Please use this identifier to cite or link to this item:
https://dspace.iiti.ac.in/handle/123456789/10504
Title: | Effect of asymmetric fluid flow distribution on flow boiling in a microchannel heat sink – An experimental investigation |
Authors: | Kumar, Ritunesh Singh, Gurjeet |
Keywords: | Cooling systems;Electric discharge machining;Electric discharges;Electric power systems;Electronic cooling;Flow of fluids;Heat flux;Microchannels;Thermal management (electronics);Asymmetric fluids;Boiling process;Flow boiling;Flow boiling instabilities;Flow maldistribution;Flow reversals;Flow visualisation;High heat flux;Micro channel heat sinks;Side-channel;Heat sinks |
Issue Date: | 2022 |
Publisher: | Elsevier Ltd |
Citation: | Kumar, R., Singh, G., & Mikielewicz, D. (2022). Effect of asymmetric fluid flow distribution on flow boiling in a microchannel heat sink – An experimental investigation. Applied Thermal Engineering, 213, 118710. https://doi.org/10.1016/j.applthermaleng.2022.118710 |
Abstract: | Flow boiling in microchannels is emerging as an exclusive cooling solution for miniaturized high-power electronic devices alongside having other high heat flux applications. Size miniaturization at microscale strangely increases heat transfer performance as well as flow boiling instabilities. Many flow boiling instabilities are interrelated and result from imperfect hydrodynamic conditions. One of such problems is flow maldistribution among parallel channels of a microchannel heat sink. Very limited studies have dedicatedly investigated the negative effects of flow maldistribution on the boiling process in microchannels. A microchannel heat sink with twenty-five rectangular microchannels (width × height × length = 0.45 × 0.725 × 25 mm) made on a copper block base of 25 × 25 × 85 mm using wire electrical discharge machining under an I-type flow configuration is investigated for that purpose. Flow boiling patterns of central and side microchannels as well as the temperature profile of central and side microchannels are recorded. The boiling process always incepts in side microchannels and rapidly converts into a periodic flow reversal up to the inlet manifold, whereas weak, stable, bubbly flow and single-phase liquid flow are observed in the neighboring and central microchannels, respectively. Furthermore, with the increase of heat flux, flow boiling intensity increases and more parallel microchannels start experiencing rapid bubble growth; consequently, the intensity of flow reversal in side channels also increases. At high heat fluxes, the vapor backflow of side microchannels reaches the central microchannel and blocks the flow through it, named mirage flow confinement. Boiling in the central channel aggravates under the influence of the mirage flow reversal processes. Temperature non-uniformity across the microchannel heat sink increases with the increase of heat flux and mass flux caused by the early appearance of a partial dryout of side channels and the escalation of the flow distribution asymmetry. Whereas, better temperature distribution is observed at higher inlet fluid temperatures. © 2022 Elsevier Ltd |
URI: | https://doi.org/10.1016/j.applthermaleng.2022.118710 https://dspace.iiti.ac.in/handle/123456789/10504 |
ISSN: | 1359-4311 |
Type of Material: | Journal Article |
Appears in Collections: | Department of Mechanical Engineering |
Files in This Item:
There are no files associated with this item.
Items in DSpace are protected by copyright, with all rights reserved, unless otherwise indicated.
Altmetric Badge: