English

Effects of radius ratio on annular centrifugal Rayleigh-B\'{e}nard convection

Fluid Dynamics 2021-04-09 v1

Abstract

We report on a three-dimensional direct numerical simulation study of flow structure and heat transport in the annular centrifugal Rayleigh-B\'{e}nard convection (ACRBC) system, with cold inner and hot outer cylinders corotating axially, for the Rayleigh number range Ra [106,108] \in [{10^6},{10^8}] and radius ratio range η=Ri/Ro[0.3,0.9]\eta = {R_i}/{R_o} \in [0.3,0.9]. This study focuses on the dependence of flow properties on the radius ratio η\eta. The temperature and velocity fields reveal that different curvatures of the inner and outer cylinders of the ACRBC system lead to asymmetric movements of hot and cold plumes under the action of Coriolis force, resulting in the formation of zonal flow. The physical mechanism of zonal flow is verified by the dependence of the drift frequency of the large-scale circulation rolls and the space- and time-averaged azimuthal velocity on η\eta. We find that the larger η\eta is, the weaker the zonal flow becomes. We show that the heat transport efficiency increases with η\eta. It is also found that the bulk temperature deviates from the arithmetic mean temperature and the deviation increases as η\eta decreases. This effect can be explained by a simple model that accounts for the curvature effects and the radially-dependent centrifugal force in ACRBC.

Keywords

Cite

@article{arxiv.2104.03709,
  title  = {Effects of radius ratio on annular centrifugal Rayleigh-B\'{e}nard convection},
  author = {Dongpu Wang and Hechuan Jiang and Shuang Liu and Xiaojue Zhu and Chao Sun},
  journal= {arXiv preprint arXiv:2104.03709},
  year   = {2021}
}