Current Status of Turbulent Dynamo TheoryFrom Large-Scale to Small-Scale Dynamos

被引:0
作者
Axel Brandenburg
Dmitry Sokoloff
Kandaswamy Subramanian
机构
[1] Royal Institute of Technology and Stockholm University,Nordita
[2] Stockholm University,Department of Astronomy
[3] Moscow University,Department of Physics
[4] Inter-University Centre for Astronomy and Astrophysics,undefined
来源
Space Science Reviews | 2012年 / 169卷
关键词
Magnetic fields; Turbulence; Sun: Magnetic fields;
D O I
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中图分类号
学科分类号
摘要
Several recent advances in turbulent dynamo theory are reviewed. High resolution simulations of small-scale and large-scale dynamo action in periodic domains are compared with each other and contrasted with similar results at low magnetic Prandtl numbers. It is argued that all the different cases show similarities at intermediate length scales. On the other hand, in the presence of helicity of the turbulence, power develops on large scales, which is not present in non-helical small-scale turbulent dynamos. At small length scales, differences occur in connection with the dissipation cutoff scales associated with the respective value of the magnetic Prandtl number. These differences are found to be independent of whether or not there is large-scale dynamo action. However, large-scale dynamos in homogeneous systems are shown to suffer from resistive slow-down even at intermediate length scales. The results from simulations are connected to mean field theory and its applications. Recent work on magnetic helicity fluxes to alleviate large-scale dynamo quenching, shear dynamos, nonlocal effects and magnetic structures from strong density stratification are highlighted. Several insights which arise from analytic considerations of small-scale dynamos are discussed.
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页码:123 / 157
页数:34
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