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Numerical Studies of Laser-Induced Energy Deposition for Supersonic Flow Control

机译:超声速控制激光诱导能量沉积的数值研究

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This work deals with the computational study of localized laser energy deposition in supersonic flows. A model for Nd: YAG laser energy deposition in air has been developed for this purpose. It is designed to predict the fluid dynamic effects of the energy deposition process in supersonic flows. The key physical processes are captured, including inverse bremsstrahlung absorption, evolution of the plasma shape and structure, air breakdown chemistry, and the subsequent fluid dynamics. The model is validated using measurements of experiments done in quiescent air. The effects of energy deposition in three-dimensional supersonic flow past sphere and a flow with Edney type Ⅳ shock-shock interaction were studied. The energy deposition was found to be effective in reducing the peak surface pressure, but not as effective in lowering the surface heat-transfer rate. In the case of flow with Edney type Ⅳ shock-shock interaction, a study was performed to find the optimal location for the energy deposition, for which there is maximum decrease in the surface pressure.
机译:这项工作涉及超声速流中局部激光能量沉积的计算研究。为此目的,开发了一种Nd:YAG激光能量在空气中沉积的模型。它旨在预测超声速流中能量沉积过程的流体动力学效应。捕获了关键的物理过程,包括反向致辐射吸收,等离子体形状和结构的演变,空气分解化学以及随后的流体动力学。使用在静态空气中进行的实验测量来验证该模型。研究了三维声速流过球体和埃德尼Ⅳ型激波-冲击相互作用流中能量沉积的影响。发现能量沉积对降低峰值表面压力有效,但对降低表面传热速率无效。对于具有EdneyⅣ型激波-冲击相互作用的流体,进行了一项研究,以寻找能量沉积的最佳位置,为此,表面压力会最大程度地降低。

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