Magnetorotational Explosions of Core-Collapse Supernovae

Core-collapse supernovae are accompanied by formation of neutron stars. The gravitation energy is transformed into the energy of the explosion, observed as SN II, SN Ib,c type supernovae. We present results of 2-D MHD simulations, where the source of energy is rotation, and magnetic eld serves as a...

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Main Authors: Gennady S. Bisnovatyi-Kogan, Sergey G. Moiseenko, Nikolay V. Ardeljan
Format: Article
Language:English
Published: CTU Central Library 2014-12-01
Series:Acta Polytechnica CTU Proceedings
Online Access:https://ojs.cvut.cz/ojs/index.php/APP/article/view/2382
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spelling doaj-60526f46fd3f466cb768e05e473c255d2020-11-24T22:42:48ZengCTU Central LibraryActa Polytechnica CTU Proceedings2336-53822014-12-011118118810.14311/APP.2014.01.01812192Magnetorotational Explosions of Core-Collapse SupernovaeGennady S. Bisnovatyi-Kogan0Sergey G. Moiseenko1Nikolay V. Ardeljan2Space Research Institute, Profsoyuznaya str. 84/32, Moscow 117997, Russia, and National Research Nuclear University "MEPHI", Kashirskoye Shosse, 31, Moscow 115409Space Research Institute, Profsoyuznaya str. 84/32, Moscow 117997, RussiaDepartment of Computational Mathematics and Cybernetics, Moscow State University, Vorobjevy Gory, Moscow B-234, RussiaCore-collapse supernovae are accompanied by formation of neutron stars. The gravitation energy is transformed into the energy of the explosion, observed as SN II, SN Ib,c type supernovae. We present results of 2-D MHD simulations, where the source of energy is rotation, and magnetic eld serves as a "transition belt" for the transformation of the rotation energy into the energy of the explosion. The toroidal part of the magnetic energy initially grows linearly with time due to dierential rotation. When the twisted toroidal component strongly exceeds the poloidal eld, magneto-rotational instability develops, leading to a drastic acceleration in the growth of magnetic energy. Finally, a fast MHD shock is formed, producing a supernova explosion. Mildly collimated jet is produced for dipole-like type of the initial field. At very high initial magnetic field no MRI development was found.https://ojs.cvut.cz/ojs/index.php/APP/article/view/2382
collection DOAJ
language English
format Article
sources DOAJ
author Gennady S. Bisnovatyi-Kogan
Sergey G. Moiseenko
Nikolay V. Ardeljan
spellingShingle Gennady S. Bisnovatyi-Kogan
Sergey G. Moiseenko
Nikolay V. Ardeljan
Magnetorotational Explosions of Core-Collapse Supernovae
Acta Polytechnica CTU Proceedings
author_facet Gennady S. Bisnovatyi-Kogan
Sergey G. Moiseenko
Nikolay V. Ardeljan
author_sort Gennady S. Bisnovatyi-Kogan
title Magnetorotational Explosions of Core-Collapse Supernovae
title_short Magnetorotational Explosions of Core-Collapse Supernovae
title_full Magnetorotational Explosions of Core-Collapse Supernovae
title_fullStr Magnetorotational Explosions of Core-Collapse Supernovae
title_full_unstemmed Magnetorotational Explosions of Core-Collapse Supernovae
title_sort magnetorotational explosions of core-collapse supernovae
publisher CTU Central Library
series Acta Polytechnica CTU Proceedings
issn 2336-5382
publishDate 2014-12-01
description Core-collapse supernovae are accompanied by formation of neutron stars. The gravitation energy is transformed into the energy of the explosion, observed as SN II, SN Ib,c type supernovae. We present results of 2-D MHD simulations, where the source of energy is rotation, and magnetic eld serves as a "transition belt" for the transformation of the rotation energy into the energy of the explosion. The toroidal part of the magnetic energy initially grows linearly with time due to dierential rotation. When the twisted toroidal component strongly exceeds the poloidal eld, magneto-rotational instability develops, leading to a drastic acceleration in the growth of magnetic energy. Finally, a fast MHD shock is formed, producing a supernova explosion. Mildly collimated jet is produced for dipole-like type of the initial field. At very high initial magnetic field no MRI development was found.
url https://ojs.cvut.cz/ojs/index.php/APP/article/view/2382
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AT sergeygmoiseenko magnetorotationalexplosionsofcorecollapsesupernovae
AT nikolayvardeljan magnetorotationalexplosionsofcorecollapsesupernovae
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