English

Turbulent eddy-time-correlation in the solar convective zone

Solar and Stellar Astrophysics 2015-05-20 v1

Abstract

Theoretical modeling of the driving processes of solar-like oscillations is a powerful way of understanding the properties of the convective zones of solar-type stars. In this framework, the description of the temporal correlation between turbulent eddies is an essential ingredient to model mode amplitudes. However, there is a debate between a Gaussian or Lorentzian description of the eddy-time correlation function (Samadi et al. 2003, Chaplin et al. 2005). Indeed, a Gaussian description reproduces the low-frequency shape of the mode amplitude for the Sun, but is unsatisfactory from a theoretical point of view (Houdek, 2009) and leads to other disagreements with observations (Samadi et al., 2007). These are solved by using a Lorentzian description, but there the low-frequency shape of the solar observations is not correctly reproduced. We reconcile the two descriptions by adopting the sweeping approximation, which consists in assuming that the eddy-time-correlation function is dominated by the advection of eddies, in the inertial range, by energy-bearing eddies. Using a Lorentzian function together with a cut-off frequency derived from the sweeping assumption allows us to reproduce the low-frequency shape of the observations. This result also constitutes a validation of the sweeping assumption for highly turbulent flows as in the solar case.

Keywords

Cite

@article{arxiv.1010.2682,
  title  = {Turbulent eddy-time-correlation in the solar convective zone},
  author = {K. Belkacem and R. Samadi and M. J. Goupil and F. Baudin and D. Salabert and T. Appourchaux},
  journal= {arXiv preprint arXiv:1010.2682},
  year   = {2015}
}

Comments

5 pages, 2 figures, accepted in A&A

R2 v1 2026-06-21T16:27:57.737Z