English

Multi-scale steady solution for Rayleigh-B\'enard convection

Fluid Dynamics 2020-04-16 v1

Abstract

We have found a multi-scale steady solution of the Boussinesq equations for Rayleigh-B\'enard convection in a three-dimensional periodic domain between horizontal plates with a constant temperature difference by using a homotopy from the wall-to-wall optimal transport solution given by Motoki et al. (J. Fluid Mech., vol. 851, 2018, R4). The connected steady solution, which turns out to be a consequence of bifurcation from a thermal conduction state at the Rayleigh number Ra103Ra\sim10^{3}, is tracked up to Ra107Ra\sim10^{7} by using a Newton-Krylov iteration. The exact coherent thermal convection exhibits scaling NuRa0.31Nu\sim Ra^{0.31} (where NuNu is the Nusselt number) as well as multi-scale thermal plume and vortex structures, which are quite similar to those in the turbulent Rayleigh-B\'enard convection. The mean temperature profiles and the root-mean-square of the temperature and velocity fluctuations are in good agreement with those of the turbulent states. Furthermore, the energy spectrum follows Kolmogorov's -5/3 scaling law with a consistent prefactor, and the energy transfer to smaller scales in the wavenumber space agrees with the turbulent energy transfer.

Keywords

Cite

@article{arxiv.2004.06868,
  title  = {Multi-scale steady solution for Rayleigh-B\'enard convection},
  author = {Shingo Motoki and Genta Kawahara and Masaki Shimizu},
  journal= {arXiv preprint arXiv:2004.06868},
  year   = {2020}
}
R2 v1 2026-06-23T14:51:42.165Z