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On the fracture toughness and stable crack growth in shape memory alloy actuators in the presence of transformation-induced plasticity

机译:在转化诱导的可塑性存在下形状记忆合金致动器中的断裂韧性和稳定裂纹生长

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摘要

The effect of transformation-induced plasticity (TRIP) on the fracture response of polycrystalline shape memory alloys is analyzed in the prototype infinite center-cracked plate subjected to thermal cycling under constant mechanical loading in plain strain. Finite element calculations are carried out to determine the mechanical fields and the crack-tip energy release rate using the virtual crack closure technique. Similar to phase transformation, TRIP is found to affect both the driving force for crack growth and the crack growth kinetics by promoting crack advance when occurring in a fan in front of the crack tip and providing a "shielding" effect when occurring behind that fan. Accumulation of TRIP strains over the cycles results in higher energy release rates from one cycle to another and may result in crack growth if the crack-tip energy release rate reaches a material "specific" critical value after a sufficient number of cycles. During crack advance, the shielding effect of the TRIP strains left in the wake of the growing crack dominates and therefore TRIP is found to both promote the initiation of crack growth and extend the stable crack growth regime.
机译:在恒定机械负载下恒定机械载荷下进行热循环的原型无限中心裂纹板中,分析了转化诱导的塑性(跳闸)对多晶形状记忆合金的裂缝响应的影响。进行有限元计算以确定使用虚拟裂纹闭合技术确定机械场和裂纹尖端能量释放速率。类似于相变,发现跳闸以通过在裂纹尖端前面的风扇中发生裂缝提前来影响裂纹生长和裂纹生长动力学的驱动力,并在该风扇后面发生“屏蔽”效果。循环中的跳跃菌株的累积导致从一个循环到另一个循环的能量释放速率,并且如果裂缝尖端能量释放速率在足够数量的循环后达到材料“特异性”临界值,则可能导致裂纹生长。在裂缝前进期间,在生长裂纹突出的突出突出中留下行程菌株的屏蔽效应,因此发现促进裂纹生长的启动并延长稳定的裂纹生长制度。

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