Open Access
High performance modeling of heterogeneous SOFC electrode microstructures using the MOOSE framework: ERMINE (Electrochemical Reactions in MIcrostructural NEtworks)
Tim Hsu
1
,
Rubayyat Mahbub
1
,
Jerry Hunter Mason
2
,
William Epting
3
,
Harry Abernathy
2
,
Gregory Hackett
2
,
Shawn Litster
4
,
Paul Salvador
1
2
Leidos Research Support Team, 3610 Collins Ferry Road, Morgantown, WV 26505, USA
|
3
U.S. DOE National Energy Technology Laboratory, 626 Cochrans Mill Road, Pittsburgh, PA 15236, USA
|
Publication type: Journal Article
Publication date: 2020-02-21
PubMed ID:
32195139
Clinical Biochemistry
Medical Laboratory Technology
Abstract
Electrochemical energy devices, such as batteries and fuel cells, contain active electrode components that have highly porous, multiphase microstructures for improved performance. Predictive electrochemical models of solid oxide fuel cell (SOFC) electrode performance based on measured microstructures have been limited to small length scales, a small number of simulations, and/or relatively homogeneous microstructures. To overcome the difficulty in modeling electrochemical activity of inhomogeneous microstructures at considerable length scales, we have developed a high-throughput simulation application that operates on high-performance computing platforms. The open-source application, named Electrochemical Reactions in MIcrostructural NEtworks (ERMINE), is implemented within the MOOSE computational framework, and solves species transport coupled to both three-phase boundary and two-phase boundary electrochemical reactions. As the core component, this application is further incorporated into a high-throughput computational workflow. The main advantages of the workflow include: • Straightforward image-based volumetric meshing that conforms to complex, multi-phased microstructural features • Computation of local electrochemical fields in morphology-resolved microstructures at considerable length scales • Implementation on high performance computing platforms, leading to fast, high-throughput computations
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18
Total citations:
18
Citations from 2025:
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(55.55%)
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Hsu T. et al. High performance modeling of heterogeneous SOFC electrode microstructures using the MOOSE framework: ERMINE (Electrochemical Reactions in MIcrostructural NEtworks) // MethodsX. 2020. Vol. 7. p. 100822.
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Hsu T., Mahbub R., Mason J. H., Epting W., Abernathy H., Hackett G., Rollett A. D., Litster S., Salvador P. High performance modeling of heterogeneous SOFC electrode microstructures using the MOOSE framework: ERMINE (Electrochemical Reactions in MIcrostructural NEtworks) // MethodsX. 2020. Vol. 7. p. 100822.
Cite this
RIS
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TY - JOUR
DO - 10.1016/j.mex.2020.100822
UR - https://doi.org/10.1016/j.mex.2020.100822
TI - High performance modeling of heterogeneous SOFC electrode microstructures using the MOOSE framework: ERMINE (Electrochemical Reactions in MIcrostructural NEtworks)
T2 - MethodsX
AU - Hsu, Tim
AU - Mahbub, Rubayyat
AU - Mason, Jerry Hunter
AU - Epting, William
AU - Abernathy, Harry
AU - Hackett, Gregory
AU - Rollett, Anthony D.
AU - Litster, Shawn
AU - Salvador, Paul
PY - 2020
DA - 2020/02/21
PB - Elsevier
SP - 100822
VL - 7
PMID - 32195139
SN - 2215-0161
ER -
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@article{2020_Hsu,
author = {Tim Hsu and Rubayyat Mahbub and Jerry Hunter Mason and William Epting and Harry Abernathy and Gregory Hackett and Anthony D. Rollett and Shawn Litster and Paul Salvador},
title = {High performance modeling of heterogeneous SOFC electrode microstructures using the MOOSE framework: ERMINE (Electrochemical Reactions in MIcrostructural NEtworks)},
journal = {MethodsX},
year = {2020},
volume = {7},
publisher = {Elsevier},
month = {feb},
url = {https://doi.org/10.1016/j.mex.2020.100822},
pages = {100822},
doi = {10.1016/j.mex.2020.100822}
}