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Fatigue hysteresis behavior of unidirectional C/SiC ceramic-matrix composite at room and elevated temperatures

机译:单向C / SiC陶瓷基复合材料在室温和高温下的疲劳磁滞行为

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In this paper, the tensile fatigue hysteresis behavior of unidirectional C/SiC composite at room and elevated temperatures in air atmosphere has been investigated. The fatigue hysteresis modulus and fatigue hysteresis loss energy corresponding to different number of applied cycles have been analyzed. Based on the damage mechanism of fiber slipping relative to matrix in the interface debonded region, the fatigue hysteresis loops models based upon the Coulomb friction law instead of a constant fiber/ matrix interface shear stress usually assumed in the hysteresis analysis, have been developed. The relationships between the fatigue hysteresis loss energy, fatigue hysteresis loops, interface frictional slip and interface frictional coefficient have been established. When the fiber/matrix interface frictional coefficient degrades, the fatigue hysteresis loss energy first increases to the maximum value, and then decreases to zero; the fatigue hysteresis loops correspond to different interface frictional slip cases. By comparing the experimental fatigue hysteresis loss energy with theoretical computational values, the fiber/matrix interface frictional coefficient corresponding to different number of applied cycles, has been obtained. The variations of fatigue hysteresis modulus, fatigue hysteresis loss energy and interface frictional coefficient as a function of cycle number, have been analyzed for different fatigue peak stresses and test conditions. The fatigue hysteresis loops predicted using the hysteresis loops models and estimated fiber/matrix interface frictional coefficient agreed with experimental results.
机译:本文研究了单向C / SiC复合材料在室温和大气中高温下的拉伸疲劳滞后行为。分析了对应于不同循环次数的疲劳磁滞模量和疲劳磁滞损耗能量。基于界面剥离区纤维相对于基体的滑移破坏机理,建立了基于库仑摩擦定律而不是滞后分析中通常假定的恒定纤维/基体界面剪切应力的疲劳滞后回线模型。建立了疲劳磁滞损耗能量,疲劳磁滞回线,界面摩擦滑移和界面摩擦系数之间的关系。当纤维/基体界面摩擦系数降低时,疲劳磁滞损耗能量先增大到最大值,然后减小到零。疲劳磁滞回线对应于不同的界面摩擦滑移情况。通过将实验疲劳磁滞损耗能量与理论计算值进行比较,获得了与不同循环次数对应的纤维/基体界面摩擦系数。针对不同的疲劳峰值应力和测试条件,分析了疲劳磁滞模量,疲劳磁滞损耗能量和界面摩擦系数随循环次数的变化。使用磁滞回线模型预测的疲劳磁滞回线和估算的纤维/基体界面摩擦系数与实验结果一致。

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