English

Coherence of temperature and velocity superstructures in turbulent Rayleigh-B\'enard flow

Fluid Dynamics 2021-01-20 v2

Abstract

We investigate the interplay between large-scale patterns, so-called superstructures, in the fluctuation fields of temperature θ\theta and vertical velocity ww in turbulent Rayleigh-B\'{e}nard convection at large aspect ratios. Earlier studies suggested that velocity superstructures were smaller than their thermal counterparts in the center of the domain. However, a scale-by-scale analysis of the correlation between the two fields employing the linear coherence spectrum reveals that superstructures of the same size exist in both fields, which are almost perfectly correlated. The issue is further clarified by the observation that in contrast to the temperature, and unlike assumed previously, superstructures in the vertical velocity field do not result in a peak in the power spectrum of ww. The origin of this difference is traced back to the production terms of the θ\theta- and ww-variance. These results are confirmed for a range of Rayleigh numbers Ra=105Ra = 10^5--10910^9, the superstructure size is seen to increase monotonically with RaRa. Furthermore, the scale distribution of particularly the temperature fluctuations is pronouncedly bimodal. In addition to the large-scale peak caused by the superstructures, there exists a strong small-scale peak. This `inner peak' is most intense at a distance of δθ\delta_\theta from the wall and associated with structures of size 10δθ\approx 10 \delta_\theta, where δθ\delta_\theta is the thermal boundary layer thickness. Finally, based on the vertical coherence relative to a reference height of δθ\delta_\theta, a self-similar structure is identified in the velocity field (vertical and horizontal components) but not in the temperature.

Keywords

Cite

@article{arxiv.1908.10073,
  title  = {Coherence of temperature and velocity superstructures in turbulent Rayleigh-B\'enard flow},
  author = {Dominik Krug and Detlef Lohse and Richard J. A. M. Stevens},
  journal= {arXiv preprint arXiv:1908.10073},
  year   = {2021}
}

Comments

17 pages, 10 figures