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A Comparison of Physics- and Correlation-Based Turbulence Models at Low Reynolds Numbers

机译:低雷诺数下基于物理和相关性的湍流模型的比较

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摘要

The three-dimensional unsteady Reynolds-averaged Navier-Stokes k-omega-Shear Stress Transport Langtry-Menter (SSTLM) and kT-kL-omega turbulence models were studied to understand their application and transition prediction capability for incompressible flow regimes. Additionally, a novel protocol is presented for systematically studying the near-wall flow physics over a sharp trailing-edged SD7003 airfoil subjected to flow with varying freestream intensities and angles of attack and at three chord-based Reynolds numbers of 6x104, 6x105, and 6x106. A complex low-Reynolds-number near-wall flow phenomenon known as the formation and destruction of the laminar separation bubble, eventually leading to flow transition from the laminar to the turbulent regimes, was resolved using both turbulence models; and their accuracy was compared with implicit large-eddy simulation surface pressure predictions. Mean and instantaneous flowfields were extracted, thus leading to a more thorough quantitative and qualitative comparison. Considering all flow characteristics, the correlation-based k-omega-SSTLM turbulence model was shown to predict more reasonable flow transition characteristics for simple airfoil configurations.
机译:研究了三维非稳态雷诺平均Navier-Stokesk-ω-剪切应力传递Langtry-Menter(SSTLM)和kT-kL-omega湍流模型,以了解它们在不可压缩流态下的应用和过渡预测能力。此外,提出了一种新颖的协议,用于系统研究尖锐的后缘SD7003翼型件上的近壁流物理特性,该翼型件具有不同的自由流强度和迎角,并且在基于三弦的雷诺数为6x104、6x105和6x106的情况下流动。两种湍流模型都解决了一种复杂的低雷诺数近壁流动现象,这种现象被称为层流分离泡的形成和破坏,最终导致层流向湍流态过渡。并将其准确性与隐含的大涡模拟表面压力预测进行了比较。提取了平均流场和瞬时流场,从而进行了更彻底的定量和定性比较。考虑到所有流动特性,基于相关性的k-omega-SSTLM湍流模型显示出可为简单翼型配置预测更合理的流动过渡特性。

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