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Protostellar collapse and fragmentation using an MHD GADGET

B_s02rzle, F. and Clark, P.~C. and Stasyszyn, F. and Greif, T. and Dolag, K. and Klessen, R.~S. and Nielaba, P.

Keywords

magnetic fields, MHD, stars: formation, ISM: clouds, ISM: magnetic fields

Abstract

Although the influence of magnetic fields is regarded as vital in the star formation process, only a few magnetohydrodynamics (MHD) simulations have been performed on this subject within the smoothed particle hydrodynamics (SPH) method. This is largely due to the unsatisfactory treatment of non-vanishing divergence of the magnetic field. Recently smoothed particle magnetohydrodynamics (SPMHD) simulations based on Euler potentials have proven to be successful in treating MHD collapse and fragmentation problems, however these methods are known to have some intrinsical difficulties. We have performed SPMHD simulations based on a traditional approach evolving the magnetic field itself using the induction equation. To account for the numerical divergence, we have chosen an approach that subtracts the effects of numerical divergence from the force equation, and additionally we employ artificial magnetic dissipation as a regularization scheme. We apply this realization of SPMHD to a widely known setup, a variation of the _s14Boss _s13 Bodenheimer standard isothermal test case_s14, to study the impact of the magnetic fields on collapse and fragmentation. In our simulations, we concentrate on setups, where the initial magnetic field is parallel to the rotation axis. We examine different field strengths and compare our results to other findings reported in the literature. We are able to confirm specific results found elsewhere, namely the delayed onset of star formation for strong fields, accompanied by the tendency to form only single stars. We also find that the _s14magnetic cushioning effect_s14, where the magnetic field is wound up to form a _s14cushion_s14 between the binary, aids binary fragmentation in a case, where previously only formation of a single protostar was expected.

Information

Published
2011 as article
mnras, 412 - page(s): 171-186
Contact
PD Dr. Klaus Dolag
Type
theoretical work
Links
pdf
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Related to the research area(s):
E
e-Print
1008.3790

Technische Universitaet Muenchen
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