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Plasmoid Instability in Forming Current Sheets

Journal Article · · The Astrophysical Journal (Online)
 [1];  [2];  [1];  [1]
  1. Princeton Univ., Princeton, NJ (United States). Dept. of Astrophysical Sciences and Princeton Plasma Physics Lab.
  2. Harvard-Smithsonian Center for Astrophysics, Cambridge, MA (United States); Harvard Univ., Cambridge, MA (United States)
The plasmoid instability has revolutionized our understanding of magnetic reconnection in astrophysical environments. By preventing the formation of highly elongated reconnection layers, it is crucial in enabling the rapid energy conversion rates that are characteristic of many astrophysical phenomena. Most previous studies have focused on Sweet–Parker current sheets, which are unattainable in typical astrophysical systems. Here we derive a general set of scaling laws for the plasmoid instability in resistive and visco-resistive current sheets that evolve over time. Our method relies on a principle of least time that enables us to determine the properties of the reconnecting current sheet (aspect ratio and elapsed time) and the plasmoid instability (growth rate, wavenumber, inner layer width) at the end of the linear phase. After this phase the reconnecting current sheet is disrupted and fast reconnection can occur. The scaling laws of the plasmoid instability are not simple power laws, and they depend on the Lundquist number (S), the magnetic Prandtl number (Pm), the noise of the system ($${\psi }_{0}$$), the characteristic rate of current sheet evolution ($$1/\tau $$), and the thinning process. We also demonstrate that previous scalings are inapplicable to the vast majority of astrophysical systems. Furthermore, we explore the implications of the new scaling relations in astrophysical systems such as the solar corona and the interstellar medium. In both of these systems, we show that our scaling laws yield values for the growth rate, wavenumber, and aspect ratio that are much smaller than the Sweet–Parker–based scalings.
Research Organization:
Princeton Plasma Physics Laboratory (PPPL), Princeton, NJ (United States)
Sponsoring Organization:
USDOE
Grant/Contract Number:
AC02-09CH11466
OSTI ID:
1414921
Journal Information:
The Astrophysical Journal (Online), Journal Name: The Astrophysical Journal (Online) Journal Issue: 2 Vol. 850; ISSN 1538-4357
Publisher:
Institute of Physics (IOP)Copyright Statement
Country of Publication:
United States
Language:
English

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Cited By (24)

Onset of magnetic reconnection in a collisionless, high- plasma journal February 2019
MHD turbulence: a biased review journal October 2022
Formation of plasmoid chains and fast magnetic reconnection during nonlinear evolution of the tilt instability preprint January 2020
On the growth rate of plasmoid chains during nonlinear viscoresistive evolution of the tilt instability preprint January 2020
Petschek-type reconnection in the high-Lundquist-number regime during nonlinear evolution on the tilt instability preprint January 2020
A maximum entropy principle for inferring the distribution of 3D plasmoids journal January 2018
Regimes of magnetic reconnection in colliding laser-produced magnetized plasma bubbles journal September 2018
On the effect of parallel shear flow on the plasmoid instability journal October 2018
Wavelet methods for studying the onset of strong plasma turbulence journal December 2018
Response to “Comment on ‘Exact solutions and singularities of an X-point collapse in Hall magnetohydrodynamics’” [J. Math. Phys. 60, 024101 (2019)] journal February 2019
Mechanism of non-steady Petschek-type reconnection with uniform resistivity journal March 2019
Scalings pertaining to current sheet disruption mediated by the plasmoid instability journal September 2019
The plasmoid instability in a confined solar flare journal May 2019
Role of the Plasmoid Instability in Magnetohydrodynamic Turbulence journal October 2018
Magnetohydrodynamic Turbulence in the Plasmoid-mediated Regime journal February 2018
Stochastic Reconnection for Large Magnetic Prandtl Numbers journal June 2018
Relativistic Plasmoid Instability in Pair Plasmas journal September 2019
The Interplay of Magnetically Dominated Turbulence and Magnetic Reconnection in Producing Nonthermal Particles journal November 2019
FINMHD: An Adaptive Finite-element Code for Magnetic Reconnection and Formation of Plasmoid Chains in Magnetohydrodynamics journal July 2019
A Maximum Entropy Principle for inferring the Distribution of 3D Plasmoids text January 2017
Magnetohydrodynamic Turbulence in the Plasmoid-Mediated Regime text January 2018
Role of the Plasmoid Instability in Magnetohydrodynamic Turbulence text January 2018
Wavelet Methods for Studying the Onset of Strong Plasma Turbulence text January 2018
Scalings Pertaining to Current Sheet Disruption Mediated by the Plasmoid Instability text January 2019

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