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Effect of mechanical training on the properties of superelastic shape memory alloys for seismic applications

机译:机械训练对地震应用超弹性形状记忆合金性能的影响

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The objective of this study is to evaluate the effect that mechanical training has on the properties of NiTi based shape memory alloys. The unique mechanical behavior of shape memory alloys, which allows the material to undergo large deformations while returning to their original undeformed shape through either the shape memory effect or superelastic effect, has shown potential for use in seismic design and retrofit applications for civil engineering structures. However, cyclic loading has been shown to degrade the energy dissipation capacity and decrease the recentering capability of the material due to fatigue effects. It has been recommended that mechanical training of superelastic shape memory alloys prior to use in applications can limit these fatigue effects. A factorial experimental design is employed to explore the optimal number of mechanical training cycles, strain level of training, and the effect of the loading rate after training in order to minimize the degradation in the loading plateau stress, residual strain, and equivalent viscous damping properties. The results presented can serve as a guide to optimizing the properties of NiTi shape memory alloys for seismic applications. The ability to obtain stable properties of shape memory alloys under a specified training schedule further supports the eventual implementation of the material into actual building and bridge systems as seismic design and retrofit devices.
机译:这项研究的目的是评估机械训练对NiTi基形状记忆合金性能的影响。形状记忆合金的独特机械性能允许材料经受较大的变形,同时通过形状记忆效应或超弹性效应恢复到其原始未变形形状,已显示出可用于土木工程结构的抗震设计和改造应用的潜力。然而,由于疲劳效应,循环载荷已显示出降低了能量耗散能力并降低了材料的集中能力。建议在应用前对超弹性形状记忆合金进行机械培训可以限制这些疲劳效应。采用阶乘实验设计来探索最佳的机械训练周期数,训练的应变水平以及训练后的加载速率的影响,以最大程度地减小加载平台应力,残余应变和等效粘性阻尼特性的退化。给出的结果可作为优化用于地震应用的NiTi形状记忆合金性能的指南。在指定的培训计划下获得形状记忆合金的稳定特性的能力进一步支持了最终将材料实施到实际的建筑和桥梁系统中作为抗震设计和翻新设备。

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