paper

Correlation of internal flow structure with heat transfer efficiency in turbulent Rayleigh-Bénard convection

arXiv:2009.07675 · doi:10.1063/5.0024408

Abstract

To understand how internal flow structures manifest themselves in the global heat transfer, we study the correlation between different flow modes and the instantaneous Nusselt number () in a two-dimensional square Rayleigh-Bénard convection cell. High-resolution and long-time direct numerical simulations are carried out for Rayleigh numbers between and and a Prandtl number of 5.3. The investigated Nusselt numbers include the volume-averaged , the wall-averaged , the kinetic energy dissipation based , and the thermal energy dissipation based . The Fourier mode decomposition and proper orthogonal decomposition are adopted to extract the coherent flow structure. Our results show that the single-roll mode, the horizontally stacked double-roll mode, and the quadrupolar flow mode are more efficient for heat transfer on average. In contrast, the vertically stacked double-roll mode is inefficient for heat transfer on average. The volume-averaged and the kinetic energy dissipation based can better reproduce the correlation of internal flow structures with heat transfer efficiency than that of the wall-averaged and the thermal energy dissipation based , even though these four Nusselt numbers give consistent time-averaged mean values. The ensemble-averaged time trace of during flow reversal shows that only the volume-averaged can reproduce the overshoot phenomena that is observed in the previous experimental study. Our results reveal that the proper choice of is critical to obtain a meaningful interpretation.

25 pages, 10 figures