Spurious numerical oscillations in simulation of supersonic flows using shock-capturing schemes

被引:26
|
作者
Lee, TK [1 ]
Zhong, XL [1 ]
机构
[1] Univ Calif Los Angeles, Dept Aerosp & Mech Engn, Los Angeles, CA 90095 USA
关键词
D O I
10.2514/2.732
中图分类号
V [航空、航天];
学科分类号
08 ; 0825 ;
摘要
The numerical simulation of transitional and turbulent Bows in supersonic boundary layers often involves a physical process of a shock-disturbance wave interaction in complex multidimensional flowfields. For such simulations, it is required that there be a high order of accuracy in capturing the shock waves without spurious numerical disturbances. Evaluation of the numerical oscillations generated behind a stationary bow shock by using high-order shock-capturing schemes in computing multidimensional steady supersonic Bow over a circular cylinder is carried out. The numerical methods that are studied are the Total Variation Diminishing scheme and the Essentially Non-Oscillatory scheme. Although the general aerodynamic properties are appropriately captured by the shock-capturing schemes, it is shown that there are numerical oscillations in the gradients of the aerodynamic properties in the steady flowfield behind the bow shock, such as for vorticity These spurious numerical oscillations in the flowfield solution may hinder any attempt at tracking the propagation of physical disturbances behind the shock if unsteady simulations are carried out. They can be significant enough to pollute a flowfield containing small physical disturbances, It is shown that the effects of grid refinement do not reduce the oscillations but rather decrease their wavelength. it is also shown that, by roughly aligning the shock with the grid, the amplitude of these spurious oscillations can be reduced but not eliminated.
引用
收藏
页码:313 / 319
页数:7
相关论文
共 50 条
  • [31] Shock-capturing with natural high-frequency oscillations
    Zhou, YC
    Gu, Y
    Wei, GW
    INTERNATIONAL JOURNAL FOR NUMERICAL METHODS IN FLUIDS, 2003, 41 (12) : 1319 - 1338
  • [32] Numerical symmetry-preserving techniques for low-dissipation shock-capturing schemes
    Fleischmann, Nico
    Adami, Stefan
    Adams, Nikolaus A.
    COMPUTERS & FLUIDS, 2019, 189 : 94 - 107
  • [33] SHOCK-CAPTURING TECHNIQUE FOR HYPERSONIC, CHEMICALLY RELAXING FLOWS
    EBERHARDT, S
    BROWN, K
    JOURNAL OF SPACECRAFT AND ROCKETS, 1987, 24 (06) : 481 - 488
  • [34] Improved shock-capturing methods for multicomponent and reacting flows
    Ton, VT
    JOURNAL OF COMPUTATIONAL PHYSICS, 1996, 128 (01) : 237 - 253
  • [35] Improved shock-capturing methods for multicomponent and reacting flows
    Ton, Vinh T.
    1996, Academic Press Inc. (128)
  • [36] Computation of inviscid supersonic flows around cylinders and spheres with the SUPG formulation and Y Zβ shock-capturing
    Tezduyar, Tayfun E.
    Senga, Masayoshi
    Vicker, Darby
    COMPUTATIONAL MECHANICS, 2006, 38 (4-5) : 469 - 481
  • [37] Theoretical link in numerical shock thickness and shock-capturing dissipation
    Ida, Ryosuke
    Tamaki, Yoshiharu
    Kawai, Soshi
    JOURNAL OF COMPUTATIONAL PHYSICS, 2024, 505
  • [38] Numerical simulation of infragravity waves in fringing reefs using a shock-capturing non-hydrostatic model
    Ma, Gangfeng
    Su, Shih-Feng
    Liu, Shuguang
    Chu, Jyh-Cheng
    OCEAN ENGINEERING, 2014, 85 : 54 - 64
  • [39] MSAT: Matrix stability analysis tool for shock-capturing schemes
    Ren, Weijie
    Xie, Wenjia
    Zhang, Ye
    Yu, Hang
    Tian, Zhengyu
    SOFTWAREX, 2023, 24
  • [40] Numerical dissipation control in high order shock-capturing schemes for LES of low speed flows (vol 307, pg 189, 2016)
    Kotov, D. V.
    Yee, H. C.
    Wray, A. A.
    Sjogreen, Bjorn
    Kritsuk, A. G.
    JOURNAL OF COMPUTATIONAL PHYSICS, 2018, 352 : 637 - 637