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Fatigue Failure Model for Composite Laminates under Multi-Axial Cyclic Loading

机译:复合材料层合板在多轴循环载荷下的疲劳破坏模型

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摘要

Fatigue life prediction equation is proposed based on fatigue modulus concept. Fatigue modulus degradation rate at any fatigue cycle was assumed as a power function of number of fatigue cycles. New stress function describing the relation of initial fatigue modulus and elastic modulus was used to describe material non-linearity at the first cycle. Fatigue modulus at failure is assumed to be proportional to applied stress level. Material constants in the equation can be determined from static and uniaxial cyclic loading. Using cumulative damage model, fatigue life prediction on composite laminates under multi-axial stress conditions was derived as functions of applied stress level and number of fatigue cycles. The fatigue failure model was verified by fatigue tests using bi-directional (cross-ply) carbon fiber-epoxy composite tubes under combined axial and torsional loading. It was shown that the proposed equations have wide applicability and the presented prediction agreed well with experimental data.
机译:基于疲劳模量概念,提出了疲劳寿命预测方程。假定在任何疲劳循环下的疲劳模量降解率都是疲劳循环数的幂函数。描述初始疲劳模量和弹性模量关系的新应力函数用于描述第一个循环中的材料非线性。假定失效时的疲劳模量与施加的应力水平成正比。方程中的材料常数可以从静态和单轴循环载荷确定。使用累积损伤模型,推导了复合层压板在多轴应力条件下的疲劳寿命预测,作为施加应力水平和疲劳循环次数的函数。通过双向(交叉)碳纤维-环氧树脂复合管在轴向和扭转载荷作用下的疲劳试验验证了疲劳破坏模型。结果表明,所提出的方程具有广泛的适用性,所提出的预测与实验数据吻合良好。

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