Optimization analysis of solid oxide fuel cells with ceria-based single cells using computational fluid dynamics

The SOFC simulations in this research are conducted at temperatures of 600°C, 700 °C, and 800 °C, focusing on the Ni-SDC anode, SDC electrolyte, and LSCF-SDC materials used in the SOFC single cell. Initially, the single-cell model is created using CAD software, followed by the development of a compu...

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Published in:E3S Web of Conferences
Main Author: Huai T.K.; Azami M.S.M.; Rahman H.A.; Rahman N.F.A.; Tukimon M.F.; Jaidi Z.H.; Yusop U.A.
Format: Conference paper
Language:English
Published: EDP Sciences 2024
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85192796639&doi=10.1051%2fe3sconf%2f202451601010&partnerID=40&md5=4c9a8716f9f8aaa02b20b24235e0d489
id 2-s2.0-85192796639
spelling 2-s2.0-85192796639
Huai T.K.; Azami M.S.M.; Rahman H.A.; Rahman N.F.A.; Tukimon M.F.; Jaidi Z.H.; Yusop U.A.
Optimization analysis of solid oxide fuel cells with ceria-based single cells using computational fluid dynamics
2024
E3S Web of Conferences
516

10.1051/e3sconf/202451601010
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85192796639&doi=10.1051%2fe3sconf%2f202451601010&partnerID=40&md5=4c9a8716f9f8aaa02b20b24235e0d489
The SOFC simulations in this research are conducted at temperatures of 600°C, 700 °C, and 800 °C, focusing on the Ni-SDC anode, SDC electrolyte, and LSCF-SDC materials used in the SOFC single cell. Initially, the single-cell model is created using CAD software, followed by the development of a computational fluid dynamics (CFD) model with the requisite material properties. The study then proceeds to simulate temperature distribution and cell performance for various supported SOFC stack models (electrode and electrolyte supported) at intermediate temperatures. Subsequently, the study examines cell performance with varying thicknesses of the anode, electrolyte, and cathode components within the specific supported single cell. In summary, the CFD results indicate that cathode-supported SOFCs exhibit higher power density, specifically 938.28 mW/cm2 at 800 °C, surpassing anode-supported and electrolyte-supported configurations. The power density reaches 1495.40 mW/cm2 when the single-cell layer thickness is 0.35 mm for the cathode, 0.02 mm for the anode, and 0.01 mm for the electrolyte. However, electrolyte-supported single cells display the lowest temperature difference, at 0.028% at 800oC The simulation results demonstrate that reducing the thicknesses of all electrodes and the electrolyte leads to increased current density, power density, and temperature distribution difference. © 2024 The Authors, published by EDP Sciences.
EDP Sciences
25550403
English
Conference paper
All Open Access; Gold Open Access
author Huai T.K.; Azami M.S.M.; Rahman H.A.; Rahman N.F.A.; Tukimon M.F.; Jaidi Z.H.; Yusop U.A.
spellingShingle Huai T.K.; Azami M.S.M.; Rahman H.A.; Rahman N.F.A.; Tukimon M.F.; Jaidi Z.H.; Yusop U.A.
Optimization analysis of solid oxide fuel cells with ceria-based single cells using computational fluid dynamics
author_facet Huai T.K.; Azami M.S.M.; Rahman H.A.; Rahman N.F.A.; Tukimon M.F.; Jaidi Z.H.; Yusop U.A.
author_sort Huai T.K.; Azami M.S.M.; Rahman H.A.; Rahman N.F.A.; Tukimon M.F.; Jaidi Z.H.; Yusop U.A.
title Optimization analysis of solid oxide fuel cells with ceria-based single cells using computational fluid dynamics
title_short Optimization analysis of solid oxide fuel cells with ceria-based single cells using computational fluid dynamics
title_full Optimization analysis of solid oxide fuel cells with ceria-based single cells using computational fluid dynamics
title_fullStr Optimization analysis of solid oxide fuel cells with ceria-based single cells using computational fluid dynamics
title_full_unstemmed Optimization analysis of solid oxide fuel cells with ceria-based single cells using computational fluid dynamics
title_sort Optimization analysis of solid oxide fuel cells with ceria-based single cells using computational fluid dynamics
publishDate 2024
container_title E3S Web of Conferences
container_volume 516
container_issue
doi_str_mv 10.1051/e3sconf/202451601010
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85192796639&doi=10.1051%2fe3sconf%2f202451601010&partnerID=40&md5=4c9a8716f9f8aaa02b20b24235e0d489
description The SOFC simulations in this research are conducted at temperatures of 600°C, 700 °C, and 800 °C, focusing on the Ni-SDC anode, SDC electrolyte, and LSCF-SDC materials used in the SOFC single cell. Initially, the single-cell model is created using CAD software, followed by the development of a computational fluid dynamics (CFD) model with the requisite material properties. The study then proceeds to simulate temperature distribution and cell performance for various supported SOFC stack models (electrode and electrolyte supported) at intermediate temperatures. Subsequently, the study examines cell performance with varying thicknesses of the anode, electrolyte, and cathode components within the specific supported single cell. In summary, the CFD results indicate that cathode-supported SOFCs exhibit higher power density, specifically 938.28 mW/cm2 at 800 °C, surpassing anode-supported and electrolyte-supported configurations. The power density reaches 1495.40 mW/cm2 when the single-cell layer thickness is 0.35 mm for the cathode, 0.02 mm for the anode, and 0.01 mm for the electrolyte. However, electrolyte-supported single cells display the lowest temperature difference, at 0.028% at 800oC The simulation results demonstrate that reducing the thicknesses of all electrodes and the electrolyte leads to increased current density, power density, and temperature distribution difference. © 2024 The Authors, published by EDP Sciences.
publisher EDP Sciences
issn 25550403
language English
format Conference paper
accesstype All Open Access; Gold Open Access
record_format scopus
collection Scopus
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