Fast Magnetic Reconnection with Turbulence in High Lundquist Number Limit

We use extensive 3D resistive MHD simulations to study how large-scale current sheets will undergo fast reconnection in the high Lundquist number S limit (above ∼104), when the system is subject to different externally driven turbulence levels and the self-generated turbulence produced by 3D reconne...

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Published inAstrophysical journal. Letters Vol. 901; no. 2; p. L22
Main Authors Yang, Liping, Li, Hui, Guo, Fan, Li, Xiaocan, Li, Shengtai, He, Jiansen, Zhang, Lei, Feng, Xueshang
Format Journal Article
LanguageEnglish
Published Austin The American Astronomical Society 01.10.2020
IOP Publishing
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ISSN2041-8205
2041-8213
2041-8213
DOI10.3847/2041-8213/abb76b

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Summary:We use extensive 3D resistive MHD simulations to study how large-scale current sheets will undergo fast reconnection in the high Lundquist number S limit (above ∼104), when the system is subject to different externally driven turbulence levels and the self-generated turbulence produced by 3D reconnection dynamics. We find that the normalized global reconnection rate ∼0.01-0.13 is weakly dependent on S. Global reconnection with the classic inflow/outflow configurations is observed, and 3D flux ropes are hierarchically formed and ejected from reconnection regions. A statistical separation of the reconnected magnetic field lines follows a superdiffusive behavior, from which the rate is measured to be very similar to that obtained from the mixing of tracer populations. We find that the reconnection rate scales roughly linearly with the turbulence level during the peak of reconnection. This scaling is consistent with the turbulence properties produced by both the externally driven and self-generation processes. These results imply that large-scale thin current sheets tend to undergo rigorous reconnection.
Bibliography:AAS25710
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LA-UR-20-24765
USDOE Office of Science (SC), Fusion Energy Sciences (FES)
USDOE Laboratory Directed Research and Development (LDRD) Program
National Natural Science Foundation of China (NSFC)
89233218CNA000001; SC0018240; AST-1735414; 41974171; 41774157; 41731067; 41674171
USDOE National Nuclear Security Administration (NNSA)
ISSN:2041-8205
2041-8213
2041-8213
DOI:10.3847/2041-8213/abb76b