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Direct Simulation of Hypersonic Crossflow Instability on an Elliptic Cone

机译:椭圆锥上高超声速横流不稳定性的直接模拟

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摘要

Direct numerical simulation is performed on a 38.1% scale Hypersonic International Flight Research Experimentation Program Flight 5 forebody to study stationary crossflow instability. Computations use the US3D Navier-Stokes solver to simulate Mach 6 flow at Reynolds numbers of 8.1 x 10(6)/m and 11.8 x 10(6)/m, which are conditions used by quiet-tunnel experiments at Purdue University. Distributed roughness with point-to-point height variation on the computational grid and maximum heights of 0.5-4.0 mu m is used with the intent to emulate smooth-body transition and excite the naturally occurring most unstable disturbance wavenumber. Cases at the low-Reynolds number condition use three grid sizes, and hence three different roughness patterns, and demonstrate that the exact flow solution is dependent on the particular roughness pattern. The same roughness pattern is interpolated onto each grid, which yields similar solutions, indicating grid convergence. A steady physical mechanism is introduced for the sharp increase in wall heat flux seen in both computations and experiment at the high-Reynolds number condition. Evolution of disturbance spanwise wavelength is computed, and is found to be more sensitive to Reynolds number than roughness, indicating that the disturbance wavelength is primarily the naturally occurring, flow-selected wavelength for these cases.
机译:直接数值模拟是在38.1%的Hypersonic国际飞行研究实验计划Flight 5前体上进行的,以研究平稳的横流不稳定性。计算使用US3D Navier-Stokes解算器以雷诺数分别为8.1 x 10(6)/ m和11.8 x 10(6)/ m的雷诺数来模拟6马赫流动,这是普渡大学安静隧道实验所使用的条件。在计算网格上使用点到点高度变化且最大高度为0.5-4.0μm的分布粗糙度,旨在模拟光滑体过渡并激发自然发生的最不稳定的干扰波数。在低雷诺数条件下的情况使用三个网格大小,因此使用了三个不同的粗糙度模式,并证明了精确的流动解取决于特定的粗糙度模式。将相同的粗糙度图案插值到每个网格上,这会产生相似的解,表明网格收敛。在高雷诺数条件下的计算和实验中,引入了稳定的物理机制,以使壁热通量急剧增加。计算了扰动跨度波长的变化,发现对雷诺数比粗糙度更敏感,这表明对于这些情况,扰动波长主要是自然发生的流选择波长。

著录项

  • 来源
    《AIAA Journal》 |2017年第6期|1769-1782|共14页
  • 作者单位

    Univ Minnesota, Dept Aerosp Engn & Mech, Minneapolis, MN 55455 USA;

    Univ Minnesota, Dept Aerosp Engn & Mech, Minneapolis, MN 55455 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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