Development of Large-Scale and Quasi Multi-Physics Model for Whole Structure of the Typical Solid Oxide Fuel Cell Stacks
Although the performance and corresponding manufacturing technology of solid oxide fuel cells (SOFC) units have greatly improved and have met commercial requirements over the past decades, they are constructed such that they perform poorly and lack strong duration outputs. Therefore, achieving high...
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doaj-853f3155bcce44b1b4265d1763b605a02020-11-24T21:23:20ZengMDPI AGSustainability2071-10502018-08-01109309410.3390/su10093094su10093094Development of Large-Scale and Quasi Multi-Physics Model for Whole Structure of the Typical Solid Oxide Fuel Cell StacksJie Ma0Suning Ma1Xinyi Zhang2Daifen Chen3Juan He4School of Energy and Power, Jiangsu University of Science and Technology, Zhenjiang 212003, ChinaSchool of Energy and Power, Jiangsu University of Science and Technology, Zhenjiang 212003, ChinaSchool of Energy and Power, Jiangsu University of Science and Technology, Zhenjiang 212003, ChinaSchool of Energy and Power, Jiangsu University of Science and Technology, Zhenjiang 212003, ChinaCollege of Physics and Energy, Fujian Normal University, Fuzhou 350117, ChinaAlthough the performance and corresponding manufacturing technology of solid oxide fuel cells (SOFC) units have greatly improved and have met commercial requirements over the past decades, they are constructed such that they perform poorly and lack strong duration outputs. Therefore, achieving high performance and extending duration at a stack level are challenges faced by the development process. This paper develops a large-scale and multiphysics model for the complete structure of a typical 10-cell SOFC stack. It includes solid components, flow paths, and porous sections—solid ribs, interconnectors, anode support, anode function layer, electrolyte layer, cathode layer, air/fuel feed manifolds, feed header, rib channels, exhaust header and outlet manifolds. The multiphysics application includes momentum, mass, energy and quasi electrochemical transporting; and their mutual coupling processes within the stack. This new model can help us understand the working specifics of the large-scale stack, obtaining distribution details of static pressure, species fraction, and temperature gradient; further addressing optimization of structure and operation parameters. These details serve as guidelines for practical structural designs and parameters in real stack levels.http://www.mdpi.com/2071-1050/10/9/309410-cells fuel cell stackmulti-physics modelinglarge scale simulatingflow and temperature distributions |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Jie Ma Suning Ma Xinyi Zhang Daifen Chen Juan He |
spellingShingle |
Jie Ma Suning Ma Xinyi Zhang Daifen Chen Juan He Development of Large-Scale and Quasi Multi-Physics Model for Whole Structure of the Typical Solid Oxide Fuel Cell Stacks Sustainability 10-cells fuel cell stack multi-physics modeling large scale simulating flow and temperature distributions |
author_facet |
Jie Ma Suning Ma Xinyi Zhang Daifen Chen Juan He |
author_sort |
Jie Ma |
title |
Development of Large-Scale and Quasi Multi-Physics Model for Whole Structure of the Typical Solid Oxide Fuel Cell Stacks |
title_short |
Development of Large-Scale and Quasi Multi-Physics Model for Whole Structure of the Typical Solid Oxide Fuel Cell Stacks |
title_full |
Development of Large-Scale and Quasi Multi-Physics Model for Whole Structure of the Typical Solid Oxide Fuel Cell Stacks |
title_fullStr |
Development of Large-Scale and Quasi Multi-Physics Model for Whole Structure of the Typical Solid Oxide Fuel Cell Stacks |
title_full_unstemmed |
Development of Large-Scale and Quasi Multi-Physics Model for Whole Structure of the Typical Solid Oxide Fuel Cell Stacks |
title_sort |
development of large-scale and quasi multi-physics model for whole structure of the typical solid oxide fuel cell stacks |
publisher |
MDPI AG |
series |
Sustainability |
issn |
2071-1050 |
publishDate |
2018-08-01 |
description |
Although the performance and corresponding manufacturing technology of solid oxide fuel cells (SOFC) units have greatly improved and have met commercial requirements over the past decades, they are constructed such that they perform poorly and lack strong duration outputs. Therefore, achieving high performance and extending duration at a stack level are challenges faced by the development process. This paper develops a large-scale and multiphysics model for the complete structure of a typical 10-cell SOFC stack. It includes solid components, flow paths, and porous sections—solid ribs, interconnectors, anode support, anode function layer, electrolyte layer, cathode layer, air/fuel feed manifolds, feed header, rib channels, exhaust header and outlet manifolds. The multiphysics application includes momentum, mass, energy and quasi electrochemical transporting; and their mutual coupling processes within the stack. This new model can help us understand the working specifics of the large-scale stack, obtaining distribution details of static pressure, species fraction, and temperature gradient; further addressing optimization of structure and operation parameters. These details serve as guidelines for practical structural designs and parameters in real stack levels. |
topic |
10-cells fuel cell stack multi-physics modeling large scale simulating flow and temperature distributions |
url |
http://www.mdpi.com/2071-1050/10/9/3094 |
work_keys_str_mv |
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