Magnetic flux concentrations from dynamo-generated fields
S. Jabbari, Axel Brandenburg, I. R. Losada, N. Kleeorin, I. Rogachevskii
Abstract
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S. Jabbari, Axel Brandenburg, I. R. Losada, N. Kleeorin, I. Rogachevskii
Abstract
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Context. The mean-field theory of magnetized stellar convection gives rise to two distinct instabilities: the large-scale dynamo instability, operating in the bulk of the convection zone and a negative effective magnetic pressure instability (NEMPI) operating in the strongly stratified surface layers. The latter might be important in connection with magnetic spot formation. However, as follows from theoretical analysis, the growth rate of NEMPI is suppressed with increasing rotation rates. On the other hand, recent direct numerical simulations (DNS) have shown a subsequent increase in the growth rate.
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Context. The mean-field theory of magnetized stellar convection gives rise to two distinct instabilities: the large-scale dynamo instability, operating in the bulk of the convection zone and a negative effective magnetic pressure instability (NEMPI) operating in the strongly stratified surface layers. The latter might be important in connection with magnetic spot formation. However, as follows from theoretical analysis, the growth rate of NEMPI is suppressed with increasing rotation rates. On the other hand, recent direct numerical simulations (DNS) have shown a subsequent increase in the growth rate.
Key concepts: Dynamo, Instability, Convection, Physics, Magnetic field, Dynamo theory, Context (archaeology), Solar dynamo