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Bang, In Cheol
Nuclear Thermal Hydraulics and Reactor Safety Lab.
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EFFECTS OF AL(2)O(3) NANOPARTICLES DEPOSITION ON CRITICAL HEAT FLUX OF R-123 IN FLOW BOILING HEAT TRANSFER

Author(s)
Seo, Seok BinBang, In Cheol
Issued Date
2015-06
DOI
10.1016/j.net.2015.04.003
URI
https://scholarworks.unist.ac.kr/handle/201301/16418
Fulltext
http://www.sciencedirect.com/science/article/pii/S1738573315000881#
Citation
NUCLEAR ENGINEERING AND TECHNOLOGY, v.47, no.4, pp.398 - 406
Abstract
In this study, R-123 flow boiling experiments were carried out to investigate the effects of nanoparticle deposition on heater surfaces on flow critical heat flux (CHF) and boiling heat transfer. It is known that CHF enhancement by nanoparticles results from porous structures that are very similar to layers of Chalk River unidentified deposit formed on nuclear fuel rod surfaces during the reactor operation period. Although previous studies have investigated the surface effects through surface modifications, most studies are limited to pool boiling conditions, and therefore, the effects of porous surfaces on flow boiling heat transfer are still unclear. In addition, there have been only few reports on suppression of wetting for decoupled approaches of reasoning. In this study, bare and Al2O3 nanoparticle-coated surfaces were prepared for the study experiments. The CHF of each surface was measured with different mass fluxes of 1,600 kg/m(2)s, 1,800 kg/m(2)s, 2,100 kg/m(2)s, 2,400 kg/m(2)s, and 2,600 kg/m(2)s. The nanoparticle-coated tube showed CHF enhancement up to 17% at a mass flux of 2,400 kg/m(2)s compared with the bare tube. The factors for CHF enhancement are related to the enhanced rewetting process derived from capillary action through porous structures built-up by nanoparticles while suppressing relative wettability effects between two sample surfaces as a highly wettable R-123 refrigerant was used as a working fluid. Copyright (C) 2015, Published by Elsevier Korea LLC on behalf of Korean Nuclear Society
Publisher
KOREAN NUCLEAR SOC
ISSN
1738-5733
Keyword (Author)
Boiling heat transferChalk River unidentified depositCritical heat fluxNanofluidPorous structure
Keyword
CHF ENHANCEMENTSIC NANOFLUIDSNANO-FLUIDSPOOLSURFACEWATERMODEL

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