CFD modeling and simulation of proton-conducting solid oxide electrolysis cell for electrochemical hydrogen sulfide decomposition to produce hydrogen수소 생산 목적의 전기화학적 황화수소 분해를 위한 양성자전도 고체 산화물 전해전지의 전산유체역학 모델 개발 및 모사

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dc.contributor.advisorLee, Jay Hyung-
dc.contributor.advisor이재형-
dc.contributor.authorChoi, Hye Min-
dc.date.accessioned2022-04-21T19:31:41Z-
dc.date.available2022-04-21T19:31:41Z-
dc.date.issued2021-
dc.identifier.urihttp://library.kaist.ac.kr/search/detail/view.do?bibCtrlNo=949046&flag=dissertationen_US
dc.identifier.urihttp://hdl.handle.net/10203/295386-
dc.description학위논문(석사) - 한국과학기술원 : 생명화학공학과, 2021.2,[iii, 30 p. :]-
dc.description.abstractElectrochemical hydrogen sulfide decomposition produces hydrogen by recovering hydrogen sulfide using electrical energy. Adopting proton-conducting solid oxide electrolysis cell for electrochemical hydrogen sulfide decomposition carry out hydrogen production and separation in a single step. Electrochemical hydrogen sulfide decomposition technology is still in the stage of developing electrodes. Computational fluid dynamics (CFD) models of electrochemical cells are mandatory to improve the cell performances and efficiency because the CFD model increases an understanding of mass and heat transport and electrochemical mechanisms. Especially for electrochemical hydrogen sulfide decomposition, there is a thermal decomposition through the cell. Therefore, it is important to figure out interactions between electrochemical and thermal decompositions. However, studies on CFD models for electrochemical hydrogen sulfide decomposition are lacking. In this study, a CFD model for electrochemical hydrogen sulfide decomposition is developed on a button cell scale based on experiments using an open-source CFD software, OpenFOAM®. The model implements porous electrodes and electrochemical properties with the Nernst equation and Faraday's law of electrolysis. Thermal properties found in experiments at 600 °C are also implemented by kinetic estimation through the experiment results. The model is validated by comparison of the current density-voltage curve and conversion of hydrogen sulfide with the experiment results. Case studies are carried out to investigate cell variables such as current density, conversion of hydrogen sulfide, electrochemical versus thermal reaction ratio by inlet mole fractions, flow rates, and flow configurations.-
dc.languageeng-
dc.publisher한국과학기술원-
dc.subjectHydrogen sulfide▼aHydrogen production▼aProton-conducting SOEC▼aElectrolysis▼aCFD-
dc.subject황화수소▼a수소생산▼a양성자전도 고체 산화물 전해 전지▼a전기분해▼a전산 유체 역학-
dc.titleCFD modeling and simulation of proton-conducting solid oxide electrolysis cell for electrochemical hydrogen sulfide decomposition to produce hydrogen-
dc.title.alternative수소 생산 목적의 전기화학적 황화수소 분해를 위한 양성자전도 고체 산화물 전해전지의 전산유체역학 모델 개발 및 모사-
dc.typeThesis(Master)-
dc.identifier.CNRN325007-
dc.description.department한국과학기술원 :생명화학공학과,-
dc.contributor.alternativeauthor최혜민-
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CBE-Theses_Master(석사논문)
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