An MHD simulation model of time-dependent co-rotating solar wind

被引:29
|
作者
Hayashi, K. [1 ]
机构
[1] Stanford Univ, WW Hansen Expt Phys Lab, Stanford, CA 94305 USA
关键词
INTERPLANETARY SCINTILLATION OBSERVATIONS; MAGNETIC-FIELDS; SHOCK; CORONA; IONS; SUN;
D O I
10.1029/2011JA017490
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
We present a treatment of observation-based time-dependent boundary conditions for the inner boundary sphere in the time-dependent three-dimensional MHD simulations of the global solar wind. With this boundary treatment, we obtain super-Alfvenic MHD solutions of time-dependent co-rotating solar wind structures. The boundary variables on the inner boundary sphere, at 50 solar radii in this study, are assumed to change linearly from one instant to the next. A new feature is that, in order to maintain the divergence-free condition of the magnetic field, the changes of the time-dependent boundary magnetic field are expressed as the potential field in a thin shell volume. The solar magnetic field data from the Wilcox Solar Observatory (WSO) and the solar wind speed data from the interplanetary scintillation (IPS) observations at Nagoya University, Japan, are used as the input boundary data. The solar wind simulated with the time-dependent boundary condition is compared with the near-Earth and Ulysses in situ measurement data and the solar wind simulated with the fixed boundary condition over a 7-month period in 1991. Reasonable agreements with the in situ measurements are obtained. The differences between the two simulations in the interplanetary field line paths are significant. The three-dimensional time-dependent MHD solution of the global solar wind will help enhance space weather models and other fields in heliophysics.
引用
收藏
页数:15
相关论文
共 50 条
  • [31] Ion Charge States in a Time-Dependent Wave-Turbulence-Driven Model of the Solar Wind
    Lionello, Roberto
    Downs, Cooper
    Linker, Jon A.
    Mikic, Zoran
    Raymond, John
    Shen, Chengcai
    Velli, Marco
    SOLAR PHYSICS, 2019, 294 (01)
  • [32] Using a Numerical MHD Model to Improve Solar Wind Time Shifting
    Cameron, T. G.
    Jackel, B.
    SPACE WEATHER-THE INTERNATIONAL JOURNAL OF RESEARCH AND APPLICATIONS, 2019, 17 (05): : 662 - 671
  • [33] Numerical simulation for a co-rotating vortex pair's sounding
    Bao Z.
    Qin G.
    He W.
    Wang Y.
    Mu Y.
    Zhendong yu Chongji/Journal of Vibration and Shock, 2018, 37 (13): : 43 - 48
  • [34] Computer aided simulation of co-rotating twin screw extruders
    Kretschmer, K
    Bastian, M
    Potente, H
    Thümen, A
    KGK-KAUTSCHUK GUMMI KUNSTSTOFFE, 2005, 58 (05): : 246 - +
  • [35] Time-dependent numerical simulation of the VGF process with a rotating magnetic field
    Bellmann, M. P.
    Paetzold, O.
    Wunderwald, U.
    Stelter, M.
    Moeller, H. J.
    JOURNAL OF CRYSTAL GROWTH, 2007, 303 (01) : 250 - 252
  • [36] CONTRIBUTION TO CO-ROTATING MAGNETIC FIELD MODEL OF PULSAR
    ENDEAN, VG
    ALLEN, JE
    NATURE, 1970, 228 (5269) : 348 - &
  • [37] Simulation of co-rotating vortices based on compressible vortex method
    Huang, Haiming
    Huang, Guo
    Xu, Xiaoliang
    Li, Weijie
    INTERNATIONAL JOURNAL OF NUMERICAL METHODS FOR HEAT & FLUID FLOW, 2014, 24 (06) : 1290 - 1300
  • [38] A TIME-DEPENDENT, 3-DIMENSIONAL MHD NUMERICAL STUDY OF INTERPLANETARY MAGNETIC DRAPING AROUND PLASMOIDS IN THE SOLAR-WIND
    DETMAN, TR
    DRYER, M
    YEH, T
    HAN, SM
    WU, ST
    MCCOMAS, DJ
    JOURNAL OF GEOPHYSICAL RESEARCH-SPACE PHYSICS, 1991, 96 (A6) : 9531 - 9540
  • [39] Time-dependent acceleration of solar wind particles at interplanetary traveling shocks
    le Roux, J. A.
    PARTICLE ACCELERATION AND TRANSPORT IN THE HELIOSPHERE AND BEYOND, 2008, 1039 : 258 - 263
  • [40] Time-dependent MHD Couette flow of rotating fluid with Hall and ion-slip currents
    B.K.JHA
    C.A.APERE
    Applied Mathematics and Mechanics(English Edition), 2012, 33 (04) : 399 - 410