Mesoscale flows in large aspect ratio simulations of turbulent compressible convection
arXiv:astro-ph/0611843 · doi:10.1051/0004-6361:200400130
Abstract
We present the results of a very large aspect ratio (42.6) numerical simulation of fully compressible turbulent convection in a polytropic atmosphere, and focus on the properties of large-scale flows. Mesoscale patterns dominate the turbulent energy spectrum. We show that these structures, which had already been observed in Boussinesq simulations by Cattaneo et al. (2001), have a genuine convective origin and do not result directly from collective interactions of the smaller scales of the flow, even though their growth is strongly affected by nonlinear transfers. If this result is relevant to the solar photosphere, it suggests that the dominant convective mode below the Sun's surface may be at mesoscales.
5 pages, 7 figures (reduced quality) -- published in A&A in 2005 but not uploaded to the arxiv
Cited by in corpus (10)
- Formation of starspots in self-consistent global dynamo models: Polar spots on cool stars
- Supergranule aggregation for constant heat flux-driven turbulent convection
- Anisotropy, inhomogeneity and inertial range scalings in turbulent convection
- Supergranulation and multiscale flows in the solar photosphere: Global observations vs. a theory of anisotropic turbulent convection
- Convective mesoscale turbulence at very low Prandtl numbers
- Mesoscale dynamics on the Sun's surface from HINODE observations
- Non-Boussinesq low-Prandtl number convection with a temperature-dependent thermal diffusivity
- Magneto-Thermal Instability In Galaxy Clusters II: Three-Dimensional Simulations
- Characterising solar surface convection using Doppler measurements
- Theories of convection and the spectrum of turbulence in the solar photosphere