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SiCf/TC17 复合材料拉伸性能研究及叶环结构强度分析

  • Beihang University
  • Aero Engine Corporation of China

科研成果: 期刊稿件文章同行评审

摘要

Longitudinal tensile tests were carried out on SiCf/TC17 composites at room/high temperature to investigate the tensile behaviors. The damage evolution and failure mechanisms were revealed based on microscopic fracture morphology analysis. Afterwards, a constitutive model was developed to describe the tensile behaviors of SiCf/TC17 composites. The results showed that the ultimate tensile strength of SiCf/TC17 composites decreased with the increasing temperature, while the nonlinear segment of the stress-strain curve increased. The major failure mechanisms at room temperature lied in multiple fractures of the interfacial reaction layer and random breakage of weak fibers,whereas large-scale interface debonding and fiber pullout, matrix cracking and fiber breakage were more common at high temperatures. The results of different strength-predicted models demonstrated that the failure mode of SiCf/TC17 composites at room temperature was controlled by local loading sharing, while the high-temperature ultimate tensile strength was more consistent with the global loading sharing model. The stress-strain curve of SiCf/TC17 composites was simulated by the proposed constitutive model with coupling fiber cumulative damage. The simulation results exhibited a trend similar to that of the experimental data at 25 ℃ and 450 ℃. Finally, based on the tensile properties obtained from the tests, finite element stress-strain analysis and static strength calibration of the TMCs blade-ring structure were carried out. The result indicated that the blade-ring structure exhibited a significantly elevated strength reserve factor at the typical service temperature.

投稿的翻译标题Study on tensile properties of SiCf/TC17 composites and strength analysis of blade-ring structure
源语言繁体中文
文章编号20230626
期刊Hangkong Dongli Xuebao/Journal of Aerospace Power
40
7
DOI
出版状态已出版 - 7月 2025

关键词

  • SiC fiber
  • blade-ring
  • constitutive modeling
  • fracture mechanism
  • strength analysis
  • tensile properties
  • titanium matrix composites

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