Observational Features of Large-Scale Structures as Revealed by the Catastrophe Model of Solar Eruptions

Jun Lin
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引用次数: 3

Abstract

Large-scale magnetic structures are the main carrier of major eruptions in the solar atmosphere. These structures are rooted in the photosphere and are driven by the unceasing motion of the photospheric material through a series of equilibrium configurations. The motion brings energy into the coronal magnetic field until the system ceases to be in equilibrium. The catastrophe theory for solar eruptions indicates that loss of mechanical equilibrium constitutes the main trigger mechanism of major eruptions, usually shown up as solar flares, eruptive prominences, and coronal mass ejections (CMEs). Magnetic reconnection which takes place at the very beginning of the eruption as a result of plasma instabilities/turbulence inside the current sheet, converts magnetic energy into heating and kinetic energy that are responsible for solar flares, and for accelerating both plasma ejecta (flows and CMEs) and energetic particles. Various manifestations are thus related to one another, and the physics behind these relationships is catastrophe and magnetic reconnection. This work reports on recent progress in both theoretical research and observations on eruptive phenomena showing the above manifestations. We start by displaying the properties of large-scale structures in the corona and the related magnetic fields prior to an eruption, and show various morphological features of the disrupting magnetic fields. Then, in the framework of the catastrophe theory, we look into the physics behind those features investigated in a succession of previous works, and discuss the approaches they used.
太阳爆发突变模型揭示的大尺度结构观测特征
大尺度磁结构是太阳大气大喷发的主要载体。这些结构植根于光球,并由光球材料的不断运动驱动,通过一系列平衡构型。这种运动将能量带入日冕磁场,直到系统停止处于平衡状态。太阳爆发的突变理论指出,机械平衡的丧失是大爆发的主要触发机制,通常表现为太阳耀斑、喷发日珥和日冕物质抛射(cme)。由于等离子体不稳定/电流片内部的湍流,在喷发初期发生的磁重联将磁能转化为热能和动能,这是造成太阳耀斑的原因,并加速等离子体喷射(流和日冕物质抛射)和高能粒子。因此,各种表现相互关联,这些关系背后的物理学是灾难和磁重联。本文报道了近年来在火山喷发现象的理论研究和观测方面取得的进展。我们首先展示了爆发前日冕和相关磁场的大尺度结构的性质,并展示了破坏磁场的各种形态特征。然后,在突变理论的框架下,我们研究了在之前的一系列作品中调查的这些特征背后的物理学,并讨论了他们使用的方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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