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Mixed convection heat transfer of turbulent flow in a three-dimensional lid-driven cavity with a rotating cylinder

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journal contribution
posted on 2017-06-30, 14:04 authored by Ali Khaleel Kareem, Shian Gao
A numerical study has been carried out to investigate the combined forced and natural convection heat transfer in a differentially heated 3D obstructed cavity with a thermally insulated rotating circular cylinder. The cavity has a hot stationary bottom wall and a cold top lid-driven wall, and all the other walls completing the domain are motionless and adiabatic. The simulations are performed for different Reynolds numbers, Re = 5000, 10,000, 15,000 and 30,000, and for dimensionless rotational speeds of the cylinder, 0 ≤ Ω ≤ 10. The performance of two turbulence methods, Large Eddy Simulation (LES) and Unsteady Reynolds-Averaged Navier-Stokes (URANS), has been evaluated in this research. The flow and thermal fields are studied through flow vectors, isotherm contours and iso-surfaces temperature, as well as through the average Nusselt number (Nuav) and velocity components. The results demonstrate clearly that the flow patterns and the thermal fields are influenced strongly by increasing either the rotating cylinder speed or the Reynolds number. Furthermore, both LES and URANS solutions can capture the essential feature of the primary eddies in the cavity. But this study has shown convincing evidence that only the LES method can predict the structure details of the secondary eddies that have profound effects on the heat transfer behaviour within the enclosure.

Funding

The authors would like to thank the Ministry of Higher Education and Scientific Research of Iraq for the financial support of the project.

History

Citation

International Journal of Heat and Mass Transfer, 2017, 112, pp. 185-200

Author affiliation

/Organisation/COLLEGE OF SCIENCE AND ENGINEERING/Department of Engineering

Version

  • AM (Accepted Manuscript)

Published in

International Journal of Heat and Mass Transfer

Publisher

Elsevier

issn

0017-9310

Acceptance date

2017-04-25

Copyright date

2017

Available date

2018-05-04

Publisher version

http://www.sciencedirect.com/science/article/pii/S0017931017304751

Notes

The file associated with this record is under embargo until 12 months after publication, in accordance with the publisher's self-archiving policy. The full text may be available through the publisher links provided above.

Language

en

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