Spatial and time scaling of coalescing multiple magnetic islands

Author:

Nakamura T. K. M.12ORCID,Teh W.-L.3ORCID,Zenitani S.4ORCID,Umeda T.5ORCID,Oka M.6ORCID,Hasegawa H.7ORCID,Veronig A. M.8ORCID,Nakamura R.1ORCID

Affiliation:

1. Space Research Institute, Austrian Academy of Sciences 1 , Graz 8042, Austria

2. Krimgen LLC 2 , Hiroshima 732-0828, Japan

3. Space Science Centre, Institute of Climate Change, Universiti Kebangsaan Malaysia 3 , Bangi 43600, Malaysia

4. Research Center for Urban Safety and Security, Kobe University 4 , Kobe 657-0013, Japan

5. Institute for Space-Earth Environmental Research, Nagoya University 5 , Nagoya 464-0805, Japan

6. Space Sciences Laboratory, University of California 6 , Berkeley, California 94720, USA

7. Institute of Space and Astronautical Science, JAXA 7 , Sagamihara 252-5210, Japan

8. Institute of Physics, University of Graz 8 , Graz 8010, Austria

Abstract

Magnetic reconnection is a key fundamental process in collisionless plasmas, which converts magnetic energy to plasma kinetic energy. Past observation and simulation studies suggested that this process causes an efficient energy conversion through the formation and coalescence of multiple magnetic islands. In this study, based on a large-scale two-dimensional fully kinetic simulations of coalescing multiple islands with a moderate guide magnetic field, we first examined the spatial dimensions of the internal structures of the coalescing islands. The results show that the dimensions of the structures in the directions normal to and along the initial current sheet depend on the initial thickness of the current sheet and the number of coalescing islands. We then found that the horizontal dimension of the structures controls the evolution time scale of the island coalescence process. We further found that when the vertical dimension of the structures, which corresponds to the length of the reconnection X-line in the reconnection outflow direction at the merging point between the two coalescing islands, is sufficiently longer than the ion inertial length, reconnection in the merging current sheet can well mature and both ions and electrons can be effectively heated around the merging X-line. The obtained scaling predicts that such a strong heating by well-matured reconnection in the island coalescence process would be seen in various plasma environments, such as the Earth's magnetotail and solar flares.

Funder

Austrian Science Fund

Japan Society for the Promotion of Science

National Aeronautics and Space Administration

Publisher

AIP Publishing

Subject

Condensed Matter Physics

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