Magnetic island merger as a mechanism for inverse magnetic energy transfer

Magnetic energy transfer from small to large scales due to successive magnetic island coalescence is investigated. A solvable analytical model is introduced and shown to correctly capture the evolution of the main quantities of interest, as borne out by direct numerical simulations. Magnetic reconne...

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Bibliographic Details
Main Authors: Zhou, Muni (Author), Bhat, Pallavi (Author), Gomes Loureiro, Nuno F (Author), Uzdensky, Dmitri A. (Author)
Other Authors: Massachusetts Institute of Technology. Department of Nuclear Science and Engineering (Contributor), Massachusetts Institute of Technology. Plasma Science and Fusion Center (Contributor)
Format: Article
Language:English
Published: American Physical Society (APS), 2020-03-25T18:14:07Z.
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Summary:Magnetic energy transfer from small to large scales due to successive magnetic island coalescence is investigated. A solvable analytical model is introduced and shown to correctly capture the evolution of the main quantities of interest, as borne out by direct numerical simulations. Magnetic reconnection is identified as the key mechanism enabling the inverse transfer, and setting its properties: Magnetic energy decays as [˜ over t][superscript −1], where [˜ over t] is time normalized to the (appropriately defined) reconnection timescale, and the correlation length of the field grows as [˜ over t][superscript 1/2]. The magnetic energy spectrum is self-similar, and evolves as ∝[˜ over t][superscript −3/2]k[superscript −2,] where the k dependence is imparted by the formation of thin current sheets.
National Science Foundation (U.S.) (CAREER Award 1654168)
National Science Foundation (U.S.) (Award DE-SC0016215)
United States. Department of Energy (Award DE-SC0016215)