English

Seismic Sounding of Convection in the Sun

Solar and Stellar Astrophysics 2016-01-20 v1 Earth and Planetary Astrophysics Atmospheric and Oceanic Physics Fluid Dynamics Space Physics

Abstract

Our Sun, primarily composed of ionized hydrogen and helium, has a surface temperature of 5777~K and a radius R696,000R_\odot \approx 696,000 km. In the outer R/3R_\odot/3, energy transport is accomplished primarily by convection. Using typical convective velocities u100ms1u\sim100\,\rm{m\,s^{-1}} and kinematic viscosities of order 10410^{-4} m2^{2}s1^{-1}, we obtain a Reynolds number Re1014Re \sim 10^{14}. Convection is thus turbulent, causing a vast range of scales to be excited. The Prandtl number, PrPr, of the convecting fluid is very low, of order 10710^{-7}\,--\,10410^{-4}, so that the Rayleigh number (Re2Pr\sim Re^2 Pr) is on the order of 1021102410^{21}\,-\,10^{24}. Solar convection thus lies in extraordinary regime of dynamical parameters, highly untypical of fluid flows on Earth. Convective processes in the Sun drive global fluid circulations and magnetic fields, which in turn affect its visible outer layers ("solar activity") and, more broadly, the heliosphere ("space weather"). The precise determination of the depth of solar convection zone, departures from adiabaticity of the temperature gradient, and the internal rotation rate as a function of latitude and depth are among the seminal contributions of helioseismology towards understanding convection in the Sun. Contemporary helioseismology, which is focused on inferring the properties of three-dimensional convective features, suggests that transport velocities are substantially smaller than theoretical predictions. Furthermore, helioseismology provides important constraints on the anisotropic Reynolds stresses that control the global dynamics of the solar convection zone. This review discusses the state of our understanding of convection in the Sun, with a focus on helioseismic diagnostics. We present our considerations with the interests of fluid dynamicists in mind.

Keywords

Cite

@article{arxiv.1503.07961,
  title  = {Seismic Sounding of Convection in the Sun},
  author = {Shravan Hanasoge and Laurent Gizon and Katepalli R. Sreenivasan},
  journal= {arXiv preprint arXiv:1503.07961},
  year   = {2016}
}

Comments

29 pages, 12 figures, in review, Annual Reviews of Fluid Mechanics