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Fatigue life prediction for structure under fatigue and low-energy impact based on continuum damage mechanics

机译:基于连续损伤力学的疲劳和低能量冲击结构疲劳寿命预测

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A product characterized by fatigue-induced failure is subjected to complex cyclic load which cause fatigue damage accumulated over time. At the same time, the product under cyclic load may suffer from low-energy impact during the whole service life. For its discontinuity, the low-energy impact does not lead to the product failure immediately. The low-energy impact not only cause structural damage and the residual strength degradation instantly but also influence the effect of cyclic load. And cyclic load has the same effect for structural in return. This article shows an approach for fatigue life prediction based on continuum damage mechanics with coupling relationship between fatigue damage and impact damage. First, the features and coupling relationships of fatigue damage and impact damage are discussed in this essay and both of them result in a drop in residual strength of structure. Second, the initial stress response under impact and fatigue loads were obtained. The existed evolution equations of fatigue and impact damage were respectively introduced. Third, based on these damage evolution equations, a new coupling damage model for fatigue damage and impact damage has been established and the damage and residual strength evolution of the structure is proposed. Finally, an engineering case is introduced to validate the approach.
机译:通过疲劳诱导的失效特征的产品受到复杂的循环载荷,这导致随时间累积的疲劳损坏。同时,循环负载下的产品可能会在整个使用寿命期间遭受低能量的影响。由于其不连续性,低能量的影响不会立即导致产品失效。低能量的影响不仅会导致结构损伤和剩余强度降解即时,而且影响循环载荷的效果。循环负载具有相同的结构效果返回。本文显示了一种基于连续损伤力学的疲劳寿命预测方法,疲劳损伤与冲击损伤之间的耦合关系。首先,在本文中讨论了疲劳损伤和冲击损伤的特征和耦合关系,并且它们两者都讨论了结构的残余强度下降。其次,获得了抗冲击和疲劳载荷下的初始应力响应。介绍了疲劳和冲击损伤的存在的演化方程。第三,基于这些损伤的演化方程,已经建立了一种用于疲劳损伤和冲击损伤的新耦合损伤模型,提出了该结构的损坏和剩余强度演化。最后,引入了工程案例以验证方法。

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