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High temperature and thermal non-equilibrium effects on the determination of free-stream flow properties in hypersonic wind tunnels

机译:高温和热非平衡影响超声波风隧道中的自由流流动性能

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摘要

Various methodologies used to derive free-stream conditions in hypersonic wind tunnels using different sets of experimental inputs are reviewed. The accuracy of a relevant but seldom used approach, involving free-stream static pressure measurements, is improved in the present work by solving numerically shock conservation equations and by accounting for the high-temperature effects typically expected in hypersonic flows (vibrational excitation, dissociation, and ionization). The numerical method implemented is also extended to handle free-stream thermal non-equilibrium provided that free-stream vibrational temperature measurements are available. The performances of the present approach are evaluated against conventional methods by determining free-stream flow properties in the von Karman Institute Longshot hypersonic wind tunnel. Uncertainties are quantified for each of the derived free-stream flow conditions. It is demonstrated that methodologies limited to Pitot pressure diagnostics in the test section fail to detect departures from ideal nozzle flow expansions, due to their inherent isentropic flow assumptions. Involving free-stream static pressure diagnostics does, however, improve the results, as validated by independent investigations. It is shown that the non-ideal nozzle flow expansion is not induced by free-stream thermal non-equilibrium since this phenomenon leads to opposite trends on free-stream flow properties with respect to those observed. Overall, free-stream static pressure probes represent a useful complement and their benefits for free-stream rebuilding methodologies are emphasized. The present free-stream rebuilding methodology is recommended to enhance the relevance of every hypersonic ground experiment. Published by AIP Publishing.
机译:综述了用于使用不同的实验输入的超声波风隧道中衍生自由流条件的各种方法。通过求解数值休克保护方程和占高效流动中通常预期的高温效果(振动激发,解离,解离,解离,解离,解离,解离,解离,所述方法,所述准确性和电离)。所实施的数值方法还扩展以处理自由流热非平衡,只要提供自由流振动温度测量。通过确定von Karman Institute Longsonic风洞的自由流流动性能来评估本方法的性能。对于每个衍生的自由流流动条件,量化不确定性。据证明,由于其固有的等熵流假设,可能导致测试部分中的皮特压力诊断的方法无法检测到理想喷嘴流动扩展的偏离。然而,涉及自由流静态压力诊断,这确实是通过独立调查验证的结果。结果表明,非理想喷嘴流动膨胀不是由自由流热非平衡引起的,因为这种现象导致对观察到的自由流流动性质的相反趋势。总的来说,自由流静态压力探头代表了有用的补充,强调了它们对自由流重建方法的益处。建议采用目前的自由流重建方法来增强每个超音速地面实验的相关性。通过AIP发布发布。

著录项

  • 来源
    《Physics of fluids》 |2018年第12期|共13页
  • 作者单位

    von Karman Inst Fluid Dynam Aeronaut &

    Aerosp Dept B-1640 Rhode St Genese Belgium;

    von Karman Inst Fluid Dynam Aeronaut &

    Aerosp Dept B-1640 Rhode St Genese Belgium;

    von Karman Inst Fluid Dynam Aeronaut &

    Aerosp Dept B-1640 Rhode St Genese Belgium;

    von Karman Inst Fluid Dynam Aeronaut &

    Aerosp Dept B-1640 Rhode St Genese Belgium;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 流体力学;
  • 关键词

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