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Assessment of the LD-DSMC hybrid method for hypersonic rarefied flow

机译:评估高速稀土流动的LD-DSMC混合方法

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Hypersonic aerothermodynamics for a probe entering a planetary atmosphere is an important issue in space exploration. The probe experiences various Knudsen number regimes, ranging from rarefied to continuum, due to density variation in the planet's atmosphere. To simulate such multiscale flows, a novel hybrid particle scheme is employed in the present work. The hybrid particle scheme employs the direct simulation Monte Carlo (DSMC) method in rarefied flow regions and the low diffusion (LD) particle method in continuum flow regions. Numerical procedures in the low diffusion particle method are implemented within an existing DSMC algorithm. The hybrid scheme is assessed using two hypersonic, blunt body flow problems: Mach 10 nitrogen flow over a sphere, and Mach 40 carbon dioxide flow over the Mars Path Finder each with a global Knudsen number of 0.002. Standard DSMC and CFD results are compared with the LD-DSMC hybrid simulation results. The hybrid scheme results show good overall agreement with results from standard DSMC computation, while CFD is inaccurate especially in the wake where a highly rarefied region exists. The LD-DSMC hybrid solution is able to increase computational efficiency upto 50% in run time in comparison to DSMC. And sensitivity to numerical parameters of the LD-DSMC method is also studied. (C) 2018 Elsevier Ltd. All rights reserved.
机译:进入行星氛围的探针的超声波空气动力学是太空勘探的重要问题。探针经历了各种Knudsen号制度,从稀有的克服到连续统一体,由于地球大气层的密度变化。为了模拟这种多尺度流动,在本工作中采用一种新型的混合颗粒方案。混合颗粒方案采用稀晶流量区域的直接仿真蒙特卡罗(DSMC)方法和连续流量区域中的低扩散(LD)颗粒方法。低扩散粒子方法中的数值过程在现有的DSMC算法中实现。使用两个超音速,钝体流动问题评估混合动力车方案:Mach 10氮流在球体上流,并且Mach 40二氧化碳在火星路径发现器上流动,每个都具有0.002的全局knudsen数。将标准DSMC和CFD结果与LD-DSMC混合仿真结果进行比较。混合方案结果表现出与标准DSMC计算结果的良好总体协议,而CFD则不准确,特别是在存在高度稀有地区的瓶中。与DSMC相比,LD-DSMC混合解决方案能够将计算效率提高到50%的运行时间。还研究了对LD-​​DSMC方法的数值参数的敏感性。 (c)2018年elestvier有限公司保留所有权利。

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