4.4 Article

What rotation rate maximizes heat transport in rotating Rayleigh-Benard convection with Prandtl number larger than one?

期刊

PHYSICAL REVIEW FLUIDS
卷 5, 期 5, 页码 -

出版社

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevFluids.5.053501

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资金

  1. Netherlands Center for Multiscale Catalytic Energy Conversion (MCEC)
  2. NWO Gravitation program - Ministry of Education, Culture and Science of the government of the Netherlands
  3. Major Research Plan of the National Natural Science Foundation of China for Turbulent Structures [91852107, 91752202]
  4. ERC (European Research Council) [804283]
  5. Gauss Centre for Supercomputing e.V.
  6. PRACE [2018194742]
  7. European Research Council (ERC) [804283] Funding Source: European Research Council (ERC)

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The heat transfer and flow structure in rotating Rayleigh-Benard convection are strongly influenced by the Rayleigh (Ra), Prandtl (Pr), and Rossby (Ro) numbers. For Pr greater than or similar to 1 and intermediate rotation rates, the heat transfer is increased compared to the nonrotating case. We find that the regime of increased heat transfer is subdivided into low- and high-Ra-number regimes. For Ra less than or similar to 5 x 10(8) the heat transfer at a given Ra and Pr is highest at an optimal rotation rate, at which the thicknesses of the viscous and thermal boundary layers are about equal. From the scaling relations of the thermal and viscous boundary layer thicknesses, we derive that the optimal rotation rate scales as 1/Ro(opt) approximate to 0.12Pr(1/2)Ra(1/6). In the low-Ra regime the heat transfer is similar in a periodic domain and cylindrical cells with different aspect ratios, i.e., the ratio of diameter to height. This is consistent with the view that the vertically aligned vortices are the dominant flow structure. For Ra greater than or similar to 5 x 10(8) the above scaling for the optimal rotation rate does not hold anymore. It turns out that in the high-Ra regime, the flow structures at the optimal rotation rate are very different than for lower Ra. Surprisingly, the heat transfer in the high-Ra regime differs significantly for a periodic domain and cylindrical cells with different aspect ratios, which originates from the sidewall boundary layer dynamics and the corresponding secondary circulation.

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