Abstract
Microstructure evolution driven by thermal coarsening is an important factor for the loss of oxygen reduction reaction rates in SOFC cathode. In this work, the effect of an initial microstructure on the microstructure evolution in SOFC cathode is investigated using a recently developed phase field model. Specifically, we tune the phase fraction, the average grain size, the standard deviation of the grain size and the grain shape in the initial microstructure, and explore their effect on the evolution of the grain size, the density of triple phase boundary, the specific surface area and the effective conductivity in LSM-YSZ cathodes. It is found that the degradation rate of triple phase boundary density and specific surface area of LSM is lower with less LSM phase fraction (with constant porosity assumed) and greater average grain size, while the degradation rate of effective conductivity can also be tuned by adjusting the standard deviation of grain size distribution and grain aspect ratio. The implication of this study on the designing of an optimal initial microstructure of SOFC cathodes is discussed.
Cite
CITATION STYLE
Lei, Y., Cheng, T.-L., & Wen, Y. H. (2017). Linking Initial Microstructure to ORR Related Property Degradation in SOFC Cathode: A Phase Field Simulation. Journal of The Electrochemical Society, 164(10), F3073–F3082. https://doi.org/10.1149/2.0101710jes
Register to see more suggestions
Mendeley helps you to discover research relevant for your work.