simulations of high-Reynolds number wall-bounded turbulent flows feasible in terms of computational cost. Here, an extension of the integral wall-model for large-eddy simulations (iWMLESs) for incompressible flows developed by Yang et al. ["Integral wall model for large eddy simulations of wall-bounded turbulent flows," Phys. Fluids 27(2), 025112 (2015)] to compressible and isothermal flows is proposed and assessed. The iWMLES approach is analogous to the von Karman-Pohlhausen integral method for laminar flows: the velocity profile is parameterized, and unknown coefficients are determined by matching boundary conditions obeying the integral boundary layer momentum equation. It allows non-equilibrium effects such as pressure gradient and convection to be included at a computing cost similar to analytical wall-models. To take into account density variations and temperature gradients, the temperature profile is also parameterized and the integral compressible boundary layer energy equation is considered. Parameterized profiles are based on the usual logarithmic wall functions with corrective terms to extend their range of validity. Instead of solving a set of differential equations as wall-models based on the thin boundary layer equation approach, a simple linear system is solved. The proposed wall-model is implemented in a finite-volume cell-centered structured grid solver and assessed on adiabatic and isothermal plane channel flows at several friction Reynolds and Mach numbers. For low Mach number cases, mean profiles, wall fluxes, and turbulent fluctuations are in agreement with those of Direct Numerical Simulation (DNS). For supersonic flows, the results are in good agreement with the DNS data, especially the mean velocity quantities and the wall friction, while standard analytical wall-models show their limits. Published by AIP Publishing.
机译:需要壁式建模,以便在计算成本方面制造高雷诺数壁有限湍流流动的大涡流模拟。在此,杨等人开发的用于不可压缩流量的大涡模拟(IWMLESS)的整体壁模型的延伸。 [“墙面湍流流动大型涡流模拟的整体墙模型”。提出并评估了可压缩和等温流的流体27(2),025112(2015)]。 IWMLES方法类似于von Karman-Pohlhausen Laminar流量的积分方法:速度曲线是参数化的,并且通过匹配遵循遵循积分边界层动量方程的边界条件来确定未知的系数。它允许以类似于分析壁模型的计算成本包括压力梯度和对流等非平衡效应。要考虑密度变化和温度梯度,还参数化温度分布,并且考虑了整体可压缩边界层能量方程。参数化配置文件基于通常的对数壁函数,具有纠正术语来扩展其有效范围。代替求解一组微分方程作为基于薄边界层方程方法的壁模型,解决了简单的线性系统。所提出的壁模型在有限体积的细胞中心结构的栅格求解器中实现,并在几个摩擦雷诺和马赫数上进行了在绝热和等温平面通道上进行评估。对于低马赫数情况,平均轮廓,壁通量和湍流波动与直接数值模拟(DNS)一致。对于超音速流动,结果与DNS数据吻合良好,尤其是平均速度数量和墙面摩擦,而标准的分析壁模型则显示其限制。通过AIP发布发布。

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  • 来源
    《Physics of fluids》 |2018年第6期|共20页
  • 作者单位

    CERFACS 42 Ave Gaspard Coriolis F-31057 Toulouse France;

    CERFACS 42 Ave Gaspard Coriolis F-31057 Toulouse France;

    Aix Marseille Univ CNRS UMR 7340 M2P2 Cent Marseille F-13451 Marseille France;

    CERFACS 42 Ave Gaspard Coriolis F-31057 Toulouse France;

    SAFRAN Tech Rue Jeunes Bois Chateaufort CS 80112 F-78772 Magny Les Hameaux France;

    SAFRAN Aircraft Engines F-77550 Rond Point Rene Ravaud Moissy Cramayel France;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 流体力学;
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