Acta Metallurgica Sinica (English Letters) ›› 2023, Vol. 36 ›› Issue (6): 1007-1022.DOI: 10.1007/s40195-023-01526-7

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Multiscale Failure Mechanism Analysis of SiC Fiber-Reinforced TC17 Composite Subjected to Transverse Tensile Loading at Elevated Temperature

Qiu-Yue Jia1,2, Yu-Min Wang1(), Xu Zhang1, Guo-Xing Zhang1, Qing Yang1, Li-Na Yang1, Xu Kong1, Xiao-Fang Li1, Rui Yang1()   

  1. 1Shi‑Changxu Innovation Center for Advanced Materials,Institute of Metal Research, Chinese Academy of Sciences,Shenyang 110016, China
    2School of Materials Science and Engineering, University of Science and Technology of China, Shenyang 110016,China
  • Received:2022-08-25 Revised:2022-10-13 Accepted:2022-10-14 Online:2023-06-10 Published:2023-02-11
  • Contact: Yu‑Min Wang,yuminwang@imr.ac.cn; Rui Yang,ryang@imr.ac.cn

Abstract:

This study presents a multiscale method to evaluate the transverse tensile strength and failure mechanism of SiC f/TC17 cruciform specimen machined from a large-size ring. The mechanical properties and failure of the specimen were evaluated through a macroscale model under transverse tensile loading at 200 °C. A mesoscale model was developed to analyze the transverse tensile behavior and failure of the composite specimen. Interfacial debonding, plastic deformation of matrix and cladding, and damage to the composite core were incorporated into the mesoscopic and macroscopic models. The stress-strain curves and fracture modes obtained from the numerical simulation showed good agreement with the experimental curves, acoustic emission test results, and fracture morphology. The simulation results suggested that the damage to the central region interface and the plastic deformation of the matrix initiated first and propagated outwards. Subsequently, the interfacial failure, matrix failure, and formation of macro-crack developed, which led to the crack of the titanium matrix composite core. Finally, cladding was plastically deformed and crack developed, which led to the severe failure of the cruciform specimen.

Key words: Continuous fiber-reinforced titanium matrix composite, Transverse tensile behavior, Multiscale analysis, Failure mechanism