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An experimental study on two-phase flow patterns and heat transfer characteristics during boiling of R134a flowing through a multi-microchannel heat sink

dc.contributor.authorThiangtham, Phubate
dc.contributor.authorKeepaiboon, Chanyoot
dc.contributor.authorKiatpachai, Parinya
dc.contributor.authorAsirvatham, Lazarus Godson
dc.contributor.authorMahian, Omid
dc.contributor.authorDalkilic, Ahmet Selim
dc.contributor.authorWongwises, Somchai
dc.date.accessioned2026-06-27T13:55:51Z
dc.date.issued2016
dc.description.abstractThe present paper presents an experimental study of flow patterns and heat transfer characteristics of flow boiling of R134a in a multi-microchannel heat sink. The copper test section has 27 parallel rectangular channels with a depth of 470 mu m, a width of 382 mu m, a length of 40 mm, and a fin thickness of 416 mu m. The experimental results are presented for saturation temperatures of 13, 18, and 23 degrees C, and mass fluxes of 150, 400, and 600 kg/m(2) s. The wall heat flux and inlet vapor quality values were between 3 and 127 kW/m(2), and 0.05 and 0.92, respectively. The effects of pertinent parameters on the heat and fluid flow characteristics such as saturation temperature, mass flux, heat flux, and inlet vapor quality are studied and discussed. The heat transfer coefficient at high saturation temperatures (i.e. 23 degrees C) is higher than low saturation temperatures (i.e. 13 degrees C) in the heat flux range of 40-120 kW/m(2). For high heat flux ranges, the heat transfer coefficient increases with increasing mass flux. The convective boiling heat transfer mechanism will play a major role in wavy and annular flow patterns. For wall heat fluxes higher than 80 kW/m(2), the existence of a partial dry-out phenomenon in the multi-microchannel leads to a decrease in heat transfer coefficient. The results unveil the significant effect of flow patterns on heat transfer characteristics. Based on the experimental data, a correlation is proposed to calculate the heat transfer coefficient for R134a flow in the multi-microchannel heat sink that is useful in electronic cooling applications. (C) 2016 Elsevier Ltd. All rights reserved.en
dc.description.sponsorshipResearch Chair Grant National Science and Technology Development Agency
dc.description.sponsorshipThailand Research Fund
dc.description.sponsorshipNational Research University Project
dc.description.urihttps://doi.org/10.1016/j.ijheatmasstransfer.2016.02.051
dc.identifier.doi10.1016/j.ijheatmasstransfer.2016.02.051
dc.identifier.eissn1879-2189
dc.identifier.endpage400
dc.identifier.issn0017-9310
dc.identifier.startpage390
dc.identifier.urihttps://hdl.handle.net/20.500.14981/55846
dc.identifier.volume98
dc.identifier.wos000375360600037
dc.language.isoeng
dc.publisherPERGAMON-ELSEVIER SCIENCE LTD
dc.relation.ispartofINTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER
dc.subjectFlow boiling
dc.subjectHeat transfer
dc.subjectR134a
dc.subjectMicro-channel heat sink
dc.subjectREFRIGERATION COOLING APPLICATIONS
dc.subjectPRESSURE-DROP
dc.subjectFLUX
dc.subjectThermodynamics
dc.subjectEngineering
dc.subjectMechanics
dc.titleAn experimental study on two-phase flow patterns and heat transfer characteristics during boiling of R134a flowing through a multi-microchannel heat sink
dc.typeArticle
dspace.entity.typePublication
local.import.sourceWOS

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