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Fatigue-Life Prediction Methodology Using a Crack-Closure Model

机译:裂纹闭合模型的疲劳寿命预测方法

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摘要

This paper reviews the capabilities of a plasticity-induced crack-closure model and life-prediction code, FASTRAN, to predict fatigue lives of metallic materials using small-crack theory. Crack-tip constraint factors, to account for three-dimensional state-of-stress effects, were selected to correlate large-crack growth rate data as a function of the effective-stress-intensity factor range (ΔK_(eff)) under constant-amplitude loading. Some modifications to the ΔK_(eff)-rate relations were needed in the near-threshold regime to fit small-crack growth rate behavior and endurance limits. The model was then used to calculate small- and large-crack growth rates, and to predict total fatigue lives, for notched specimens made of several aluminum alloys and a titanium alloy under constant-amplitude and spectrum loading. Fatigue lives were calculated using the crack-growth relations and microstructural features like those that initiated cracks for the aluminum alloys. An equivalent-initial-flaw-size concept was used to bound the fatigue lives for the titanium alloy. Results from the tests and analyses agreed well.
机译:本文回顾了塑性诱导裂纹闭合模型和寿命预测代码FASTRAN使用小裂纹理论预测金属材料疲劳寿命的功能。选择裂纹尖端约束因子来解决三维应力状态影响,以便在恒定应力下将大裂纹增长率数据与有效应力强度因子范围(ΔK_(eff))的函数相关联。振幅加载。在近阈值状态下需要对ΔK_(eff)-速率关系进行一些修改,以适应小裂纹的生长速率行为和耐力极限。然后,该模型用于计算由几种铝合金和钛合金制成的带缺口试样在恒定振幅和频谱载荷下的小裂纹和大裂纹增长率,并预测总疲劳寿命。疲劳寿命是使用裂纹扩展关系和微观结构特征(如铝合金的裂纹)进行计算的。等效初始缺陷尺寸的概念被用来限制钛合金的疲劳寿命。测试和分析的结果一致。

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