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Probabilistic seismic collapse and residual drift assessment of smart buildings equipped with shape memory alloy connections

机译:概率的地震崩溃和智能建筑的剩余漂移评估,配备形状记忆合金连接

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This paper probabilistically evaluates the seismic performance of the smart buildings equipped with newly developed shape memory alloy (SMA) connections. The smart structures of this study are those not only can control maximum interstory drifts approximately similar to conventional buildings but also can substantially reduce residual interstory drifts somehow that most of the nonlinear deformations are gathered in SMA fuse bolts. These smart buildings have low cost repair after moderate to severe earthquake events. Although "yielding" of steel structural elements is a design solution employed for dissipation of energy in structures and plastic deformation capacity of members is controlled by design codes for life safety performance level, the damage taken by deformed elements, corresponding residual drifts, and its economic loss after a serious seismic event is undeniable. In order to investigate the combined effects of SMA usage in smart structures including reduction of energy dissipation as a negative impact and removal of residual drift as a positive impact in comparison with conventional structures, superelastic SMA bolts are employed into the connections of two prevalent lateral load-resisting systems, i.e., moment-resisting frame (MRF) and eccentric braced frame (EBF). At first, proper configurations for the beam-column connections of MRFs and the link-beam connections of EBFs are selected from previous research works and validation of the finite element models of them are carried out. Then numerical models of the selected lateral load-resisting systems with and without SMA connections are developed using 4- and 8-story MRFs and EBFs of code-compliant NIST buildings (NIST Technical Note 1863-3). Afterwards, all the buildings are subjected to quasi-static cyclic loading and incremental dynamic analysis (IDA), so the power of employing SMA connections on seismic performance of the buildings would be investigated through seismic concepts. Based on the results, utilizing SMA connections in smart buildings not only could keep interstory drift control performance almost similar to conventional buildings but also could substantially reduce economic loss with significant control of unwanted residual deformations in structural fuses due to their unique ability of induced "recentering" behavior in structural performance. The results probabilistically determine the seismic performance acceptability of studied smart buildings based on the impact of key structural response parameters (i.e., maximum interstory drift, residual interstory drift, and energy dissipation) on the seismic performance of the structure.
机译:本文概率地评估了配备新开发的形状记忆合金(SMA)连接的智能建筑物的地震性能。本研究的智能结构是不仅可以控制与传统建筑物大致相似的最大壁漂移的结构,而且可以在不知何时显着减少残余壁垒漂移,即大多数非线性变形都聚集在SMA保险丝螺栓中。在中度至严重地震事件后,这些智能建筑的成本低廉。虽然钢结构元件的“屈服”是用于耗散结构中的能量的设计解决方案,并且成员的塑性变形能力由设计守则的设计守则控制,由变形元素造成的损伤,相应的残留漂移,以及其经济严重地震事件不可否认的情况下丢失。为了研究SMA使用在智能结构中的组合效果,包括减少能量耗散,作为与传统结构相比的阳性冲击的负面影响和除去残留漂移,将超弹性SMA螺栓用于两个普遍的侧向载荷的连接-Resisting系统,即抵抗框架(MRF)和偏心支撑框架(EBF)。首先,从先前的研究工作中选择MRFS的光束列连接和EBF的链路波束连接的适当配置,并执行它们的有限元模型的验证。然后使用4-和8层MRF和EBF的代码NIST建筑物(NIST技术说明1863-3)开发了具有和不使用SMA连接的所选横向载荷系统的数值模型。之后,所有建筑物都经过准静态循环加载和增量动态分析(IDA),因此通过地震概念研究了采用建筑物的地震性能的SMA连接的力量。基于结果,利用智能建筑中的SMA连接不仅可以保持惰性漂移控制性能与传统建筑物几乎相似,而且可以大大降低经济损失,由于其独特的诱导能力“的结构熔体中的不需要的残余变形而显着控制了经济损失。 “结构性能的行为。基于关键结构响应参数(即最大壁炉漂移,剩余楼梯漂移,能源耗散)对结构的地震性能的影响,结果概率地确定了研究智能建筑的地震性能可接受性。

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