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Damage and fracture of a ceramic matrix composite under isothermal and thermomechanical fatigue loading

机译:等温和热机械疲劳负载下陶瓷基质复合材料的损伤和骨折

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摘要

In this paper, the damage and fracture of long-fiber-reinforced ceramic-matrix composites (CMCs) subjected to the isothermal cyclic fatigue, dwell-fatigue, and in-phase (IP) and out-of-phase (OP) thermomechanical fatigue (TMF) have been investigated. The fiber/matrix interface shear stress is determined as a function of testing temperature and material properties, which affects matrix multicracking and fiber/matrix interface debonding, sliding upon unloading/reloading. The relationships between the cyclic testing temperature, applied cycle number, fatigue peak stress level, matrix crack spacing, fiber/matrix interface debonding/sliding, and the shape location and area of thermomechanical fatigue hysteresis loops have been established. The damage evolution of fatigue hysteresis dissipated energy, fatigue peak strain, fatigue hysteresis modulus and fiber/matrix interface debonding/sliding lengths versus applied cycle numbers subjected to isothermal cyclic fatigue, dwell-fatigue, IP, OP TMF cyclic loading have been compared. The damage and fracture of cross-ply SiC/MAS composite subject to different fatigue loading types have been predicted. The comparison analysis among the isothermal cyclic fatigue, dwell-fatigue with different hold-times, and IP/OP TMF loading have been conducted, and the effects of testing temperature and loading frequencies on fatigue damage and fracture of long-fiber-reinforced CMCs have been discussed.
机译:在本文中,对等温循环疲劳,耐疲劳和同相(IP)和超相(OP)热机械疲劳进行的长纤维增强陶瓷 - 基质复合材料(CMC)的损伤和断裂(TMF)已被调查。光纤/矩阵界面剪切应力被确定为测试温度和材料特性的函数,这影响矩阵多架和光纤/矩阵界面剥离,在卸载/重新加载时滑动。已经建立了循环试验温度,施加循环数,疲劳峰值应力水平,矩阵裂纹间距,光纤/矩阵界面剥离/滑动的关系,以及热机械疲劳滞后环的形状位置和面积。疲劳滞后能量,疲劳峰菌株,疲劳滞后模量和纤维/基质界面剥离/滑动长度与施加循环编号进行了对等温循环疲劳,耐疲劳,IP,OP TMF循环载荷的抑制作用。已经预测了交叉层SiC / MAS复合材料对不同疲劳负载类型的损伤和骨折。已经进行了等温循环疲劳,与不同持续时间的等温循环疲劳,耐疲劳和IP / OP TMF装载的比较分析,以及测试温度和装载频率对长纤维增强CMC的疲劳损伤和骨折的影响已经讨论过。

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