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Large Eddy Simulation of Bypass Transition in Vane Passage with Freestream Turbulence

机译:自由流湍流叶片通道旁通过渡的大涡模拟

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High Reynolds flow over a nozzle guide-vane with elevated inflow turbulence was simulated using wall-resolved large eddy simulation (LES). The simulations were undertaken at an exit Reynolds number of 0.5 × 10~6 and inflow turbulence levels of 0.7% and 7.9% and for uniform heat-flux boundary conditions corresponding to the measurements of (Varty, J. W., and Ames, F. E., 2016, ASME Paper No. IMECE2016-67029). The predicted heat transfer distribution over the vane is in excellent agreement with measurements. At higher freestream turbulence, the simulations accurately capture the laminar heat transfer augmentation on the pressure surface and the transition to turbulence on the suction surface. The bypass transition on the suction surface is preceded by boundary layer streaks formed under the external forcing of freestream disturbances which breakdown to turbulence through inner mode secondary instabilities. Underneath the locally formed turbulent spot, heat transfer coefficient spikes and generally follows the same pattern as the turbulent spot. The details of the flow and temperature fields on the suction side are characterized and first and second order statistics are documented. The turbulent Prandtl number in the boundary layer is generally in the range of 0.7., but decays rapidly near the wall.
机译:使用壁解析大涡模拟(LES)模拟了高雷诺兹流量在喷嘴导叶上的流入湍流。在出口雷诺数为0.5×10〜6且流入湍流水平为0.7%和7.9%的情况下进行了模拟,并且对于均匀的热通量边界条件进行了对应于(Varty,JW,and Ames,FE,2016, ASME文件号IMECE2016-67029)。叶片上的预计传热分布与测量值非常吻合。在较高的自由流湍流下,模拟可准确地捕获压力表面上的层流传热增量以及在吸力表面上向湍流的过渡。在吸力表面上的旁路过渡之前,是在自由流扰动的外部强迫下形成的边界层条纹,该扰动通过内部模式的次要不稳定性分解成湍流。在局部形成的湍流点下方,传热系数峰值,并且通常遵循与湍流点相同的模式。表征了吸入侧的流场和温度场的细节,并记录了一阶和二阶统计量。边界层中的湍流普朗特数通常在0.7。的范围内,但在壁附近迅速衰减。

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