The effect of tilt on turbulent thermal convection for a heated soap bubble

Author:

He Xiao-Qiu1ORCID,Xiong Yong-Liang1ORCID,Bragg Andrew D.2ORCID,Fischer Patrick3ORCID,Kellay Hamid4ORCID

Affiliation:

1. School of Aerospace Engineering, Huazhong University of Science and Technology, Wuhan 430074, People's Republic of China

2. Department of Civil and Environmental Engineering, Duke University, Durham, North Carolina 27708, USA

3. Institut de Mathématiques de Bordeaux (IMB), Université de Bordeaux, CNRS UMR 5251, France

4. Laboratoire Ondes et Matiére d'Aquitaine (LOMA), Université de Bordeaux, France

Abstract

We use direct numerical simulation (DNS) to explore the effect of tilt on two-dimensional turbulent thermal convection on a half-soap bubble that is heated at its equator. In the DNS, the bubble is tilted by an angle [Formula: see text], the Rayleigh number is varied between [Formula: see text], and the Prandlt number is fixed at Pr =  7. The DNS reveals two qualitatively different flow regimes: the dynamic plume regime (DPR) and the stable plume regime (SPR). In the DPR, small dynamic plumes constantly emerge from random locations on the equator and dissipate on the bubble. In the SPR, the flow is dominated by a single large and stable plume rising from the lower edge of the bubble. The scaling behavior of the Nusselt number Nu and Reynolds number Re is different in these two regimes, with [Formula: see text] for the DPR and [Formula: see text] for the SPR. Concerning Re, the scaling in the DPR lies between [Formula: see text] and [Formula: see text] depending on Ra and δ, while in the SPR, the scaling lies between [Formula: see text] and [Formula: see text] depending on δ. The turbulent thermal and kinetic energy dissipation rates ([Formula: see text] and [Formula: see text], respectively) are also very different in the DPR and SPR. The probability density functions (PDF) of the normalized [Formula: see text] and [Formula: see text] are close to a Gaussian PDF for small fluctuations but deviate considerably from a Gaussian at large fluctuations in the DPR. In the SPR, the PDFs of normalized [Formula: see text] and [Formula: see text] deviate considerably from a Gaussian PDF even for small values. The globally averaged thermal energy dissipation rate due to the mean temperature field was shown to exhibit the scaling [Formula: see text] in the DPR and [Formula: see text] in the SPR. The globally averaged kinetic energy dissipation rate due to the mean velocity field is shown to exhibit the scaling [Formula: see text] in the DPR (the exponent reduces from 0.47 to 0.43 as δ is increased up to 30°). In the SPR, the behavior changes considerably to [Formula: see text]. For the turbulent dissipation rates, the results indicate the scaling [Formula: see text] and [Formula: see text] in the DPR. However, the dependencies of [Formula: see text] and [Formula: see text] on Ra cannot be described by power-laws in the SPR.

Funder

National Natural Science Foundation of China

Publisher

AIP Publishing

Subject

Condensed Matter Physics,Fluid Flow and Transfer Processes,Mechanics of Materials,Computational Mechanics,Mechanical Engineering

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