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Assessment of turbulence model length scales based on Hybrid RANS-LES modeling of unsteady flow over airfoil

机译:基于混合RANS-LES的翼型非定常流动的湍流模型长度尺度评估

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Current work investigates the sensitivity of DES type hybrid methods toward turbulence length scales and anisotropy of grid. Different length scales available from literature are implemented into a compressible, finite volume GPU accelerated Navier-Stokes solver. A novel length scale is proposed based on the properties of available length scales and the grid requirements in mildly separated flows. Predictive capabilities of RANS and DDES method with the conventional and proposed length scales is assessed by conducting static and dynamic stall simulations on SCI095 and modified VR12 airfoils. Two different grids are used to examine the boundary layer resolving capabilities of the turbulence length scales. RANS based Spalart-Allmaras model and DDES method with conventional length scale predicted excessive eddy viscosity in the boundary layer of flows operating in near-stall regime. Proposed length scale demonstrated good predictive capabilities in mildly separated flows by reducing eddy viscosity levels at the outer region boundary layer. Three dimensional dynamic stall simulations are also conducted on flows over modified VR12 airfoil at moderate reduced frequency. When using proposed length scale, DDES method captured multiple lift peaks before stall and enabled flow to enter deep stall. The predictions agreed well with experimental data and captured cycle-to-cycle variation of integrated aerodynamic quantities. This work further employs specialized treatment to model laminar-turbulent transition and very low Mach number flows.
机译:当前的工作研究了DES型混合方法对湍流长度尺度和网格各向异性的敏感性。可从文献中获得的不同长度比例被实现为可压缩的,有限体积的GPU加速的Navier-Stokes求解器。基于可用长度标度的性质和轻度分离流中的网格要求,提出了一种新颖的长度标度。通过在SCI095和改进的VR12机翼上进行静态和动态失速仿真,可以评估RANS和DDES方法在常规和建议长度尺度下的预测能力。使用两个不同的网格来检查湍流尺度的边界层解析能力。基于RANS的Spalart-Allmaras模型和具有常规长度尺度的DDES方法预测了在接近失速状态下流动边界层的涡流粘度过大。拟议的长度尺度通过降低外部区域边界层的涡流粘度水平,在轻度分离的流动中显示出良好的预测能力。还以适度降低的频率对经过修改的VR12机翼上的流动进行了三维动态失速模拟。当使用建议的长度标尺时,DDES方法在失速之前捕获了多个升力峰值,并使流量进入了深度失速状态。这些预测与实验数据和捕获的空气动力学量的逐周期变化非常吻合。这项工作还采用了专门的处理方法来模拟层流湍流过渡和非常低的马赫数流。

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