Rigorous scaling laws for internally heated convection at infinite Prandtl number
Abstract
New bounds are proven on the mean vertical convective heat transport, , for uniform internally heated (IH) convection in the limit of infinite Prandtl number. For fluid in a horizontally-periodic layer between isothermal boundaries, we show that , where is a nondimensional `flux' Rayleigh number quantifying the strength of internal heating and . Then, corresponds to vertical heat transport by conduction alone, while represents the enhancement of vertical heat transport upwards due to convective motion. If, instead, the lower boundary is a thermal insulator, then we obtain , with . This result implies that the Nusselt number , defined as the ratio of the total-to-conductive heat transport, satisfies . Both bounds are obtained by combining the background method with a minimum principle for the fluid's temperature and with Hardy--Rellich inequalities to exploit the link between the vertical velocity and temperature. In both cases, power-law dependence on improves the previously best-known bounds, which, although valid at both infinite and finite Prandtl numbers, approach the uniform bound exponentially with .
Keywords
Cite
@article{arxiv.2205.03175,
title = {Rigorous scaling laws for internally heated convection at infinite Prandtl number},
author = {Ali Arslan and Giovanni Fantuzzi and John Craske and Andrew Wynn},
journal= {arXiv preprint arXiv:2205.03175},
year = {2023}
}
Comments
28 pages, 5 figures