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Sensing damage in carbon fiber polymer-matrix composites during fatigue by electrical resistance measurement

机译:通过电阻测量来感知碳纤维聚合物基复合材料在疲劳过程中的损坏

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Abstract: Self-monitoring of static/fatigue damage and dynamic strain in a continuous crossply carbon fiber polymer-matrix composite by electrical resistance (R) measurement was achieved. With a static/cyclic tensile stress along the 0 degree direction, R in this direction and R perpendicular to the fiber layers were measured.Upon static tension to failure, R in the 0 direction first decreased and then increased, while R perpendicular to the fiber layers increased monotonically. Upon cyclic tension, R decreased reversibly, while R perpendicular to the fiber layers increased reversibly, though R in both directions changed irreversibly by a small amount after the first cycle. Upon fatigue testing at a maximum stress of 57 percent of the fracture stress, R irreversibly increased both in spurts and continuously, due to 0 degree fiber breakage, which started at 15 percent of the fatigue life, while R irreversibly increased both in spurts and continuously, due to delamination, which started at 33 percent of the fatigue life. The peak R in a cycle irreversibly decreased, while the minimum R at the end of a cycle irreversibly increased during the first 0.1 percent of the fatigue life, due to irreversible increases in the degree of 0 fiber alignment. R became noisy starting at 87 percent of the fatigue life, whereas R became noisy starting at 50 percent of the fatigue life. For a unidirectional composite, R increased reversibly upon tension and decreased reversibly upon compression in the 0 direction, due to piezoresistivity. !6
机译:摘要:通过电阻(R)测量实现了连续交叉层状碳纤维聚合物-基复合材料中静态/疲劳损伤和动态应变的自我监测。在沿0度方向的静态/循环拉伸应力下,测量此方向上的R和垂直于纤维层的R.在破坏时的静态张力下,0方向上的R先降低然后增加,而垂直于纤维的R层单调增加。在循环张力下,尽管在第一循环后,在两个方向上的R均不可逆地变化了少量,但是R在可逆的方向上下降,而垂直于纤维层的R在方向上可逆地增长。在最大断裂应力为57%的最大应力下进行疲劳测试时,由于0度纤维断裂(从疲劳寿命的15%开始),R突然和连续地不可逆地增加,而R突然和连续地不可逆地增加。 ,这是由于脱层,开始于疲劳寿命的33%。循环中的峰值R不可逆地降低,而在循环结束时的最小值R在疲劳寿命的前0.1%内不可逆地增加,这是由于0光纤对齐程度的不可逆增加。 R从疲劳寿命的87%开始变得嘈杂,而R从疲劳寿命的50%开始变得嘈杂。对于单向复合材料,由于压阻,R在拉伸时可逆地增加,而在0方向受压时可逆地减少。 !6

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