Internally heated and fully compressible convection: flow morphology and scaling laws
arXiv:2310.15380 · doi:10.1103/PhysRevFluids.9.043501
Abstract
In stars and planets natural processes heat convective flows in the bulk of a convective region rather than at hard boundaries. By characterizing how convective dynamics are determined by the strength of an internal heating source we can gain insight into the processes driving astrophysical convection. Internally heated convection has been studied extensively in incompressible fluids, but the effects of stratification and compressibility have not been examined in detail. In this work, we study fully compressible convection driven by a spatially uniform heating source in 2D and 3D Cartesian, hydrodynamic simulations. We use a fixed temperature upper boundary condition which results in a system that is internally heated in the bulk and cooled at the top. We find that the flow speed, as measured by the Mach number, and turbulence, as measured by the Reynolds number, can be independently controlled by separately varying the characteristic temperature gradient from internal heating and the diffusivities. 2D simulations at a fixed Mach number (flow speed) demonstrate consistent power at low wavenumber as diffusivities are decreased. We observe convection where the velocity distribution is skewed towards cold, fast downflows, and that the flow speed is related to the length scale and entropy gradient of the upper boundary where the downflows are driven. We additionally find a heat transport scaling law which is consistent with prior incompressible work.
22 pages, 12 figures, submitted to Phys. Rev. Fluids
References in corpus (21)
- Magnetic Cycles in a Convective Dynamo Simulation of a Young Solar-type Star
- A Comparison of Turbulent Thermal Convection Between Conditions of Constant Temperature and Constant Flux
- The water abundance in Jupiter's equatorial zone
- Radiative heating achieves the ultimate regime of thermal convection
- Helioseismic Imaging of Fast Convective Flows Throughout the Near-Surface Shear Layer
- Energy Conservation and Gravity Waves in Sound-proof Treatments of Stellar Interiors: Part I Anelastic Approximations
- Theory and simulations of rotating convection
- Solar differential rotation reproduced with high-resolution simulation
- Dependence of Convective Boundary Mixing on Boundary Properties and Turbulence Strength
- Convection with Misaligned Gravity and Rotation: Simulations and Rotating Mixing Length Theory
- A study of convective core overshooting as a function of stellar mass based on two-dimensional hydrodynamical simulations
- 3D hydrodynamic simulations of massive main-sequence stars. I. Dynamics and mixing of convection and internal gravity waves
- Conduction in low Mach number flows: Part I Linear & weakly nonlinear regimes
- Two-dimensional simulations of solar-like models with artificially enhanced luminosity -- I. Impact on convective penetration
- 3D hydrodynamics simulations of internal gravity waves in red giant branch stars
- Transition between Boundary-Limited Scaling and Mixing-Length Scaling of Turbulent Transport in Internally Heated Convection
- Two-dimensional simulations of solar-like models with artificially enhanced luminosity. II. Impact on internal gravity waves
- Cloud-convection feedback in brown dwarfs atmosphere
- Predicting the Rossby number in convective experiments
- Shear flows and their suppression at large aspect ratio. Two-dimensional simulations of a growing convection zone
- 3D hydrodynamics simulations of core convection in supermassive main-sequence stars