English

Coherent Solutions and Transition to Turbulence in Two-Dimensional Rayleigh-B\'{e}nard Convection

Fluid Dynamics 2021-01-20 v1

Abstract

For two-dimensional Rayleigh-B\'{e}nard convection, classes of unstable, steady solutions were previously computed using numerical continuation (Waleffe, 2015; Sondak, 2015). The `primary' steady solution bifurcates from the conduction state at Ra1708Ra \approx 1708, and has a characteristic aspect ratio (length/height) of approximately 22. The primary solution corresponds to one pair of counterclockwise-clockwise convection rolls with a temperature updraft in between and an adjacent downdraft on the sides. By adjusting the horizontal length of the domain, (Waleffe, 2015; Sondak, 2015) also found steady, maximal heat transport solutions, with characteristic aspect ratio less than 22 and decreasing with increasing RaRa. Compared to the primary solutions, optimal heat transport solutions have modifications to boundary layer thickness, the horizontal length scale of the plume, and the structure of the downdrafts. The current study establishes a direct link between these (unstable) steady solutions and transition to turbulence for Pr=7Pr = 7 and Pr=100Pr = 100. For transitional values of RaRa, the primary and optimal heat transport solutions both appear prominently in appropriately-sized sub-fields of the time-evolving temperature fields. For RaRa beyond transitional, our data analysis shows persistence of the primary solution for Pr=7Pr = 7, while the optimal heat transport solutions are more easily detectable for Pr=100Pr = 100. In both cases Pr=7Pr = 7 and Pr=100Pr = 100, the relative prevalence of primary and optimal solutions is consistent with the NuNu vs. RaRa scalings for the numerical data and the steady solutions.

Keywords

Cite

@article{arxiv.2006.14132,
  title  = {Coherent Solutions and Transition to Turbulence in Two-Dimensional Rayleigh-B\'{e}nard Convection},
  author = {Parvathi Kooloth and David Sondak and Leslie M. Smith},
  journal= {arXiv preprint arXiv:2006.14132},
  year   = {2021}
}

Comments

34 pages, 23 figures