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Computational simulations of microscale shock-vortex interaction using a mixed discontinuous Galerkin method

机译:混合不连续伽勒金方法的微观尺度涡旋相互作用的计算模拟

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摘要

This study extensively investigates the physics of microscale shock-vortex interaction of argon gas by solving conservation laws with non-Newtonian constitutive relations. In order to solve the conservation laws and associated implicit type second-order constitutive equations of viscous stress and heat flux numerically, a mixed discontinuous Galerkin (DG) formulation is developed. Three major characteristics are found in the microscale shock-vortex interaction in thermal nonequilibrium: the absence of quadrupolar acoustic wave structure, which is the major feature in macroscale near-equilibrium; the increase in the dissipation rate during the strong interaction; and the decrease in enstrophy during the weak interaction. Moreover, we show that the strong shock-vortex interaction in high shock or vortex Mach numbers can cause an increase in enstrophy. We also find the viscous effect to be dominant in the net vorticity generation. Among shock and vortex parameters, the shock Mach number, vortex Mach number and vortex size turn out to play a critical role in the deformation of the vortex and the strength of interaction, which in turn govern the evolution of vorticity due to the viscous effects, the change in the dissipation rate and the increase or decrease in enstrophy during the interaction.
机译:本研究通过求解具有非牛顿本构关系的守恒定律,广泛研究了氩气的微观尺度涡旋相互作用。为了数值求解粘滞应力和热通量的守恒律和相关的隐式二阶本构方程,开发了一种混合不连续Galerkin(DG)公式。在热非平衡中的微观尺度涡旋相互作用中发现了三个主要特征:没有四极声波结构,这是宏观尺度近平衡的主要特征;强相互作用期间耗散率的增加;以及在弱互动过程中的熵减少。此外,我们表明,在高冲击或涡旋马赫数下,强烈的冲击-涡旋相互作用会引起涡旋增加。我们还发现粘性效应在净涡度产生中占主导地位。在激波和涡旋参数中,激波马赫数,涡旋马赫数和旋涡大小在旋涡的变形和相互作用强度中起着至关重要的作用,它们又由于粘性效应而控制着旋涡的演变,相互作用过程中耗散率的变化和熵的增加或减少。

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