A steady-state two dimensional numerical simulation was carried out to optimize the heat transfer rate density from cylinders under different conditions. The geometric design of the cylinders was varied in two ways. In the first case the cylinders are located on a plane where their leading edges are aligned, and in the second case the cylinders are aligned on a plane which passes through their respective centre-lines. The rotation of the cylinders is within the range of 0 ≤ ω˜ ≤ 1, and the dimensionless pressure drop number, Be, which drives the flow is in the range of 10 ≤ Be ≤ 104. The continuity, momentum and energy equations describing the flow of the coolant, across the cylinders in the computational domain are performed using a computational fluid dynamics code, the results obtained were validated by comparing it with past results in the open literature for stationary cylinders. The effects of the various parameters (dimensionless pressure drop number, rotation) on the maximum heat transfer rate density from the cylinders in terms of augmentation and the suppression were analysed and reported.
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ASME/JSME 2011 8th Thermal Engineering Joint Conference
March 13–17, 2011
Honolulu, Hawaii, USA
Conference Sponsors:
- Heat Transfer Division
ISBN:
978-0-7918-3892-1
PROCEEDINGS PAPER
Heat Transfer Augmentation and Suppression in Optimal Rotating Cylinders in Cross-Flow Available to Purchase
Tunde Bello-Ochende,
Tunde Bello-Ochende
University of Pretoria, Gauteng, South Africa
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Josua P. Meyer,
Josua P. Meyer
University of Pretoria, Gauteng, South Africa
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Oluseun I. Ogunronbi
Oluseun I. Ogunronbi
University of Pretoria, Gauteng, South Africa
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Tunde Bello-Ochende
University of Pretoria, Gauteng, South Africa
Josua P. Meyer
University of Pretoria, Gauteng, South Africa
Oluseun I. Ogunronbi
University of Pretoria, Gauteng, South Africa
Paper No:
AJTEC2011-44254, T10086; 9 pages
Published Online:
March 1, 2011
Citation
Bello-Ochende, T, Meyer, JP, & Ogunronbi, OI. "Heat Transfer Augmentation and Suppression in Optimal Rotating Cylinders in Cross-Flow." Proceedings of the ASME/JSME 2011 8th Thermal Engineering Joint Conference. ASME/JSME 2011 8th Thermal Engineering Joint Conference. Honolulu, Hawaii, USA. March 13–17, 2011. T10086. ASME. https://doi.org/10.1115/AJTEC2011-44254
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