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Computation of Transverse Injection Into Supersonic Crossflow With Various Injector Orifice Geometries

机译:具有不同喷孔几何形状的超声速横流横向注入计算

摘要

Computational results are presented for the performance and flow behavior of various injector geometries employed in transverse injection into a non-reacting Mach 1.2 flow. 3-D Reynolds-Averaged Navier Stokes (RANS) results are obtained for the various injector geometries using the Wind code with the Mentor s Shear Stress Transport turbulence model in both single and multi-species modes. Computed results for the injector mixing, penetration, and induced wall forces are presented. In the case of rectangular injectors, those longer in the direction of the freestream flow are predicted to generate the most mixing and penetration of the injector flow into the primary stream. These injectors are also predicted to provide the largest discharge coefficients and induced wall forces. Minor performance differences are indicated among diamond, circle, and square orifices. Grid sensitivity study results are presented which indicate consistent qualitative trends in the injector performance comparisons with increasing grid fineness.
机译:计算结果显示了在非反应性Mach 1.2流中横向注入中使用的各种喷射器几何形状的性能和流动特性。在单物种和多物种模式下,使用风代码和Mentor的剪切应力传输湍流模型,使用Wind代码获得各种几何形状的3-D雷诺平均Navier Stokes(RANS)结果。给出了喷射器混合,穿透和诱导壁力的计算结果。在矩形喷射器的情况下,那些在自由流方向上较长的喷射器预计会产生最大程度的混合并渗透到主流中。还预计这些喷射器将提供最大的排放系数和感应壁力。在金刚石,圆形和正方形孔之间显示出较小的性能差异。提出了栅格灵敏度研究结果,该结果表明随着栅格精度的提高,喷油器性能比较中的质量定性趋势一致。

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