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dc.contributor.authorShyu, Jin-Cherngen_US
dc.contributor.authorWei, Chung-Shengen_US
dc.contributor.authorLee, Ching-Jiunen_US
dc.contributor.authorWang, Chi-Chuanen_US
dc.date.accessioned2014-12-08T15:48:24Z-
dc.date.available2014-12-08T15:48:24Z-
dc.date.issued2010-09-01en_US
dc.identifier.issn1359-4311en_US
dc.identifier.urihttp://dx.doi.org/10.1016/j.applthermaleng.2010.04.029en_US
dc.identifier.urihttp://hdl.handle.net/11536/32246-
dc.description.abstractThis study experimentally examines the influence of two-phase flow on the fluid flow in membraneless microfluidic fuel cells. The gas production rate from such fuel cell is firstly estimated via corresponding electrochemical equations and stoichiometry from the published measured current-voltage curves in the literature to identify the existence of gas bubble. It is observed that O(2) bubble is likely to be generated in Hasegawa's experiment when the current density exceeds 30 mA cm(-2) and 3 mA cm(-2) for volumetric flow rates of 100 mu L min(-1) and 10 mu L min(-1), respectively. Besides, CO(2) bubble is also likely to be presented in the Jayashree's experiment at a current density above 110 mA cm(-2) at their operating volumetric liquid flow rate, 0.3 mL min(-1). Secondly, a 1000-mu m-width and 50-mu m-depth platinum-deposited microfluidic reactor is fabricated and tested to estimate the gas bubble effect on the mixing in the similar microchannel at different volumetric flow rates. Analysis of the mixing along with the flow visualization confirm that the membraneless fuel cell should be free from any bubble, since the mixing index of the two inlet streams with bubble generation is almost five times higher than that without any bubble at the downstream. (C) 2010 Elsevier Ltd. All rights reserved.en_US
dc.language.isoen_USen_US
dc.subjectMicrofluidicen_US
dc.subjectSolubilityen_US
dc.subjectGas/liquid two-phase flowen_US
dc.subjectFuel cellen_US
dc.titleInvestigation of bubble effect in microfluidic fuel cells by a simplified microfluidic reactoren_US
dc.typeArticleen_US
dc.identifier.doi10.1016/j.applthermaleng.2010.04.029en_US
dc.identifier.journalAPPLIED THERMAL ENGINEERINGen_US
dc.citation.volume30en_US
dc.citation.issue13en_US
dc.citation.spage1863en_US
dc.citation.epage1871en_US
dc.contributor.department機械工程學系zh_TW
dc.contributor.departmentDepartment of Mechanical Engineeringen_US
dc.identifier.wosnumberWOS:000279907800044-
dc.citation.woscount13-
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