4.7 Article

Calculation of contact angles at triple phase boundary in solid oxide fuel cell anode using the level set method

Journal

MATERIALS CHARACTERIZATION
Volume 96, Issue -, Pages 100-107

Publisher

ELSEVIER SCIENCE INC
DOI: 10.1016/j.matchar.2014.07.020

Keywords

Solid oxide fuel cell anode; Microstructure; Contact angle; Surface tension; Level set method; Focused ion beam scanning electron microscopy

Funding

  1. Japan Science and Technology Agency (JST) CREST program
  2. Grants-in-Aid for Scientific Research [25289037] Funding Source: KAKEN

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A level set method is applied to characterize the three dimensional structures of nickel, yttria stabilized zirconia and pore phases in solid oxide fuel cell anode reconstructed by focused ion beam-scanning electron microscope. A numerical algorithm is developed to evaluate the contact angles at the triple phase boundary based on interfacial normal vectors which can be calculated from the signed distance functions defined for each of the three phases. Furthermore, surface tension force is estimated from the contact angles by assuming the interfacial force balance at the triple phase boundary. The average contact angle values of nickel, yttria stabilized zirconia and pore are found to be 143 degrees-156 degrees, 83 degrees-138 degrees and 82 degrees-123 degrees, respectively. The mean contact angles remained nearly unchanged after 100 hour operation. However, the contact angles just after reduction are different for the cells with different sintering temperatures. In addition, standard deviations of the contact angles are very large especially for yttria stabilized zirconia and pore phases. The calculated surface tension forces from mean contact angles were close to the experimental values found in the literature. Slight increase of surface tensions of nickel/pore and nickel/yttria stabilized zirconia were observed after operation. Present data are expected to be used not only for the understanding of the degradation mechanism, but also for the quantitative prediction of the microstructural temporal evolution of solid oxide fuel cell anode. (C) 2014 Elsevier Inc. All rights reserved..

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