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Cited 31 time in webofscience Cited 34 time in scopus
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Computational simulations of microscale shock-vortex interaction using a mixed discontinuous Galerkin method

Authors
Xiao, H.Myong, R. S.
Issue Date
10-Dec-2014
Publisher
PERGAMON-ELSEVIER SCIENCE LTD
Keywords
CFD; Microscale shock-vortex interaction; Mixed discontinuous Galerkin method
Citation
COMPUTERS & FLUIDS, v.105, pp 179 - 193
Pages
15
Indexed
SCI
SCIE
SCOPUS
Journal Title
COMPUTERS & FLUIDS
Volume
105
Start Page
179
End Page
193
URI
https://scholarworks.gnu.ac.kr/handle/sw.gnu/18592
DOI
10.1016/j.compfluid.2014.09.027
ISSN
0045-7930
1879-0747
Abstract
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. (C) 2014 Elsevier Ltd. All rights reserved.
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Myong, Rho Shin
대학원 (기계항공우주공학부)
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