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USM3D Analysis of Low Boom Configuration

机译:低动臂配置的USM3D分析

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In the past few years considerable improvement was made in NASA's in house boom prediction capability. As part of this improved capability, the USM3D Navier-Stokes flow solver, when combined with a suitable unstructured grid, went from accurately predicting boom signatures at 1 body length to 10 body lengths. Since that time, the research emphasis has shifted from analysis to the design of supersonic configurations with boom signature mitigation In order to design an aircraft, the techniques for accurately predicting boom and drag need to be determined. This paper compares CFD results with the wind tunnel experimental results conducted on a Gulfstream reduced boom and drag configuration. Two different wind-tunnel models were designed and tested for drag and boom data. The goal of this study was to assess USM3D capability for predicting both boom and drag characteristics. Overall, USM3D coupled with a grid that was sheared and stretched was able to reasonably predict boom signature. The computational drag polar matched the experimental results for a lift coefficient above 0.1 despite some mismatch in the predicted lift-curve slope.
机译:在过去的几年中,NASA的房屋潮预测能力得到了很大的提高。作为改进功能的一部分,USM3D Navier-Stokes流量求解器与合适的非结构化网格结合使用时,可以从准确地预测1个体长的动臂签名变为10个体长。自那时以来,研究重点已从分析转向具有动臂特征缓解的超音速配置设计。为了设计飞机,需要确定准确预测动臂和阻力的技术。本文将CFD结果与在湾流减小的动臂和阻力配置上进行的风洞实验结果进行了比较。设计了两种不同的风洞模型,并针对阻力和动臂数据进行了测试。这项研究的目的是评估USM3D预测动臂和阻力特性的能力。总体而言,USM3D加上经过剪切和拉伸的网格能够合理地预测动臂签名。尽管预测的升力曲线斜率有些不匹配,但计算的阻力极点与升力系数大于0.1的实验结果匹配。

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