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Thermomechanical modeling and experimental investigation of transformation-induced creep and stress relaxation in shape memory alloy wires

机译:形状记忆合金丝相变引起的蠕变和应力松弛的热力学建模和实验研究

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Creep and relaxation phenomena are being observed in shape memory alloys, not only at high temperatures but also at room temperature, due to their martensitic transformation. Transformation-induced creep and stress relaxation in shape memory alloys occur due to temperature variations during loading and unloading cycles. In this work, a one-dimensional fully coupled thermomechanical model was employed to develop a continuum framework for studying these behaviors in shape memory alloy wires. A decrease or increase in stress was observed during forward or reverse transformation at a constant amount of strain, showing the stress relaxation and stress recovery, respectively. Similarly, the model predicts that strain increases or decreases when stress is held fixed in the course of forward or reverse transformation, meaning the phenomena of creep and creep recovery, respectively. This model provides the ability of investigating the effects of different ambient temperatures, strain rates, applied stresses and strains, and wire radii on the creep and relaxation responses of shape memory alloys. Relaxation and creep experiments at different ambient temperatures and loading or unloading rates were also done on NiTi wires, and the theoretical predictions were shown to be in a good agreement with the empirical observations.
机译:由于形状记忆合金的马氏体相变,不仅在高温下而且在室温下都观察到了蠕变和松弛现象。由于在加载和卸载循环过程中温度变化,在形状记忆合金中发生了相变诱发的蠕变和应力松弛。在这项工作中,采用一维全耦合热力学模型来开发一个连续框架,以研究形状记忆合金丝中的这些行为。在正向或反向转变过程中,在恒定应变量下观察到应力的减少或增加,分别显示了应力松弛和应力恢复。类似地,该模型预测,当应力在正向或反向转换过程中保持固定时,应变会增加或减少,分别表示蠕变和蠕变恢复现象。该模型提供了研究不同环境温度,应变率,施加的应力和应变以及线半径对形状记忆合金的蠕变和弛豫响应的影响的能力。在镍钛合金丝上也进行了在不同环境温度和加载或卸载速率下的松弛和蠕变实验,并且理论预测与实证观察结果非常吻合。

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