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Anomalous-plasmoid-ejection-induced secondary magnetic reconnection: modeling solar flares and coronal mass ejections by laser–plasma experiments

Authors :
Jiayong Zhong
Neng Hua
Xian-Tu He
Huigang Wei
Bobin Jiang
X. X. Lin
Dawei Yuan
Mingyang Yu
Jie Zhang
Gang Zhao
Zheng-Ming Sheng
Ming Chen
Shaoen Jiang
Xun Liu
Yutong Li
Zhanfeng Qiao
Yong-Jian Tang
Quan-Li Dong
Yongkun Ding
Shoujun Wang
Jianqiang Zhu
Kai Du
Kuixi Huang
Source :
High Power Laser Science and Engineering. 1:11-16
Publication Year :
2013
Publisher :
Cambridge University Press (CUP), 2013.

Abstract

The driving mechanism of solar flares and coronal mass ejections is a topic of ongoing debate, apart from the consensus that magnetic reconnection plays a key role during the impulsive process. While present solar research mostly depends on observations and theoretical models, laboratory experiments based on high-energy density facilities provide the third method for quantitatively comparing astrophysical observations and models with data achieved in experimental settings. In this article, we show laboratory modeling of solar flares and coronal mass ejections by constructing the magnetic reconnection system with two mutually approaching laser-produced plasmas circumfused of self-generated megagauss magnetic fields. Due to the Euler similarity between the laboratory and solar plasma systems, the present experiments demonstrate the morphological reproduction of flares and coronal mass ejections in solar observations in a scaled sense, and confirm the theory and model predictions about the current-sheet-born anomalous plasmoid as the initial stage of coronal mass ejections, and the behavior of moving-away plasmoid stretching the primary reconnected field lines into a secondary current sheet conjoined with two bright ridges identified as solar flares.

Details

ISSN :
20523289 and 20954719
Volume :
1
Database :
OpenAIRE
Journal :
High Power Laser Science and Engineering
Accession number :
edsair.doi...........9c7ba8381e55ef2d40bc07402374b109