Article, 2024

Fracture toughness and slow crack growth behaviour of metal-proton conducting ceramic composites

Journal of the European Ceramic Society, ISSN 1873-619X, 0955-2219, Page 116646, 10.1016/j.jeurceramsoc.2024.05.068

Contributors

Palmerini, Federico [1] Pirou, Stéven 0000-0002-3202-5371 [1] Frandsen, Henrik Lund 0000-0001-8336-6363 [1] Kiebach, Ragnar 0000-0002-4619-3894 [1] Khajavi, Peyman 0000-0003-2618-3418 [1]

Affiliations

  1. [1] Technical University of Denmark
  2. [NORA names: DTU Technical University of Denmark; University; Denmark; Europe, EU; Nordic; OECD]

Abstract

The fracture toughness and slow crack growth behaviour of two load-bearing metal ceramic components adopted in negatrode-supported electrochemical devices, namely Ni-BCZY27 and Ni-BCZY442, are investigated via double torsion technique. The investigation showed that the two metal-ceramic composites are considerably less sensitive to slow crack growth when compared to oxide ceramics such as stabilized zirconia and alumina, with K I 0 / K IC equal to approximately 0.8. On the other hand, they also showed lower fracture toughness than Ni-3YSZ, with Ni-BCZY442 and Ni-BCZY27 having a fracture toughness of respectively 1.74 and 3.04MPa*m1/2 for porosities equal to 25.8% and 19.1% respectively, compared to Ni-3YSZ reported in previous work with similar Ni content and porosity of approximately 30% having a fracture toughness equal to 3.4MPa*m1/2. Furthermore, the analysis of samples presenting extensive barium depletion indicated fast fracture propagation upon application of loads significantly lower than the critical fracture load.

Keywords

K IC, Ni content, Ni-3YSZ, alumina, analysis, analysis of samples, barium, barium depletion, behavior, ceramic components, ceramic composites, ceramics, components, composition, content, crack growth, crack growth behavior, critical fracture load, depletion, devices, double torsion technique, electrochemical devices, fracture, fracture load, fracture propagation, fracture toughness, growth, growth behavior, investigation, load, metal protonation, metal-ceramic components, metal-ceramic composites, oxide ceramics, porosity, propagation, samples, sensitive to slow crack growth, slow crack growth, slow crack growth behavior, stabilized zirconia, technique, torsion technique, toughness, zirconia

Funders

  • European Commission

Data Provider: Digital Science