Micro Level Two Dimensional Stress and Thermal Analysis Anode/Electrolyte Interface of a Solid Oxide Fuel Cell

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Date

2015

Journal Title

Journal ISSN

Volume Title

Publisher

Pergamon-Elsevier Science Ltd

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Green Open Access

No

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Top 10%
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Abstract

The delamination and degradation of solid oxide fuel cells (SOFCs) electrode/electrolyte interface is estimated by calculating the stresses generated within the different layers of the cell. The stresses developed in a SOFC are usually assumed to be homogenous through a cross section in the mathematical models at macroscopic scales. However, during the operating of these composite materials the real stresses on the multiphase porous layers might be very different than those at macro-scale. Therefore micro-level modeling is needed for an accurate estimation of the real stresses and the performance of SOFC. This study combines the microstructural characterization of a porous solid oxide fuel cell anode/electrolyte with two dimensional mechanical and electrochemical analyses to investigate the stress and the overpotential. The microstructure is determined by using focused ion beam (FIB) tomography and the resulting microstructures are used to generate a solid mesh of two dimensional triangular elements. COMSOL Multiphysics package is employed to calculate the principal stress and Maxwell Stefan Diffusion. The stress field is calculated from room temperature to operating temperature while the overpotential is calculated at operating temperature. Copyright (C) 2014, Hydrogen Energy Publications, LLC. Published by Elsevier Ltd. All rights reserved.

Description

Ibrahimoglu, Beycan/0000-0001-6395-4424; Celik, Selahattin/0000-0002-7306-9784;

Keywords

Solid Oxide Fuel Cell, Micro-Level Modeling, Stress Analysis, SOFC Anode, Overpotential, Micro level modeling, Overpotential, Solid oxide fuel cell, Stress analysis, SOFC anode

Fields of Science

02 engineering and technology, 0210 nano-technology, 01 natural sciences, 0105 earth and related environmental sciences, 0104 chemical sciences

Citation

WoS Q

Q1

Scopus Q

Q1
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OpenCitations Citation Count
23

Source

International Journal of Hydrogen Energy

Volume

40

Issue

24

Start Page

7895

End Page

7902
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CrossRef : 7

Scopus : 26

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26

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22

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3

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5

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7

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