4.8 Article

Phase field modeling of microstructure evolution and concomitant effective conductivity change in solid oxide fuel cell electrodes

Journal

JOURNAL OF POWER SOURCES
Volume 345, Issue -, Pages 275-289

Publisher

ELSEVIER
DOI: 10.1016/j.jpowsour.2017.02.007

Keywords

SOFC; Microstructure evolution; Phase-field simulation; Enhanced interfacial energy tunability; Effective conductivity; BCSA algorithm

Funding

  1. National Energy Technology Laboratory, U.S. Department of Energy

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Microstructure evolution plays an important role in the performance degradation of SOFC electrodes. In this work, we propose a much improved phase field model to simulate the microstructure evolution in the electrodes of solid oxide fuel cell. We demonstrate that the tunability of the interfacial energy in this model has been significantly enhanced. Parameters are set to fit for the interfacial energies of a typical Ni-YSZ anode, an LSM-YSZ cathode and an artificial reference electrode, respectively. The contact angles at various triple junctions and the microstructure evolutions in two dimensions are calibrated to verify the model. As a demonstration of the capabilities of the model, three dimensional microstructure evolutions are simulated applying the model to the three different electrodes. The time evolutions of grain size and triple phase boundary density are analyzed. In addition, a recently proposed bound charge successive approximation algorithm is employed to calculate the effective conductivity of the electrodes during microstructure evolution. The effective conductivity of all electrodes are found to decrease during the microstructure evolution, which is attributed to the increased tortuosity and the loss of percolated volume fraction of the electrode phase. (C) 2017 Elsevier B.V. All rights reserved.

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