Modified 3D Model of a Facular KNOT

被引:0
作者
Solov'ev, A. A. [1 ,2 ]
Kirichek, E. A. [1 ]
机构
[1] Russian Acad Sci, Cent Astron Observ, St Petersburg, Russia
[2] Kalmyk State Univ, Elista, Russia
基金
俄罗斯基础研究基金会;
关键词
REGION;
D O I
10.1134/S0016793220070233
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
The paper presents a modified version of a previously published 3D model of the solar facular knot (Solov'ev and Kirichek, 2019), which successfully describes the main structural features of the solar facular formations. As in the main model, we use the solution (Schatzman, 1965) in the potential approximation as the basis of the magnetic structure of the facular element. The magnetic profile of the facula, as before, has the shape of a fountain, in which thin streams of plasma rise in the center of the node and flow on its periphery along magnetic field lines. This configuration is very similar to the observed patterns (Lites et al., 2004; Jafarzadeh et al., 2017; Pietarila et al., 2009). In the new modified facula model, we use a different method to introduce force corrections into the potential distribution of the magnetic field, which causes the appearance of additional terms in the formulas for pressure and density. In the new version of the model, a change in only geometric parameters leads to a sharp change in the temperature profiles of the facular knot: instead of a dark central dip in the center of the assembly, a bright, hot formation can occur. An observational example of such a large-scale transformation is found in the Solar Dynamics Observatory data.
引用
收藏
页码:904 / 908
页数:5
相关论文
共 50 条
[21]   Forward modeling of the Mg I 12.32 μm line from a 3D magnetohydrodynamic model of an enhanced network [J].
Sedik, Mohamed ;
Bai, Xianyong ;
Li, Wenxian ;
Yang, Xiao ;
Deng, Yuanyong .
ASTRONOMY & ASTROPHYSICS, 2024, 686
[22]   Computational 2D and 3D Medical Image Data Compression Models [J].
Boopathiraja, S. ;
Punitha, V. ;
Kalavathi, P. ;
Prasath, V. B. Surya .
ARCHIVES OF COMPUTATIONAL METHODS IN ENGINEERING, 2022, 29 (02) :975-1007
[23]   Full compressible 3D MHD simulation of solar wind [J].
Matsumoto, Takuma .
MONTHLY NOTICES OF THE ROYAL ASTRONOMICAL SOCIETY, 2021, 500 (04) :4779-4787
[24]   3D Reconstruction of Urban History Based on Old Maps [J].
Herold, Hendrik ;
Hecht, Robert .
DIGITAL RESEARCH AND EDUCATION IN ARCHITECTURAL HERITAGE, 2018, 817 :63-79
[25]   IMPACT OF A 3D PLATE ON THE STRUCTURE OF A TURBULENT BOUNDARY LAYER [J].
Zhdanov, V. L. ;
Ivanov, D. A. ;
Kukharchuk, I. G. .
JOURNAL OF ENGINEERING PHYSICS AND THERMOPHYSICS, 2021, 94 (05) :1242-1254
[26]   Spectral analysis of 3D MHD models of coronal structures [J].
Zacharias, Pia ;
Bingert, Sven ;
Peter, Hardi .
ADVANCES IN SPACE RESEARCH, 2009, 43 (09) :1451-1456
[27]   Flux ropes and 3D dynamics in the relaxation scaling experiment [J].
Intrator, T. P. ;
Sun, X. ;
Dorf, L. ;
Sears, J. A. ;
Feng, Y. ;
Weber, T. E. ;
Swan, H. O. .
PLASMA PHYSICS AND CONTROLLED FUSION, 2013, 55 (12)
[28]   3D Reconstruction of Coronal Loops by the Principal Component Analysis [J].
Nistico, Giuseppe ;
Verwichte, Erwin ;
Nakariakov, Valery M. .
ENTROPY, 2013, 15 (10) :4520-4539
[29]   A Direct 3D Numerical Simulation Code for Extrusion and Mixing Processes [J].
Valette, R. ;
Coupez, T. ;
David, C. ;
Vergnes, B. .
INTERNATIONAL POLYMER PROCESSING, 2009, 24 (02) :141-147
[30]   3D hybrid modelling of the extinction of multiple cathode spots in vacuum [J].
Cao, Zhiyuan ;
Wang, Zhenxing ;
Chen, Feng ;
Xu, Yudong ;
Sun, Liqiong ;
Geng, Yingsan ;
Wang, Jianhua .
JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2020, 53 (40)