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Effect of ambient temperature on the performance of shape memory alloy seismic devices

机译:环境温度对形状记忆合金抗震装置性能的影响

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Shape memory alloys (SMAs) are a class of metallic alloys that exhibit unique characteristics such as shape memory effect and superelasticity effect. SMAs are found in two main phases: the high temperature phase, which is known as austenite (superelastic), and the low temperature phase, which is known as martensite. Although there are few civil engineering applications using SMAs, there have been considerably large numbers of research studies focusing on exploiting SMAs in seismic resistant design and retrofit of buildings and bridges. Most of these studies focus on utilizing the superelasticity phenomenon exhibited by SMAs at high temperatures. The effect of ambient temperature variation on the efficacy of superelastic SMA devices that are used in seismic applications is a major concern. This paper presents an analytical investigation on the effect of ambient temperature variation on the performance of superelastic SMA bridge restrainers during earthquakes. A thermomechanical constitutive model is developed to describe the constitutive behavior of the SMA restrainers at various temperatures. The SMA model is implemented in a 2-DOF bridge model and tested using 20 historical ground motion records. The ambient temperature is varied from a temperature below A_f to a relatively high temperature. The results of the study showed that SMAs are more effective when used in its austenitic phase and thus when the temperature decreases below A_f SMA devices lose a major part of their efficiency. On the other hand, the study also showed that at high temperatures the ductility demand of the bridge frames increases.
机译:形状记忆合金(SMA)是一类金属合金,具有独特的特征,例如形状记忆效应和超弹性效应。 SMA存在两个主要阶段:高温阶段(称为奥氏体(超弹性))和低温阶段(称为马氏体)。尽管使用SMA的土木工程应用很少,但已有大量研究集中在抗震设计以及建筑物和桥梁翻新中利用SMA。这些研究大多集中在利用SMA在高温下表现出的超弹性现象。环境温度变化对地震应用中使用的超弹性SMA器件功效的影响是一个主要问题。本文对地震过程中环境温度变化对超弹性SMA桥梁约束器性能的影响进行了分析研究。建立了一个热机械本构模型来描述SMA抑制剂在不同温度下的本构行为。 SMA模型在2自由度桥模型中实现,并使用20条历史地面运动记录进行了测试。环境温度从低于A_f的温度变化到相对较高的温度。研究结果表明,SMA用于奥氏体相时更有效,因此,当温度降至A_f以下时,SMA器件将失去效率的主要部分。另一方面,研究还表明,在高温下,桥架的延展性需求增加。

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