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首页> 外文期刊>CEAS Space Journal >Numerical simulation of transpiration cooling experiments in supersonic flow using OpenFOAM
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Numerical simulation of transpiration cooling experiments in supersonic flow using OpenFOAM

机译:使用OppFoam在超音速流动中蒸腾冷却实验的数值模拟

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摘要

Transpiration cooling applied to modern ceramic matrix composite materials is an interesting concept for thermal protection of future aerospace applications. Therefore, reliable and accurate numerical tools for the simulation of transpiration cooling processes in complex flow situations and for complex porous geometries are needed. In this study, we present a fully coupled OpenFOAM solver and discuss the choice of suitable interface conditions as well as the coupling of numerical domains at the transpired surface. Additionally, a modified turbulence boundary condition for transpiration through low-porosity materials is proposed. The numerical solver is then applied to validation test cases with a flat and a double-wedge porous sample under blowing ratios up to FAir=0.75%The corresponding experiments with Carbon/Carbon samples were performed at the ITLR Hot Gas Facility at supersonic steady-state conditions, i.e. Ma=2.5and Tt=500K The simulation results are in good overall agreement with the experimental data for both test cases while capturing the influences of blowing ratio, as well as variations of the external flow field and in the heat flux distribution. Temperature predictions for the sample surface, within the porous wall, and in the downstream wake region show a good conformity to measurements, whereas deviations are observed in the direct wake. Based on the complementary insights provided by the numerical results, aspects such as the coolant through-flow behaviour as well as the sample's internal temperature distribution and heat conduction are analysed.
机译:应用于现代陶瓷基质复合材料的蒸腾冷却是未来航空航天应用的热保护的有趣概念。因此,需要用于模拟复杂流动情况和复杂多孔几何形状的蒸发冷却过程的可靠和准确的数值工具。在这项研究中,我们介绍了一个完全耦合的OpenFoam求解器,并讨论了合适的接口条件的选择以及在函数透过表面处的数值域的耦合。另外,提出了一种通过低孔隙率材料的用于蒸腾的改进的湍流边界条件。然后将数值求解器应用于验证测试用例,在吹风比下具有平坦的双楔形多孔样品,高于公平= 0.75%,在超音速稳态的ITLR热气体设施下进行碳/碳样品的相应实验条件,即MA = 2.5和TT = 500K仿真结果与测试用例的实验数据良好的整体协议,同时捕获吹吹比的影响,以及外部流场和热通量分布的变化。样品表面的温度预测在多孔壁内,并且在下游唤醒区域中显示出对测量的良好符合性,而在直接唤醒中观察到偏差。根据数值结果提供的互补见解,分析了冷却剂流动行为等方面以及样品的内部温度分布和热传导。

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