The core helium flash revisited: II. Two and three-dimensional hydrodynamic simulations
Abstract
We study turbulent convection during the core helium flash close to its peak by comparing the results of two and three-dimensional hydrodynamic simulations. We use a multidimensional Eulerian hydrodynamics code based on state-of-the-art numerical techniques to simulate the evolution of the helium core of a Pop I star. Our three-dimensional hydrodynamic simulations of the evolution of a star during the peak of the core helium flash do not show any explosive behavior. The convective flow patterns developing in the three-dimensional models are structurally different from those of the corresponding two-dimensional models, and the typical convective velocities are smaller than those found in their two-dimensional counterparts. Three-dimensional models also tend to agree better with the predictions of mixing length theory. Our hydrodynamic simulations show the presence of turbulent entrainment that results in a growth of the convection zone on a dynamic time scale. Contrary to mixing length theory, the outer part of the convection zone is characterized by a sub-adiabatic temperature gradient.
Cite
@article{arxiv.0811.4083,
title = {The core helium flash revisited: II. Two and three-dimensional hydrodynamic simulations},
author = {M. Mocak and E. Mueller and A. Weiss and K. Kifonidis},
journal= {arXiv preprint arXiv:0811.4083},
year = {2015}
}
Comments
19 pages, 18 figures