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Low-dissipation Advection Schemes Designed for Large Eddy Simulations of Hypersonic Propulsion Systems

机译:高耗能推进系统大涡模拟的低耗平流方案

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The 2nd-order upwind inviscid flux scheme implemented in the multi-block, structured grid, cell centered, finite volume, high-speed reacting flow code VULCAN has been modified to reduce numerical dissipation. This modification was motivated by the desire to improve the codes ability to perform large eddy simulations. The reduction in dissipation was accomplished through a hybridization of non-dissipative and dissipative discontinuity-capturing advection schemes that reduces numerical dissipation while maintaining the ability to capture shocks. A methodology for constructing hybrid-advection schemes that blends non-dissipative fluxes consisting of linear combinations of divergence and product rule forms discretized using 4th-order symmetric operators, with dissipative, 3rd- or 4th -order reconstruction based upwind flux schemes was developed and implemented. A series of benchmark problems with increasing spatial and fluid dynamical complexity were utilized to examine the ability of the candidate schemes to resolve and propagate structures typical of turbulent flow, their discontinuity capturing capability and their robustness. A realistic geometry typical of a high-speed propulsion system flowpath was computed using the most promising of the examined schemes and was compared with available experimental data to demonstrate simulation fidelity.
机译:在多块,结构化网格,以单元为中心,有限体积,高速反应流代码VULCAN中实现的二阶逆风无粘性通量方案已进行了修改,以减少数值耗散。这种修改是出于提高执行大型涡流仿真的编码能力的愿望。耗散的减少是通过将非耗散和耗散的不连续性捕获对流方案进行混合来实现的,该方案可减少数值耗散,同时保持捕获冲击的能力。开发并实施了一种混合混合对流方案的方法,该方法将由散度和乘积规则形式的线性组合组成的非耗散通量混合在一起,该线性组合使用四阶对称算子离散化,并具有基于耗散,三阶或四阶重构的逆风通量方案。利用一系列随着空间和流体动力学复杂性增加的基准问题来研究候选方案解析和传播湍流典型结构的能力,不连续性捕获能力及其鲁棒性。使用最有前途的检查方案来计算高速推进系统流路典型的逼真的几何形状,并将其与可用的实验数据进行比较,以证明仿真保真度。

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