Computational fluid dynamics analysis of an innovative start-up method of high temperature fuel cells using dynamic 3d model
The article presents a numerical analysis of an innovative method for starting systems based on high temperature fuel cells. The possibility of preheating the fuel cell stacks from the cold state to the nominal working conditions encounters several limitations related to heat transfer and stability...
Main Authors: | , , |
---|---|
Format: | Article |
Language: | English |
Published: |
Sciendo
2017-03-01
|
Series: | Polish Journal of Chemical Technology |
Subjects: | |
Online Access: | https://doi.org/10.1515/pjct-2017-0010 |
id |
doaj-251dcc2818fa4ded8c30e44a85426858 |
---|---|
record_format |
Article |
spelling |
doaj-251dcc2818fa4ded8c30e44a854268582021-09-05T13:59:43ZengSciendoPolish Journal of Chemical Technology1899-47412017-03-01191677310.1515/pjct-2017-0010pjct-2017-0010Computational fluid dynamics analysis of an innovative start-up method of high temperature fuel cells using dynamic 3d modelKupecki Jakub0Mich Dawid1Motylinski Konrad2Instytut Energetyki, Zakład Procesów Cieplnych, Augustówka 36, 02-981, Warszawa, PolandInstytut Energetyki, Zakład Procesów Cieplnych, Augustówka 36, 02-981, Warszawa, PolandInstytut Energetyki, Zakład Procesów Cieplnych, Augustówka 36, 02-981, Warszawa, PolandThe article presents a numerical analysis of an innovative method for starting systems based on high temperature fuel cells. The possibility of preheating the fuel cell stacks from the cold state to the nominal working conditions encounters several limitations related to heat transfer and stability of materials. The lack of rapid and safe start-up methods limits the proliferation of MCFCs and SOFCs. For that reason, an innovative method was developed and verified using the numerical analysis presented in the paper. A dynamic 3D model was developed that enables thermo-fluidic investigations and determination of measures for shortening the preheating time of the high temperature fuel cell stacks. The model was implemented in ANSYS Fluent computational fluid dynamic (CFD) software and was used for verification of the proposed start-up method. The SOFC was chosen as a reference fuel cell technology for the study. Results obtained from the study are presented and discussed.https://doi.org/10.1515/pjct-2017-0010cfddynamic modelingstart-upsofc |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Kupecki Jakub Mich Dawid Motylinski Konrad |
spellingShingle |
Kupecki Jakub Mich Dawid Motylinski Konrad Computational fluid dynamics analysis of an innovative start-up method of high temperature fuel cells using dynamic 3d model Polish Journal of Chemical Technology cfd dynamic modeling start-up sofc |
author_facet |
Kupecki Jakub Mich Dawid Motylinski Konrad |
author_sort |
Kupecki Jakub |
title |
Computational fluid dynamics analysis of an innovative start-up method of high temperature fuel cells using dynamic 3d model |
title_short |
Computational fluid dynamics analysis of an innovative start-up method of high temperature fuel cells using dynamic 3d model |
title_full |
Computational fluid dynamics analysis of an innovative start-up method of high temperature fuel cells using dynamic 3d model |
title_fullStr |
Computational fluid dynamics analysis of an innovative start-up method of high temperature fuel cells using dynamic 3d model |
title_full_unstemmed |
Computational fluid dynamics analysis of an innovative start-up method of high temperature fuel cells using dynamic 3d model |
title_sort |
computational fluid dynamics analysis of an innovative start-up method of high temperature fuel cells using dynamic 3d model |
publisher |
Sciendo |
series |
Polish Journal of Chemical Technology |
issn |
1899-4741 |
publishDate |
2017-03-01 |
description |
The article presents a numerical analysis of an innovative method for starting systems based on high temperature fuel cells. The possibility of preheating the fuel cell stacks from the cold state to the nominal working conditions encounters several limitations related to heat transfer and stability of materials. The lack of rapid and safe start-up methods limits the proliferation of MCFCs and SOFCs. For that reason, an innovative method was developed and verified using the numerical analysis presented in the paper. A dynamic 3D model was developed that enables thermo-fluidic investigations and determination of measures for shortening the preheating time of the high temperature fuel cell stacks. The model was implemented in ANSYS Fluent computational fluid dynamic (CFD) software and was used for verification of the proposed start-up method. The SOFC was chosen as a reference fuel cell technology for the study. Results obtained from the study are presented and discussed. |
topic |
cfd dynamic modeling start-up sofc |
url |
https://doi.org/10.1515/pjct-2017-0010 |
work_keys_str_mv |
AT kupeckijakub computationalfluiddynamicsanalysisofaninnovativestartupmethodofhightemperaturefuelcellsusingdynamic3dmodel AT michdawid computationalfluiddynamicsanalysisofaninnovativestartupmethodofhightemperaturefuelcellsusingdynamic3dmodel AT motylinskikonrad computationalfluiddynamicsanalysisofaninnovativestartupmethodofhightemperaturefuelcellsusingdynamic3dmodel |
_version_ |
1717813091244179456 |