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Large‐scale energy budget of impulsive magnetic reconnection: Theory and simulation

We evaluate the large‐scale energy budget of magnetic reconnection utilizing an analytical time‐dependent impulsive reconnection model and a numerical 2‐D MHD simulation. With the generalization to compressible plasma, we can investigate changes in the thermal, kinetic, and magnetic energies. We stu...

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Autores principales: Kiehas, S. A., Volkonskaya, N. N., Semenov, V. S., Erkaev, N. V., Kubyshkin, I. V., Zaitsev, I. V.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5413852/
https://www.ncbi.nlm.nih.gov/pubmed/28529838
http://dx.doi.org/10.1002/2016JA023169
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author Kiehas, S. A.
Volkonskaya, N. N.
Semenov, V. S.
Erkaev, N. V.
Kubyshkin, I. V.
Zaitsev, I. V.
author_facet Kiehas, S. A.
Volkonskaya, N. N.
Semenov, V. S.
Erkaev, N. V.
Kubyshkin, I. V.
Zaitsev, I. V.
author_sort Kiehas, S. A.
collection PubMed
description We evaluate the large‐scale energy budget of magnetic reconnection utilizing an analytical time‐dependent impulsive reconnection model and a numerical 2‐D MHD simulation. With the generalization to compressible plasma, we can investigate changes in the thermal, kinetic, and magnetic energies. We study these changes in three different regions: (a) the region defined by the outflowing plasma (outflow region, OR), (b) the region of compressed magnetic fields above/below the OR (traveling compression region, TCR), and (c) the region trailing the OR and TCR (wake). For incompressible plasma, we find that the decrease inside the OR is compensated by the increase in kinetic energy. However, for the general compressible case, the decrease in magnetic energy inside the OR is not sufficient to explain the increase in thermal and kinetic energy. Hence, energy from other regions needs to be considered. We find that the decrease in thermal and magnetic energy in the wake, together with the decrease in magnetic energy inside the OR, is sufficient to feed the increase in kinetic and thermal energies in the OR and the increase in magnetic and thermal energies inside the TCR. That way, the energy budget is balanced, but consequently, not all magnetic energy is converted into kinetic and thermal energies of the OR. Instead, a certain fraction gets transfered into the TCR. As an upper limit of the efficiency of reconnection (magnetic energy [Formula: see text] kinetic energy) we find η (eff)=1/2. A numerical simulation is used to include a finite thickness of the current sheet, which shows the importance of the pressure gradient inside the OR for the conversion of kinetic energy into thermal energy.
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spelling pubmed-54138522017-05-19 Large‐scale energy budget of impulsive magnetic reconnection: Theory and simulation Kiehas, S. A. Volkonskaya, N. N. Semenov, V. S. Erkaev, N. V. Kubyshkin, I. V. Zaitsev, I. V. J Geophys Res Space Phys Research Articles We evaluate the large‐scale energy budget of magnetic reconnection utilizing an analytical time‐dependent impulsive reconnection model and a numerical 2‐D MHD simulation. With the generalization to compressible plasma, we can investigate changes in the thermal, kinetic, and magnetic energies. We study these changes in three different regions: (a) the region defined by the outflowing plasma (outflow region, OR), (b) the region of compressed magnetic fields above/below the OR (traveling compression region, TCR), and (c) the region trailing the OR and TCR (wake). For incompressible plasma, we find that the decrease inside the OR is compensated by the increase in kinetic energy. However, for the general compressible case, the decrease in magnetic energy inside the OR is not sufficient to explain the increase in thermal and kinetic energy. Hence, energy from other regions needs to be considered. We find that the decrease in thermal and magnetic energy in the wake, together with the decrease in magnetic energy inside the OR, is sufficient to feed the increase in kinetic and thermal energies in the OR and the increase in magnetic and thermal energies inside the TCR. That way, the energy budget is balanced, but consequently, not all magnetic energy is converted into kinetic and thermal energies of the OR. Instead, a certain fraction gets transfered into the TCR. As an upper limit of the efficiency of reconnection (magnetic energy [Formula: see text] kinetic energy) we find η (eff)=1/2. A numerical simulation is used to include a finite thickness of the current sheet, which shows the importance of the pressure gradient inside the OR for the conversion of kinetic energy into thermal energy. John Wiley and Sons Inc. 2017-03-16 2017-03 /pmc/articles/PMC5413852/ /pubmed/28529838 http://dx.doi.org/10.1002/2016JA023169 Text en ©2017. The Authors. This is an open access article under the terms of the Creative Commons Attribution (http://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Articles
Kiehas, S. A.
Volkonskaya, N. N.
Semenov, V. S.
Erkaev, N. V.
Kubyshkin, I. V.
Zaitsev, I. V.
Large‐scale energy budget of impulsive magnetic reconnection: Theory and simulation
title Large‐scale energy budget of impulsive magnetic reconnection: Theory and simulation
title_full Large‐scale energy budget of impulsive magnetic reconnection: Theory and simulation
title_fullStr Large‐scale energy budget of impulsive magnetic reconnection: Theory and simulation
title_full_unstemmed Large‐scale energy budget of impulsive magnetic reconnection: Theory and simulation
title_short Large‐scale energy budget of impulsive magnetic reconnection: Theory and simulation
title_sort large‐scale energy budget of impulsive magnetic reconnection: theory and simulation
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5413852/
https://www.ncbi.nlm.nih.gov/pubmed/28529838
http://dx.doi.org/10.1002/2016JA023169
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