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Pool boiling heat transfer enhancement using the micro-thick metallic foam surface in saturated water
  • Lim, Hyunmuk ;
  • Doh, Su Yoon ;
  • Choi, Junyoung ;
  • Moc, Jungchan ;
  • You, Seung M. ;
  • Lee, Jungho
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Publication Year
2024-03-01
Publisher
Elsevier Ltd
Citation
International Communications in Heat and Mass Transfer, Vol.152
Keyword
Bubble behaviorCritical heat fluxHeat transfer enhancementMicro-thick metallic foamPool boiling
Mesh Keyword
Boiling heat transfer enhancementBubble behaviorHeat transfer co-efficientsHeat Transfer enhancementMetallic foamMicro-thick metallic foamPool boilingPool boiling heat transferPore densitiesSaturated water
All Science Classification Codes (ASJC)
Atomic and Molecular Physics, and OpticsChemical Engineering (all)Condensed Matter Physics
Abstract
Pool boiling experiments using micro-thick metallic foam (MMF) are performed in saturated water at atmospheric pressure. Sintered experimental samples were fabricated with micro-thick metallic foam instead of soldering for the rigorous pool boiling experiments. This study provides the heat transfer coefficient and the critical heat flux (CHF) of the metallic foam surfaces for different pore densities and thicknesses. Also, the boiling mechanism and bubble dynamics on the micro-thick metallic foams for pool boiling were investigated with their visualization. As a result, the MMF surface with 200 μm thick and 130 PPI has a CHF of 2050 kW/m2 and a heat transfer coefficient of 273.6 kW/m2∙K, respectively. Compared with other surface modification methods, MMFs with a thickness of about 200 μm to 300 μm can enhance heat transfer characteristics and increase the CHF. In particular, the increase in CHF might be attributed to the highly permeable structure of the metallic foam. Therefore, this study presents valuable insight into a feasible material-insensitive heat transfer enhancement method for pool boiling.
ISSN
0735-1933
Language
eng
URI
https://dspace.ajou.ac.kr/dev/handle/2018.oak/33953
DOI
https://doi.org/10.1016/j.icheatmasstransfer.2024.107310
Fulltext

Type
Article
Funding
This work was supported by the Civil-Military Technology Cooperation Program of the Institute of Civil-Military Technology Cooperation (ICMTC), with a grant funded by the Defense Acquisition Program Administration and the Ministry of Trade, Industry and Energy (Grant No. 19CMCO12 ) and the National Research Foundation of Korea (NRF) grant funded by the Ministry of Science and ICT , Korea (No. NRF-2020R1A2C3008689 ). This work was also supported by the National Research Foundation of Korea (NRF) grant funded by the Ministry of Science and ICT , Korea (No. 2022R1C1C2006156 ).
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