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Radiation Coupling with the FUN3D Unstructured-Grid CFD Code

机译:与FUN3D非结构化网格CFD代码的辐射耦合

摘要

The HARA radiation code is fully-coupled to the FUN3D unstructured-grid CFD code for the purpose of simulating high-energy hypersonic flows. The radiation energy source terms and surface heat transfer, under the tangent slab approximation, are included within the fluid dynamic ow solver. The Fire II flight test, at the Mach-31 1643-second trajectory point, is used as a demonstration case. Comparisons are made with an existing structured-grid capability, the LAURA/HARA coupling. The radiative surface heat transfer rates from the present approach match the benchmark values within 6%. Although radiation coupling is the focus of the present work, convective surface heat transfer rates are also reported, and are seen to vary depending upon the choice of mesh connectivity and FUN3D ux reconstruction algorithm. On a tetrahedral-element mesh the convective heating matches the benchmark at the stagnation point, but under-predicts by 15% on the Fire II shoulder. Conversely, on a mixed-element mesh the convective heating over-predicts at the stagnation point by 20%, but matches the benchmark away from the stagnation region.
机译:HARA辐射代码完全耦合到FUN3D非结构化网格CFD代码,以模拟高能高超音速流。在切线平板近似下,辐射动力源项和表面热传递包含在流体动力流求解器中。以Fire II的飞行测试为例,该飞行测试以1643马赫的飞行时间为轨迹。与现有的结构化网格功能LAURA / HARA耦合进行了比较。本方法的辐射表面传热速率与基准值匹配在6%之内。尽管辐射耦合是当前工作的重点,但对流表面传热速率也有报道,并且据网状连接和FUN3D ux重建算法的选择而有所不同。在四面体单元网格上,对流加热在停滞点与基准相匹配,但在Fire II肩上预测不足15%。相反,在混合元素网格上,对流加热会在停滞点高出20%,但与远离停滞区域的基准相匹配。

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    Wood William A.;

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  • 年度 2012
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