Bulletin of the American Physical Society
60th Annual Meeting of the APS Division of Plasma Physics
Volume 63, Number 11
Monday–Friday, November 5–9, 2018; Portland, Oregon
Session GP11: Poster Session III: Basic Plasma Physics: General; Space and Astrophysical Plasmas; ICF Measurement and Computational Techniques, Direct and Indirect Drive; MIF Science and Technology (9:30am-12:30pm)
Tuesday, November 6, 2018
OCC
Room: Exhibit Hall A1&A
Abstract ID: BAPS.2018.DPP.GP11.59
Abstract: GP11.00059 : Role of the plasmoid instability in magnetohydrodynamic turbulence*
Presenter:
Chuanfei Dong
(Princeton University, Princeton Plasma Physics Laboratory)
Authors:
Chuanfei Dong
(Princeton University, Princeton Plasma Physics Laboratory)
Liang Wang
(Princeton University, Princeton Plasma Physics Laboratory)
Yi-Min Huang
(Princeton University, Princeton Plasma Physics Laboratory)
Luca Comisso
(Columbia University, Princeton University)
Amitava Bhattacharjee
(Princeton University, Princeton Plasma Physics Laboratory)
The plasmoid instability in evolving current sheets has been widely studied due to its effects on the disruption of current sheets, the formation of plasmoids, and the resultant fast magnetic reconnection. In this study, we investigate the role of the plasmoid instability in two-dimensional magnetohydrodynamic (MHD) turbulence by means of high-resolution numerical simulations. At sufficiently large magnetic Reynolds number (Rm=10^6), the combined effects of dynamic alignment and turbulent intermittency lead to a copious formation of plasmoids in a multitude of intense current sheets. The disruption of current sheet structures facilitates the energy cascade towards small scales, leading to the breaking and steepening of the energy spectrum. In the plasmoid-mediated regime, the energy spectrum displays a scaling that is close to the spectral index -2.2 as proposed by recent analytic theories. We also demonstrate that the scale-dependent dynamic alignment exists in 2D MHD turbulence and the corresponding slope of the alignment angle is close to 0.25. [1] C. Dong et al., Role of the Plasmoid Instability in Magnetohydrodynamic Turbulence, arXiv:1804.07361.
*This work is supported by NSF grants AGS1338944, AGS-1460169, DOE grants DE-SC0016470, DE-SC0006670, and NASA grant NNX13AK31G.
To cite this abstract, use the following reference: http://meetings.aps.org/link/BAPS.2018.DPP.GP11.59
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