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Shock-Wave/Boundary-Layer Interactions in Hypersonic Low Density Flows

机译:高超声速低密度流中的冲击波/边界层相互作用

摘要

Results of numerical simulations of Mach 10 air flow over a hollow cylinder-flare and a double-cone are presented where viscous effects are significant. The flow phenomena include shock-shock and shock- boundary-layer interactions with accompanying flow separation, recirculation, and reattachment. The purpose of this study is to promote an understanding of the fundamental gas dynamics resulting from such complex interactions and to clarify the requirements for meaningful simulations of such flows when using the direct simulation Monte Carlo (DSMC) method. Particular emphasis is placed on the sensitivity of computed results to grid resolution. Comparisons of the DSMC results for the hollow cylinder-flare (30 deg.) configuration are made with the results of experimental measurements conducted in the ONERA RSCh wind tunnel for heating, pressure, and the extent of separation. Agreement between computations and measurements for various quantities is good except that for pressure. For the same flow conditions, the double- cone geometry (25 deg.- 65 deg.) produces much stronger interactions, and these interactions are investigated numerically using both DSMC and Navier-Stokes codes. For the double-cone computations, a two orders of magnitude variation in free-stream density (with Reynolds numbers from 247 to 24,7 19) is investigated using both computational methods. For this range of flow conditions, the computational results are in qualitative agreement for the extent of separation with the DSMC method always predicting a smaller separation region. Results from the Navier-Stokes calculations suggest that the flow for the highest density double-cone case may be unsteady; however, the DSMC solution does not show evidence of unsteadiness.
机译:提出了在粘性影响显着的情况下,在中空圆筒形火炬和双锥体上进行的10马赫气流的数值模拟结果。流动现象包括激波-冲击和激波-边界层相互作用以及伴随的流分离,再循环和重新附着。这项研究的目的是增进对由此类复杂相互作用产生的基本气体动力学的理解,并阐明使用直接模拟蒙特卡洛(DSMC)方法进行此类流动进行有意义的模拟的要求。特别强调计算结果对网格分辨率的敏感性。中空圆柱扩口(30度)配置的DSMC结果与在ONERA RSCh风洞中进行的加热,压力和分离程度的实验测量结果进行了比较。除了压力以外,各种量的计算和测量之间的一致性很好。对于相同的流动条件,双锥几何形状(25度至65度)产生更强的相互作用,并且使用DSMC和Navier-Stokes编码对这些相互作用进行了数值研究。对于双锥计算,使用两种计算方法研究了自由流密度的两个数量级变化(雷诺数从247到24,7 19)。对于此范围的流动条件,计算结果与DSMC方法始终预测较小分离区域的分离程度在质量上吻合。 Navier-Stokes计算得出的结果表明,最高密度双锥情况下的流量可能不稳定。但是,DSMC解决方案并未显示出不稳定的迹象。

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