Origin and structures of solar eruptions II: Magnetic modeling

被引:0
|
作者
Yang Guo
Xin Cheng
MingDe Ding
机构
[1] Nanjing University,School of Astronomy and Space Science
[2] Key Laboratory for Modern Astronomy and Astrophysics (Nanjing University),undefined
[3] Ministry of Education,undefined
来源
关键词
Solar activity; Solar corona; Coronal Mass Ejections (CMEs); Solar flares; Magnetic fields; Solar photosphere;
D O I
暂无
中图分类号
学科分类号
摘要
The topology and dynamics of the three-dimensional magnetic field in the solar atmosphere govern various solar eruptive phenomena and activities, such as flares, coronal mass ejections, and filaments/prominences. We have to observe and model the vector magnetic field to understand the structures and physical mechanisms of these solar activities. Vector magnetic fields on the photosphere are routinely observed via the polarized light, and inferred with the inversion of Stokes profiles. To analyze these vector magnetic fields, we need first to remove the 180° ambiguity of the transverse components and correct the projection effect. Then, the vector magnetic field can be served as the boundary conditions for a force-free field modeling after a proper preprocessing. The photospheric velocity field can also be derived from a time sequence of vector magnetic fields. Three-dimensional magnetic field could be derived and studied with theoretical force-free field models, numerical nonlinear force-free field models, magnetohydrostatic models, and magnetohydrodynamic models. Magnetic energy can be computed with three-dimensional magnetic field models or a time series of vector magnetic field. The magnetic topology is analyzed by pinpointing the positions of magnetic null points, bald patches, and quasi-separatrix layers. As a well conserved physical quantity, magnetic helicity can be computed with various methods, such as the finite volume method, discrete flux tube method, and helicity flux integration method. This quantity serves as a promising parameter characterizing the activity level of solar active regions.
引用
收藏
页码:1408 / 1439
页数:31
相关论文
共 50 条
  • [21] Magnetic interactions during sympathetic solar eruptions
    Jiang, Yun-Chun
    Bi, Yi
    Yang, Jia-Yan
    Zheng, Rui-Sheng
    Wang, Jing-Xiu
    RESEARCH IN ASTRONOMY AND ASTROPHYSICS, 2009, 9 (05) : 603 - 612
  • [22] Magnetic cage and rope as the key for solar eruptions
    Amari, Tahar
    Canou, Aurelien
    Aly, Jean-Jacques
    Delyon, Francois
    Alauzet, Frederic
    NATURE, 2018, 554 (7691) : 211 - +
  • [23] Magnetic interactions during sympathetic solar eruptions
    Yun-Chun Jiang1
    2 National Astronomical Observatories
    ResearchinAstronomyandAstrophysics, 2009, 9 (05) : 603 - 612
  • [24] Solar Eruptions in Nested Magnetic Flux Systems
    Karpen, Judith T.
    Kumar, Pankaj
    Wyper, Peter F.
    Devore, C. Richard
    Antiochos, Spiro K.
    ASTROPHYSICAL JOURNAL, 2024, 966 (01):
  • [25] Magnetic gradient: a natural driver of solar eruptions
    Tan, Bao-Lin
    Yan, Yan
    Li, Ting
    Zhang, Yin
    Chen, Xing-Yao
    RESEARCH IN ASTRONOMY AND ASTROPHYSICS, 2020, 20 (06)
  • [26] Magnetic cage and rope as the key for solar eruptions
    Tahar Amari
    Aurélien Canou
    Jean-Jacques Aly
    Francois Delyon
    Fréderic Alauzet
    Nature, 2018, 554 : 211 - 215
  • [27] Solar Vortex Tubes. II. On the Origin of Magnetic Vortices
    Silva, Suzana S. A.
    Verth, Gary
    Rempel, Erico L.
    Shelyag, Sergiy
    Schiavo, Luiz A. C. A.
    Fedun, Viktor
    ASTROPHYSICAL JOURNAL, 2021, 915 (01):
  • [28] Type II radio bursts and energetic solar eruptions
    Gopalswamy, N
    Aguilar-Rodriguez, E
    Yashiro, S
    Nunes, S
    Kaiser, ML
    Howard, RA
    JOURNAL OF GEOPHYSICAL RESEARCH-SPACE PHYSICS, 2005, 110 (A12)
  • [29] Structure and evolution of magnetic fields associated with solar eruptions
    Haimin Wang
    Chang Liu
    Research in Astronomy and Astrophysics, 2015, 15 (02) : 145 - 174
  • [30] SOLAR MULTIPLE ERUPTIONS FROM A CONFINED MAGNETIC STRUCTURE
    Lee, Jeongwoo
    Liu, Chang
    Jing, Ju
    Chae, Jongchul
    ASTROPHYSICAL JOURNAL LETTERS, 2016, 829 (01)