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Initiation Of Coronal Mass Ejections By Magnetic Flux Emergence In The Framework Of The Breakout Model

机译:在突破模型框架下通过磁通量产生的冕状物质抛射

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The possible role of magnetic flux emergence in the initiation of coronal mass ejections (CMEs) is investigated in the framework of the breakout model. The ideal MHD equations are solved numerically on a spherical, axisymmetric (2.5-dimensional) domain. An initial multiflux system in steady equilibrium containing a pre-eruptive region consisting of three arcades with alternating magnetic flux polarity is kept in place by the magnetic tension of the overlying closed magnetic field of a helmet streamer. The emergence of new magnetic flux in the central arcade is simulated by means of a time-dependent boundary condition on the vector potential applied at the solar base. Height-time plots of the ejected material, as well as time evolution of the magnetic, kinetic and internal energy in the entire domain as functions of flux emergence rate, are produced. The results show that the emergence of new magnetic flux in the central arcade triggers a CME. The obtained eruption corresponds to a slow CME, and conversion of magnetic energy into kinetic energy is observed.
机译:在突破模型的框架内,研究了磁通量出现在冠状物质抛射(CME)启动中的可能作用。理想的MHD方程在球形轴对称(2.5维)域上进行数值求解。稳定的初始多通量系统通过头盔飘带上方闭合的封闭磁场的磁场力保持原位,该系统包含由三个具有交替磁通量极性的拱廊组成的喷发前区域。通过在太阳能基座上施加的矢量电势上随时间变化的边界条件,模拟了中心拱廊中新磁通的出现。产生了所喷射材料的高度-时间图,以及在整个域中的磁能,动能和内能随磁通量出现速度的变化。结果表明,中央拱廊中新的磁通的出现触发了CME。所获得的喷发对应于缓慢的CME,并且观察到了磁能到动能的转换。

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