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Prediction of fatigue crack growth retardation using a cyclic cohesive zone model

机译:使用循环内聚区模型预测疲劳裂纹扩展延迟

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Cohesive zone modeling of fatigue crack growth retardation in aerospace titanium alloy Ti-6Al-4V subjected to a single overload during constant amplitude is presented in this work. The cyclic softening behavior of the bulk material is simulated according to the Ohno-Wang's cyclic plasticity theory. The fracture process zone is represented by an irreversible cohesive law which governs the material separation of fatigue crack. The material degradation mechanism is described by the gradual reduction of the unloading cohesive stiffness after each loading cycle. The fatigue crack growth behaviors are examined using the proposed cohesive model under both constant and variable amplitude loadings. The computational results are verified according to the experimental data, which confirm that the present model can be applied to predict the transient retardation in fatigue crack growth rate of the Ti-6Al-4V alloy accurately.
机译:这项工作提出了航天钛合金Ti-6Al-4V在恒定振幅下承受一次过载的疲劳裂纹扩展延迟的内聚区模型。根据Ohno-Wang的循环可塑性理论模拟了块状材料的循环软化行为。断裂过程区由控制疲劳裂纹材料分离的不可逆内聚定律表示。通过在每个加载循环后逐渐降低卸载内聚刚度来描述材料的降解机理。使用建议的内聚模型在恒定和可变振幅载荷下检查疲劳裂纹扩展行为。根据实验数据对计算结果进行了验证,表明该模型可以准确地预测Ti-6Al-4V合金疲劳裂纹扩展速率的瞬态延迟。

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