DOE OSTI · 2569887
Phase-Field Modeling of Damage Evolution in Ceramic Matrix Composite (CMC) and Environmental Barrier Coating (EBC)
Abstract
Ceramic matrix composites (CMCs) protected by environmental barrier coatings (EBCs) present a promising materials solution for next generation gas turbines. Developments of more robust and efficient EBCs and mechanically tougher CMCs are thus of significant technological importance. Here we develop a phase-field modeling framework that incorporates the thermally grown oxide (TGO), recognized as a critical factor for degradation and failure of EBCs. We simulate crack growth in the TGO and the potential extension into the bond coat / CMC substrate. The model efficiently takes account of the large inelastic deformation induced by the severe volume expansion of TGO, thanks to our recently developed, so-called incremental realization of inelastic deformation (IRID) algorithm. A phase-field model is built for damage evolution in CMCs including crack growth and interfacial sliding. The effects of fiber layout and interfacial sliding on the macroscopic toughness of CMCs are revealed by large-scale simulations and compared to experiments.
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
Cheng, Tianle [NETL Site Support Contractor, National Energy Technology Laboratory], Xue, Fei [NETL Site Support Contractor, National Energy Technology Laboratory], Wen, Youhai [NETL] (ORCID:0000000241632616). 2025-03-23. Phase-Field Modeling of Damage Evolution in Ceramic Matrix Composite (CMC) and Environmental Barrier Coating (EBC). https://doi.org/10.2172/2569887
Cite the original work for its findings. Save a collection to share your selection of sources.