Vertically bounded double diffusive convection in the fingering regime: comparing no-slip vs free-slip boundary conditions
arXiv:1602.07718 · doi:10.1103/PhysRevLett.117.184501
Abstract
Vertically bounded fingering double diffusive convection (DDC) is numerically investigated, focusing on the influences of different velocity boundary conditions, i.e. the no-slip condition which is inevitable in the lab-scale experimental research, and the free-slip condition which is an approximation for the interfaces in many natural environments, such as the oceans. For both boundary conditions the flow is dominated by fingers and the global responses follow the same scaling laws, with enhanced prefactors for the free-slip cases. Therefore, the laboratory experiments with the no-slip boundaries serve as a good model for the finger layers in the ocean. Moreover, in the free-slip case although the tangential shear stress is eliminated at the boundaries, the local dissipation rate in the near-wall region may exceed the value found in the no-slip cases, which is caused by the stronger vertical motions of fingers and sheet structures near the free-slip boundaries. This counter intuitive result might be relevant for properly estimating and modelling the mixing and entrainment phenomena at free-surfaces and interfaces.
11 pages, 4 figures
References in corpus (6)
- A multiple--resolution strategy for Direct Numerical Simulation of scalar turbulence
- From convection rolls to finger convection in double-diffusive turbulence
- Scaling laws and flow structures of double diffusive convection in the finger regime
- Salinity transfer in bounded double diffusive convection
- Dissipation Layers in Rayleigh-Bénard Convection: A Unifying View
- Transition to finger convection in double-diffusive convection
Cited by in corpus (6)
- Scaling laws and flow structures of double diffusive convection in the finger regime
- A reduced model for salt-finger convection in the small diffusivity ratio limit
- Staircase solutions and stability in vertically confined salt-finger convection
- Perturbation analysis of baroclinic torque in low-Mach-number flows
- Enhanced and reduced solute transport and flow strength in salt finger convection in porous media
- Finger properties in bounded double diffusive finger convection