Modeling the distribution of magnetic fluxes in field concentrations in a solar active region

被引:0
|
作者
Carolus J. Schrijver
Alan M. Title
Hermance J. Hagenaar
Richard A. Shine
机构
[1] Stanford-Lockheed Institute for Space Research,Dept. H1
[2] University of Utrecht,12
来源
Solar Physics | 1997年 / 175卷
关键词
Convection; Active Region; Field Strength; Flux Density; Magnetic Flux;
D O I
暂无
中图分类号
学科分类号
摘要
Much of the magnetic field in solar and stellar photospheres is arranged into clusters of ‘flux tubes’, i.e., clustered into compact areas in which the intrinsic field strength is approximately a kilogauss. The flux concentrations are constantly evolving as they merge with or annihilate against other concentrations, or fragment into smaller concentrations. These processes result in the formation of concentrations containing widely different fluxes. Schrijver et al. (1997, Paper I) developed a statistical model for this distribution of fluxes, and tested it on data for the quiet Sun. In this paper we apply that model to a magnetic plage with an average absolute flux density that is 25 times higher than that of the quiet network studied in Paper I. The model result matches the observed distribution for the plage region quite accurately. The model parameter that determines the functional form of the distribution is the ratio of the fragmentation and collision parameters. We conclude that this ratio is the same in the magnetic plage and in quiet network. We discuss the implications of this for (near-)surface convection, and the applicability of the model to stars other than the Sun and as input to the study of coronal heating.
引用
收藏
页码:329 / 340
页数:11
相关论文
共 50 条
  • [1] Modeling the distribution of magnetic fluxes in field concentrations in a solar active region
    Schrijver, CJ
    Title, AM
    Hagenaar, HJ
    Shine, RA
    SOLAR PHYSICS, 1997, 175 (02) : 329 - 340
  • [2] Magnetic field reconstruction in a solar active region
    Wang, H
    Yan, Y
    Sakurai, T
    RECENT INSIGHTS INTO THE PHYSICS OF THE SUN AND HELIOSPHERE: HIGHLIGHTS FROM SOHO AND OTHER SPACE MISSIONS, 2001, (203): : 328 - 330
  • [3] The solar active region magnetic field and energetics
    Hu, Qiang
    Deng, Na
    Choudhary, Debi P.
    Dasgupta, B.
    Su, Jiangtao
    PHYSICS OF SUN AND STAR SPOTS, 2011, (273): : 369 - 373
  • [4] Light Bridge and Magnetic Field in a Solar Active Region
    Wang, Huaning
    Rao, Changhui
    Gu, Naiting
    Zhong, Libo
    Huang, Xin
    ASTROPHYSICAL JOURNAL, 2022, 939 (01):
  • [5] Magnetic Field Evolution of the Solar Active Region 13664
    Jarolim, Robert
    Veronig, Astrid M.
    Purkhart, Stefan
    Zhang, Peijin
    Rempel, Matthias
    arXiv,
  • [6] Magnetic Field Evolution of the Solar Active Region 13664
    Jarolim, Robert
    Veronig, Astrid M.
    Purkhart, Stefan
    Zhang, Peijin
    Rempel, Matthias
    ASTROPHYSICAL JOURNAL LETTERS, 2024, 976 (01)
  • [7] Solar flare prediction and magnetic field evolution in solar active region
    Wang, HN
    Zhang, GQ
    Zhu, CL
    Sun, JL
    HIGHLIGHTS OF ASTRONOMY, VOL 12, 2002, 12 : 396 - 397
  • [9] Relation between the active region magnetic field and solar flares
    Podgorny, A. I.
    Podgorny, I. M.
    Meshalkina, N. S.
    GEOMAGNETISM AND AERONOMY, 2013, 53 (06) : 690 - 698
  • [10] Relation between the active region magnetic field and solar flares
    A. I. Podgorny
    I. M. Podgorny
    N. S. Meshalkina
    Geomagnetism and Aeronomy, 2013, 53 : 690 - 698