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Rotational and vibrational nonequilibrium effects in rarefied, hypersonic flow

机译:稀疏高超声速流动中的旋转和振动非平衡效应

摘要

Results are reported for an investigation into the methods by which energy transfer is calculated in the Direct Simulation Monte Carlo method. Description is made of a recently developed energy exchange model that deals with the translational and rotational modes. A new model for simulating the transfer of energy between the translational and vibrational modes is also explained. This model allows the vibrational relaxation time to follow the temperature dependence predicted by the Landau-Teller theory at moderate temperatures. For temperatures in excess of about 8000K the vibrational model is extended to include an empirical result for the relaxation time. The effect of introducing these temperature dependent collision numbers into the DSMC technique is assessed by making calculations representative of the stagnation streamline of a hypersonic space vehicle. Both thermal and chemical nonequilibrium effects are included while the flow conditions have been chosen such that ionization and radiation may be neglected. The introduction of these new models is found to significantly affect the degree of thermal nonequilibrium observed in the flowfield. Larger, and more widely ranging, differences in the results obtained with the different energy exchange probabilities are found when a significant amount of internal energy is included in the calculation of chemical nonequilibrium.
机译:报告了结果,以研究直接模拟蒙特卡洛方法中的能量转移方法。描述了最近开发的处理平移和旋转模式的能量交换模型。还解释了一种用于模拟平移和振动模式之间的能量转移的新模型。该模型允许振动松弛时间在中等温度下遵循Landau-Teller理论预测的温度依赖性。对于超过大约8000K的温度,振动模型将扩展为包括松弛时间的经验结果。通过使计算代表超音速航天器的停滞流线,可以评估将这些与温度相关的碰撞次数引入DSMC技术的效果。在选择流动条件时可以考虑热和化学非平衡效应,从而可以忽略电离和辐射。发现这些新模型的引入会显着影响流场中观察到的热不平衡程度。当在化学非平衡计算中包含大量内部能量时,会发现使用不同的能量交换概率获得的结果的差异更大且范围更广。

著录项

  • 作者

    Boyd Iain D.;

  • 作者单位
  • 年度 1989
  • 总页数
  • 原文格式 PDF
  • 正文语种
  • 中图分类
  • 入库时间 2022-08-20 20:30:11

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