Interplanetary magnetic clouds, helicity conservation, and current-core flux-ropes

被引:140
|
作者
Kumar, A [1 ]
Rust, DM [1 ]
机构
[1] JOHNS HOPKINS UNIV, APPL PHYS LAB, LAUREL, MD 20723 USA
关键词
D O I
10.1029/96JA00544
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
A current-core flux-rope model for interplanetary magnetic clouds is presented which explains their average thermodynamic and magnetic properties. It is assumed that during a magnetic cloud's evolution, its total magnetic helicity, flux and mass are conserved and that the dynamics of a cloud is governed by the Lorentz self-force acting on its curved portions. Total magnetic energy and current in a magnetic cloud decrease monotonically as it elongates. Part of this magnetic energy is lost in overcoming solar gravity, part goes into the bulk kinetic energy, and the rest can be assumed to go into heating the plasma inside the cloud. Due to this dissipation of magnetic energy as heat, the temperature of an expanding cloud goes through a maximum before the cloud leaves the corona. The temperature may reach 1.7 x 10(6) K. As a cloud expands into interplanetary space, the total plasma beta asymptotically approaches a constant value between 0.39 and 0.52, irrespective of its initial value. Apart from explaining the heating and expansion of magnetic clouds, this model also provides expressions (scaling laws) for the magnetic field strength, temperature, radius, density, asymmetry of the magnetic field strength profile, slope of the plasma velocity profile inside clouds, and plasma beta, as functions of distance from the Sun. These theoretical results are compared with cloud data obtained between 0.3 and 4 AU from the Sun. The comparisons show a good agreement between observation and theory.
引用
收藏
页码:15667 / 15684
页数:18
相关论文
共 50 条
  • [1] Helicity conservation in expanding plasmas: Application to interplanetary magnetic clouds
    Kumar, A
    Rust, DM
    SOLAR WIND EIGHT - PROCEEDINGS OF THE EIGHTH INTERNATIONAL SOLAR WIND CONFERENCE, 1996, (382): : 434 - 437
  • [2] EVOLUTION OF MAGNETIC-FLUX ROPES ASSOCIATED WITH FLUX-TRANSFER EVENTS AND INTERPLANETARY MAGNETIC CLOUDS
    WEI, CQ
    LEE, LC
    WANG, S
    AKASOFU, SI
    JOURNAL OF GEOPHYSICAL RESEARCH-SPACE PHYSICS, 1991, 96 (A2) : 1619 - 1632
  • [3] Magnetic Flux and Helicity of Magnetic Clouds
    P. Démoulin
    M. Janvier
    S. Dasso
    Solar Physics, 2016, 291 : 531 - 557
  • [4] Magnetic Flux and Helicity of Magnetic Clouds
    Demoulin, P.
    Janvier, M.
    Dasso, S.
    SOLAR PHYSICS, 2016, 291 (02) : 531 - 557
  • [5] Statistical Relationship Between Interplanetary Magnetic Field Conditions and the Helicity Sign of Flux Transfer Event Flux Ropes
    Kieokaew, R.
    Lavraud, B.
    Fargette, N.
    Marchaudon, A.
    Genot, V.
    Jacquey, C.
    Gershman, D.
    Giles, B.
    Torbert, R.
    Burch, J.
    GEOPHYSICAL RESEARCH LETTERS, 2021, 48 (06)
  • [6] Homotopy formulas for the magnetic vector potential and magnetic helicity: The Parker spiral interplanetary magnetic field and magnetic flux ropes
    Webb, G. M.
    Hu, Q.
    Dasgupta, B.
    Zank, G. P.
    JOURNAL OF GEOPHYSICAL RESEARCH-SPACE PHYSICS, 2010, 115
  • [7] The magnetic helicity of an interplanetary hot flux rope
    Dasso, S
    Mandrini, CH
    Démoulin, P
    SOLAR WIND TEN, PROCEEDINGS, 2003, 679 : 786 - 789
  • [8] Magnetic helicity content in solar wind flux ropes
    Dasso, Sergio
    UNIVERSAL HELIOPHYSICAL PROCESSES, 2009, (257): : 379 - 389
  • [9] Comparative Analyses of Plasma Properties and Composition in Two Types of Small-scale Interplanetary Flux-ropes
    Huang, Jin
    Liu, Yu
    Liu, Jihong
    Shen, Yuandeng
    ASTROPHYSICAL JOURNAL LETTERS, 2020, 899 (02)
  • [10] Solar activities associated with interplanetary magnetic flux ropes
    Watari, S
    Watanabe, T
    Marubashi, K
    STRUCTURE, ENERGETICS AND DYNAMICS OF THE CORONA AND THE HELIOSPHERE DURING THE RISING PHASE OF THE 23RD SOLAR CYCLE, 2002, 29 (03): : 451 - 455