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- W4285498255 abstract "Micromechanics modeling was performed to study the effects of thermal residual stress, weak interphases, TiB 2 volume fraction and particle size on the mechanical responses and fracture behaviors of B 4 C-TiB 2 composites. Experimentally observed fracture behaviors including micro-cracking and crack deflection were successfully captured. The weak interphases at B 4 C-TiB 2 boundaries and the thermal residual stress induced during cooling by the large CTE mismatch between B 4 C and TiB 2 were identified as two major factors to promote micro-cracking that caused the enhanced progressive failure behavior. Micro-cracking was enhanced with higher TiB 2 volume fraction due to higher fraction of weak interphase and material affected by thermal residual stress. Meanwhile, micro-cracking behaviors exhibited limited change with varying TiB 2 particle sizes. This modeling study successfully captured the main fracture behaviors and their trends by varying micro-structures of B 4 C-TiB 2 composites and can potentially aid microstructure design of tougher B 4 C-TiB 2 composites in the future." @default.
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- W4285498255 date "2022-11-01" @default.
- W4285498255 modified "2023-10-10" @default.
- W4285498255 title "Micromechanics-based simulation of B4C-TiB2 composite fracture under tensile load" @default.
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- W4285498255 doi "https://doi.org/10.1016/j.jeurceramsoc.2022.07.010" @default.
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