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Flow Control Analysis on the Hump Model with RANS Tools

机译:使用RANS工具对驼峰模型进行流控制分析

摘要

A concerted effort is underway at NASA Langley Research Center to create a benchmark for Computational Fluid Dynamic (CFD) codes. both unstructured and structured, against a data set for the hump model with actuation. The hump model was tested in the NASA Langley 0.3-m Transonic Cryogenic Tunnel. The CFD codes used for the analyses are the FUN2D (Full Unstructured Navier-Stokes 2-Dimensional) code, the structured TLNS3D (Thin-Layer Navier-Stokes 3-Dimensional) code, and the structured CFL3D code, all developed at NASA Langley. The current investigation uses the time-accurate Reynolds-Averaged Navier-Stokes (RANS) approach to predict aerodynamic performance of the active flow control experimental database for the hump model. Two-dimensional computational results verified that steady blowing and suction and oscillatory suction/blowing can be used to significantly reduce the separated flow region on the model. Discrepancies do exist between the CFD results and experimental data in the region downstream of the slot with the largest differences in the oscillatory cases. Overall, the structured CFD codes exhibited similar behavior with each other for a wide range of control conditions, with the unstructured FUN2D code showing moderately different results in the separated flow region for the suction and oscillatory cases.
机译:NASA兰利研究中心正在齐心协力,为计算流体动力(CFD)代码创建基准。无论是非结构化的还是结构化的,都针对带有促动的驼峰模型的数据集。驼峰模型在NASA兰利0.3米跨音速低温隧道中进行了测试。用于分析的CFD代码为FUN2D(完全非结构化Navier-Stokes二维)代码,结构化TLNS3D(薄层Navier-Stokes三维)代码和结构化CFL3D代码,它们均由NASA Langley开发。当前的研究使用时间精确的雷诺平均Navier-Stokes(RANS)方法来预测驼峰模型的主动流控制实验数据库的空气动力学性能。二维计算结果证明,稳定吹气和吸气以及振荡吸气/吹气可用于显着减小模型上的分离流动区域。 CFD结果与实验数据之间在缝隙下游区域中确实存在差异,在振荡情况下差异最大。总体而言,结构化CFD代码在广泛的控制条件下表现出彼此相似的行为,对于抽吸和振荡情况,非结构化FUN2D代码在分离的流动区域中显示出适度不同的结果。

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