Developing shock-capturing difference methods

被引:0
|
作者
涂国华 [1 ]
袁湘江 [2 ]
陆利蓬 [3 ]
机构
[1] China Aerodynamics Research and Development Center,Mianyang 621000,Sichuan Province,P. R. China Tianjin Key Laboratory of Modern Engineering Mechanics,Tianjin 300072,P. R. China National CFD Laboratory,Beihang University,Beijing 100083,P. R. China
[2] China Aerodynamics Research and Development Center,Mianyang 621000,Sichuan Province,P. R. China National CFD Laboratory,Beihang University,Beijing 100083,P. R. China
[3] School of Jet Propulsion,Beihang University,Beijing 100083,P. R. China
基金
中国国家自然科学基金;
关键词
high order scheme; shock-capturing; upwind scheme; compact scheme; high resolution; conservative scheme;
D O I
暂无
中图分类号
O346.1 [断裂理论];
学科分类号
080102 ;
摘要
A new shock-capturing method is proposed which is based on upwind schemes and flux-vector splittings. Firstly, original upwind schemes are projected along characteristic directions. Secondly, the amplitudes of the characteristic decompositions are carefully controlled by limiters to prevent non-physical oscillations. Lastly, the schemes are converted into conservative forms, and the oscillation-free shock-capturing schemes are acquired. Two explicit upwind schemes (2nd-order and 3rd-order) and three compact upwind schemes (3rd-order, 5th-order and 7th-order) are modified by the method for hyperbolic systems and the modified schemes are checked on several one-dimensional and two-dimensional test cases. Some numerical solutions of the schemes are compared with those of a WENO scheme and a MP scheme as well as a compact-WENO scheme. The results show that the method with high order accuracy and high resolutions can capture shock waves smoothly.
引用
收藏
页码:477 / 486
页数:10
相关论文
共 50 条
  • [31] Shock-capturing streamline diffusion finite element methods for nonlinear conservation laws
    Johnson, C.
    Szepessy, A.
    [J]. American Society of Mechanical Engineers, Applied Mechanics Division, AMD, 1988, 95 : 101 - 108
  • [32] SEMI-IMPLICIT AND FULLY IMPLICIT SHOCK-CAPTURING METHODS FOR NONEQUILIBRIUM FLOWS
    YEE, HC
    SHINN, JL
    [J]. AIAA JOURNAL, 1989, 27 (03) : 299 - 307
  • [33] High-order shock-capturing methods for modeling dynamics of the solar atmosphere
    Bryson, S
    Kosovichev, A
    Levy, D
    [J]. PHYSICA D-NONLINEAR PHENOMENA, 2005, 201 (1-2) : 1 - 26
  • [34] Effect of Shock-Capturing Errors on Turbulence Statistics
    Larsson, Johan
    [J]. AIAA JOURNAL, 2010, 48 (07) : 1554 - 1557
  • [35] Shock-capturing approach and nonevolutionary solutions in magnetohydrodynamics
    Barmin, AA
    Kulikovskiy, AG
    Pogorelov, NV
    [J]. JOURNAL OF COMPUTATIONAL PHYSICS, 1996, 126 (01) : 77 - 90
  • [36] Improving the quantification of overshooting shock-capturing oscillations
    Zhang, Fan
    [J]. PROGRESS IN COMPUTATIONAL FLUID DYNAMICS, 2024, 24 (03): : 135 - 142
  • [37] A general framework for the evaluation of shock-capturing schemes
    Zhao, Guoyan
    Sun, Mingbo
    Memmolo, Antonio
    Pirozzoli, Sergio
    [J]. JOURNAL OF COMPUTATIONAL PHYSICS, 2019, 376 : 924 - 936
  • [38] Shock-Capturing Anomaly in the Interaction of Unsteady Disturbances with a Stationary Shock
    Chuvakhov, Pavel, V
    [J]. AIAA JOURNAL, 2021, 59 (08) : 3241 - 3251
  • [39] On shock-capturing schemes using artificial wind
    Sokolov, IV
    Timofeev, EV
    Sakai, J
    Takayama, K
    [J]. SHOCK WAVES, 1999, 9 (06) : 423 - 427
  • [40] On shock-capturing schemes using artificial wind
    I.V. Sokolov
    E.V. Timofeev
    J. Sakai
    K. Takayama
    [J]. Shock Waves, 1999, 9 : 423 - 427