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Plastic mismatch effect on plasticity induced crack closure: Fatigue crack propagation perpendicularly across a plastically mismatched interface

机译:塑性失配对塑性引起的裂纹闭合的影响:疲劳裂纹在塑性失配界面上垂直扩展

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摘要

In the present work, comprehensive investigation of both theoretical analysis and numerical simulation was carried out to investigate the plastic mismatch effect on plasticity induced crack closure (PICC) behavior and effective fatigue crack tip driving force. During the process of crack tip approaching interface, crack tip load and crack tip load ratio will change, resulting in the change of PICC degree. When the crack propagates towards higher strength side, K-op/K-max increases; when the crack propagates towards lower strength side, K-op/K-max decreases firstly and then increases. The two mechanisms of "interface plastic mismatch effect on nominal fatigue crack tip driving force" and "interface plastic mismatch effect on PICC degree" were compared. The second mechanism must be considered when building crack tip driving force model for describing fatigue crack crossing plastically mismatched interface, because it is more physically factual and maybe more important than the first mechanism.
机译:在目前的工作中,进行了理论分析和数值模拟的综合研究,以研究塑性失配对塑性诱导裂纹闭合(PICC)行为和有效疲劳裂纹尖端驱动力的影响。在裂纹尖端接近界面的过程中,裂纹尖端载荷和裂纹尖端载荷比将发生变化,从而导致PICC度的变化。当裂纹向高强度侧扩展时,K-op / K-max增大;当裂纹向低强度侧扩展时,K-op / K-max先减小后增大。比较了“界面塑性失配对名义疲劳裂纹尖端驱动力的影响”和“界面塑性失配对PICC程度的影响”的两种机理。在建立用于描述穿过塑性不匹配界面的疲劳裂纹的裂纹尖端驱动力模型时,必须考虑第二种机制,因为它在物理上比第一种机制更实际,甚至可能更重要。

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