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Dataset for 'Rotational dependence of turbulent transport coefficients in global convective dynamo simulations of solar-like stars'

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Warnecke, Jörn;Käpylä, J. Maarit

Description

For moderate and slow rotation, magnetic activity of solar-like stars is observed to strongly depend on rotation, while for rapid rotation, only a very weak or no dependency is detected. These observations do not yet have a solid explanation in terms of dynamo theory. To work towards such an explanation, we numerically investigated the rotational dependency of dynamo drivers in solar-like stars, that is, stars that have a convective envelope of similar thickness as in the Sun. We ran semi-global convection simulations of stars with rotation rates from 0 to 30 times the solar value, corresponding to Coriolis numbers, Co, of 0 to 110. We measured the turbulent transport coefficients describing the magnetic field evolution with the help of the test-field method, and compared with the dynamo effect arising from the differential rotation, self-consistently generated in the models. The trace of the (\alpha) tensor increases for moderate rotation rates with Co0.5 and levels off for rapid rotation. This behavior is in agreement with the kinetic (\alpha) based on the kinetic helicity, if one takes into account the decrease of the convective scale with increasing rotation. The (\alpha) tensor becomes highly anisotropic for Co > 1, (\alpha_{rr}) dominates for moderate rotation (1<Co<10), and (\alpha_{\phi\phi}) for rapid rotation (Co > 10). The effective meridional flow, taking into account the turbulent pumping effects, is markedly different from the actual meridional circulation profile. Hence, the turbulent pumping effect is dominating the meridional transport of the magnetic field. Taking all dynamo effects into account, we find three distinct regimes. For slow rotation, the (\alpha) and Rädler effects are dominating in presence of anti-solar differential rotation. For moderate rotation, (\alpha) and (\Omega) effects are dominant, indicative of (\alpha\Omega) or (\alpha^2\Omega) dynamos in operation, producing equatorward-migrating dynamo waves with the qualitatively solar-like rotation profile. For rapid rotation, an (\alpha^2) mechanism, with an influence from the Rädler effect, appears to be the most probable driver of the dynamo. Our study reveals the presence of a large variety of dynamo effects beyond the classical (\alpha\Omega) mechanism, which need to be investigated further to fully understand the dynamos of solar-like stars. The highly anisotropic (\alpha) tensor might be the primary reason for the change of axisymmetric to non-axisymmetric dynamo solutions in the moderate rotation regime. For the full article see https://arxiv.org/abs/1910.06776

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Metrics

Dataset Index

0.9

FAIR Score

73%

Citations

0

Mentions

0

Metrics Over Time

Publication Details

DOI

Publisher

Zenodo

License

Creative Commons Attribution 4.0 International

Open Access

Assigned Domain

Subfield

Astronomy and Astrophysics

Field

Physics and Astronomy

Domain

Physical Sciences

Confidence Score

46%

Source

Scholar Data Model

Keywords

Magnetohydrodynamics (MHD)turbulence researchsolar and stellar physicsdynamo theory

Normalization Factors

FT

26.92

CTw

1.00

MTw

1.00