Analysis of the Effect of Anode Porosity on Temperature Distribution on Planar Radial Type SOFC

Solid Oxide Fuel Cell (SOFC) is an electrochemical equipment that converts gas into electricity directly. The waste products resulting from SOFC are water vapor and heat when using hydrogen gas. The electrode of the SOFC is the anode, electrolyte and cathode. The performance of SOFC is influenced po...

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Main Authors: Widiyanto Alif, Sulistyo, Utomo MSK Tony Suryo
Format: Article
Language:English
Published: EDP Sciences 2018-01-01
Series:E3S Web of Conferences
Subjects:
Online Access:https://doi.org/10.1051/e3sconf/20187301010
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spelling doaj-79939b978ebf4552b837695fef4847fc2021-02-02T08:17:12ZengEDP SciencesE3S Web of Conferences2267-12422018-01-01730101010.1051/e3sconf/20187301010e3sconf_icenis18_01010Analysis of the Effect of Anode Porosity on Temperature Distribution on Planar Radial Type SOFCWidiyanto Alif0SulistyoUtomo MSK Tony SuryoMagister Program of Energy, School of Postgraduate StudiesSolid Oxide Fuel Cell (SOFC) is an electrochemical equipment that converts gas into electricity directly. The waste products resulting from SOFC are water vapor and heat when using hydrogen gas. The electrode of the SOFC is the anode, electrolyte and cathode. The performance of SOFC is influenced porosity of the electrode. This study explained the relationship between porosity of the anode and temperature distribution using computational fluid dynamics modeling approach (CFD). In this study, CFD modeling was done by using Fluent software. The geometry model of computational modeling is a planar radial-type SOFC. The assumptions of some boundary conditions used from the study of literature and the object of study. The standard deviation and the different of temperature of the anode-electrolyte surface used to analyse the result. Non-homogenous temperature distribution rise if the anode porosity and gas flow rate is increasing. This indicates the gradient of temperature is bigger in the higher porosity, which may cause thermal stress and degrades the materials of electrode.https://doi.org/10.1051/e3sconf/20187301010SOFCanodeporositytemperature
collection DOAJ
language English
format Article
sources DOAJ
author Widiyanto Alif
Sulistyo
Utomo MSK Tony Suryo
spellingShingle Widiyanto Alif
Sulistyo
Utomo MSK Tony Suryo
Analysis of the Effect of Anode Porosity on Temperature Distribution on Planar Radial Type SOFC
E3S Web of Conferences
SOFC
anode
porosity
temperature
author_facet Widiyanto Alif
Sulistyo
Utomo MSK Tony Suryo
author_sort Widiyanto Alif
title Analysis of the Effect of Anode Porosity on Temperature Distribution on Planar Radial Type SOFC
title_short Analysis of the Effect of Anode Porosity on Temperature Distribution on Planar Radial Type SOFC
title_full Analysis of the Effect of Anode Porosity on Temperature Distribution on Planar Radial Type SOFC
title_fullStr Analysis of the Effect of Anode Porosity on Temperature Distribution on Planar Radial Type SOFC
title_full_unstemmed Analysis of the Effect of Anode Porosity on Temperature Distribution on Planar Radial Type SOFC
title_sort analysis of the effect of anode porosity on temperature distribution on planar radial type sofc
publisher EDP Sciences
series E3S Web of Conferences
issn 2267-1242
publishDate 2018-01-01
description Solid Oxide Fuel Cell (SOFC) is an electrochemical equipment that converts gas into electricity directly. The waste products resulting from SOFC are water vapor and heat when using hydrogen gas. The electrode of the SOFC is the anode, electrolyte and cathode. The performance of SOFC is influenced porosity of the electrode. This study explained the relationship between porosity of the anode and temperature distribution using computational fluid dynamics modeling approach (CFD). In this study, CFD modeling was done by using Fluent software. The geometry model of computational modeling is a planar radial-type SOFC. The assumptions of some boundary conditions used from the study of literature and the object of study. The standard deviation and the different of temperature of the anode-electrolyte surface used to analyse the result. Non-homogenous temperature distribution rise if the anode porosity and gas flow rate is increasing. This indicates the gradient of temperature is bigger in the higher porosity, which may cause thermal stress and degrades the materials of electrode.
topic SOFC
anode
porosity
temperature
url https://doi.org/10.1051/e3sconf/20187301010
work_keys_str_mv AT widiyantoalif analysisoftheeffectofanodeporosityontemperaturedistributiononplanarradialtypesofc
AT sulistyo analysisoftheeffectofanodeporosityontemperaturedistributiononplanarradialtypesofc
AT utomomsktonysuryo analysisoftheeffectofanodeporosityontemperaturedistributiononplanarradialtypesofc
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