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A thermomechanical fatigue hysteresis-based damage evolution model for fiber-reinforced ceramic-matrix composites

机译:基于热机械疲劳滞后型抗纤维陶瓷 - 基质复合材料的损伤演化模型

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摘要

In this paper, a thermomechanical fatigue hysteresis-based damage evolution model for fiber-reinforced ceramic-matrix composites has been developed. Upon unloading and reloading, the fiber/matrix interface debonded length, interface counter-slip length, and interface new-slip length change with increasing or decreasing applied stress, which affects the stress-strain fatigue hysteresis loops and fatigue hysteresis-based damage parameters. The reloading/unloading stress-strain relationships when fiber/matrix interface partially or completely debonding are determined as a function of interface debonding/sliding, peak stress, applied cycle number, and thermal cycle temperature. The relationships between thermomechanical fatigue loading parameters (i.e. peak stress, applied cycle number, and thermal cyclic temperature), fiber/matrix interface debonding/sliding lengths, and fatigue hysteresis-based damage parameters (i.e. fatigue hysteresis dissipated energy, fatigue hysteresis modulus, and fatigue peak strain) have been established. The effects of fiber volume fraction, peak stress, matrix cracking space, and thermal cyclic temperature range on damage evolution under the out-of-phase thermomechanical cyclic loading have been discussed. The differences in damage evolution between in-phase/out-of-phase thermomechanical fatigue and isothermal fatigue loading at the same peak stress have been analyzed. The damage evolution of cross-ply SiC/magnesium aluminosilicate composite under the out-of-phase thermomechanical and isothermal fatigue loading has been predicted.
机译:在本文中,已经开发出用于纤维增强陶瓷 - 基质复合材料的热机械疲劳滞后损伤演化模型。在卸载和重新加载时,光纤/矩阵界面剥离长度,接口防滑长度和接口新滑动长度随着施加应力的增加或减少而导致的施加应力,这影响了应力 - 应变疲劳滞后环和疲劳滞后的损伤参数。重新加载/卸载应力 - 应变关系当光纤/矩阵界面部分或完全剥离时被确定为接口剥离/滑动,峰值应力,应用循环编号和热循环温度的函数。热机械疲劳负载参数(即峰值应力,施加循环数和热循环温度),光纤/基质界面剥离/滑动长度的关系,以及疲劳滞后的损伤参数(即疲劳滞后耗散能量,疲劳滞后模量和已经建立了疲劳峰菌株。已经讨论了纤维体积分数,峰值应力,基质裂化空间和热循环温度范围对局部热机械循环加载下的损伤演化的影响。分析了在相同峰值应力下在相同阶段/超相热机械疲劳和等温疲劳负载之间的损伤进化的差异。已经预测了交叉层SiC /镁铝硅酸镁复合材料在异相热机械和等温疲劳负载下的损伤演变。

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