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Numerical Simulation of Vitiation Effects on a Hydrogen-Fueled Dual-Mode Scramjet

机译:氢燃料双模超燃发动机气蚀效果的数值模拟

摘要

The Wind-US computational fluid dynamics (CFD) flow solver was used to simulate dual-mode direct-connect ramjet/scramjet engine flowpath tests conducted in the University of Virginia (UVa) Supersonic Combustion Facility (SCF). The objective was to develop a computational capability within Wind-US to aid current hypersonic research and provide insight to flow as well as chemistry details that are not resolved by instruments available. Computational results are compared with experimental data to validate the accuracy of the numerical modeling. These results include two fuel-off non-reacting and eight fuel-on reacting cases with different equivalence ratios, split between one set with a clean (non-vitiated) air supply and the other set with a vitiated air supply (12 percent H2O vapor). The Peters and Rogg hydrogen-air chemical kinetics model was selected for the scramjet simulations. A limited sensitivity study was done to investigate the choice of turbulence model and inviscid flux scheme and led to the selection of the k-epsilon model and Harten, Lax and van Leer (for contact waves) (HLLC) scheme for general use. Simulation results show reasonably good agreement with experimental data and the overall vitiation effects were captured.
机译:Wind-US计算流体动力学(CFD)流量求解器用于模拟在弗吉尼亚大学(UVa)的超音速燃烧设施(SCF)中进行的双模式直接连接冲压喷气发动机/超燃冲压发动机流路测试。目的是在Wind-US内开发一种计算能力,以协助当前的超音速研究,并提供对流动以及化学细节的认识,而这些细节无法通过可用的仪器解决。将计算结果与实验数据进行比较,以验证数值建模的准确性。这些结果包括两个当量比不同的不带燃料的反应堆和八个不带燃料的反应堆,分别在一组使用干净(无通风)的空气供应和另一组使用通风的供气(12%H2O蒸气)之间进行分配。 )。选择了Peters和Rogg氢空气化学动力学模型进行超燃冲压发动机仿真。进行了有限的敏感性研究,以研究湍流模型和无粘性通量方案的选择,并导致选择k-ε模型和Harten,Lax和van Leer(用于接触波)(HLLC)方案作为通用方案。仿真结果表明与实验数据具有良好的一致性,并且捕获了整体的悬浮效应。

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