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Entropy preserving low dissipative shock capturing with wave-characteristic based sensor for high-order methods

机译:基于波特征的传感器保持低耗散冲击捕获的高阶方法

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Shock capturing procedures are required to stabilise numerical simulations of gas dynamics problems featuring non-isentropic discontinuities. In the present work, particular attention is focused on the expected non-monotonicity of the entropy profile across shock waves. A peculiar physical property which was not considered so far in the evaluation of shock capturing techniques. In the context of high-order spectral difference methods and using most recent discontinuity sensors based on the decay rate of the modes of the amplitude of characteristic waves, results show how the choice of a physical-based procedure (additional viscosity) returns a better description of shocks compared to approaches relying on the direct addition of a Laplacian term in the solved equations. Various canonical compressible flows are simulated, in one-, two-, and three-dimensional setups, to illustrate the performance and flexibility of the proposed approach. It is shown that the addition of a well-calibrated bulk viscosity is capable of smoothing out discontinuities without an excessive damping of vortical structures, preserving also specific compressible flow physics, as the non-monotonic entropy profiles through the shocks. (C) 2019 Elsevier Ltd. All rights reserved.
机译:需要冲击捕获程序来稳定具有非等式不连续性的气体动力学问题的数值模拟。在目前的工作中,特别注意跨越冲击波的熵曲线的预期非单调性。到目前为止,在评估冲击捕获技术的情况下,迄今未考虑的特殊物理性质。在高阶频谱差异方法的背景下,使用基于特征波幅度的模式的衰减率的最近的不连续性传感器,结果表明了如何选择基于物理的过程(额外粘度)返回更好的描述与依赖于解决方程中拉普拉斯术语的直接添加的方法相比,冲击相比。模拟各种规范可压缩流,在一个,两个和三维设置中,以说明所提出的方法的性能和灵活性。结果表明,添加良好的校准的体粘度能够平滑不断的不连续性而没有过度阻尼的涡流结构,保持特定的可压缩流物理,作为通过冲击的非单调熵曲线。 (c)2019年elestvier有限公司保留所有权利。

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