Multiphase flow and heat transfer on micro/nanostructured surfaces

dc.contributor.authorQiu, HH
dc.date.accessioned2015-04-23T12:22:33Z
dc.date.available2015-04-23T12:22:33Z
dc.date.issued2014
dc.description.abstractPaper presented to the 10th International Conference on Heat Transfer, Fluid Mechanics and Thermodynamics, Florida, 14-16 July 2014.en_ZA
dc.description.abstractMultiphase flow and heat transfer in mini/microspaces are of significant interest for thermal management applications, where the latent heat of phase change offers an efficient method to dissipate large heat fluxes in a compact device, such as a heat spreader or a heat pipe. However, a significant challenge for the implementation of microscale phase change heat spreader is associated with micro/nano flow instabilities due to insufficient micro/nano bubble removal, leading to local liquid dry-out which severely limits the heat removal efficiency. This work will conduct a review on the challenges and opportunities that surfaces with micro/nanostructure patterned wettabilities. Bubble dynamics, fluid flow and heat transfer caused by the micro/nanostructure patterned surfaces will be reported and discussed. The effects of micro/nanostructure patterned surfaces on flow generation under a vapor bubble in a microchannel under very low Reynolds number will be demonstrated. The effects of wettability patterned surfaces on nucleation pool boiling and flow boiling heat transfer processes will be described. Bubble formation, breakup and departure are visualized and measured. Wettability patterned micro/nanostructure surfaces are manufactured on glass wafers and copper surfaces, respectively. Different surface hexagonal pattern size will be used. Indium Tin Oxide (ITO), Fluoroalkylsilanes (FAS) and Copper Oxide (CuO) will be used for glass and copper surfaces, respectively. It is found that bubble dynamics and pool boiling performance are enhanced significantly on smooth and flat surfaces combining hydrophilic and hydrophobic patterns in comparison with a hydrophilic surface. A micro/nanostructured heat spreader with asymmetrical wettability patterns will be demonstrated.en_ZA
dc.description.librariandc2015en_ZA
dc.format.extent13 pagesen_ZA
dc.format.mediumPDFen_ZA
dc.identifier.citationQiu, HH 2014, 'Multiphase flow and heat transfer on micro/nanostructured surfaces', Paper presented to the 10th International Conference on Heat Transfer, Fluid Mechanics and Thermodynamics, Florida, 14-16 July 2014.en_ZA
dc.identifier.isbn97817759206873
dc.identifier.urihttp://hdl.handle.net/2263/44636
dc.publisherInternational Conference on Heat Transfer, Fluid Mechanics and Thermodynamicsen_ZA
dc.rights© 2014 University of Pretoria. All rights reserved. The copyright in this work vests in the University of Pretoria. No part of this work may be reproduced or transmitted in any form or by any means, without the prior written permission of the University of Pretoria.en_ZA
dc.subjectMultiphase flowen_ZA
dc.subjectMultiphase flow and heat transferen_ZA
dc.subjectThermal managementen_ZA
dc.subjectLatent heaten_ZA
dc.subjectHeat spreaderen_ZA
dc.subjectHeat pipeen_ZA
dc.subjectMicroscale phase change heat spreaderen_ZA
dc.subjectInsufficient micro/nano bubble removalen_ZA
dc.subjectHeat removal efficiencyen_ZA
dc.subjectBubble dynamicsen_ZA
dc.subjectFluid flow and heat transferen_ZA
dc.subjectFlow generation under a vapor bubble in a microchannelen_ZA
dc.subjectWettability patterned surfacesen_ZA
dc.subjectFlow boiling heat transferen_ZA
dc.subjectBubble formationen_ZA
dc.subjectWettability patterned micro/nanostructure surfacesen_ZA
dc.subjectIndium Tin Oxideen_ZA
dc.subjectITOen_ZA
dc.subjectFluoroalkylsilanesen_ZA
dc.subjectFASen_ZA
dc.subjectHydrophobic patternsen_ZA
dc.subjectHydrophilic surfaceen_ZA
dc.titleMultiphase flow and heat transfer on micro/nanostructured surfacesen_ZA
dc.typePresentationen_ZA

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