SMA-Based Multi-Ring Self-Centering Damping Devices for Seismic Retrofit of Structures

M. Salehi, R. DesRoches, D. Hodgson, T. Kim Parnell
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Abstract

One of the effective methods to retrofit seismically vulnerable building structures is the use of supplemental energy dissipation devices. Such devices may decrease the seismic displacement and acceleration demands of the retrofitted structures, thereby mitigating damage to both structural and non-structural components. Due to the unique mechanical properties of superelastic (SE) Nitinol, such as high strength, significant elasticity, substantial energy absorption, and excellent fatigue resistance, various forms/shapes of SE Nitinol have been used to develop self-centering damping devices. SE Nitinol rings are particularly effective because they offer large ductility, can resist compression without buckling, allow multi-directional loading, and are cost-effective. Recently, an innovative class of self-centering damping devices incorporating SE Nitinol rings, termed SMA-based multi-ring (SBMR) devices, has been developed and numerically evaluated by the authors . Each SBMR damping device consist of at least one SE Nitinol ring and at least one supplemental energy dissipating (ED) ring. The rings are concentrically and tightly positioned inside one another such that they deform together. The ED rings are made of metals with high hysteretic damping capacity, such as mild steel or shape memory (SM) Nitinol. Under diametric deformation, both the SE and ED rings absorb energy, whereas the SE ring(s) are primarily intended to provide self-centering. Due to their shape, the SBMR devices may be installed in building frames through a variety of approaches, among which cross bracing is particularly efficient. This presentation evaluates the performance of SBMR devices through an extensive experimental study. This presentation discusses an extensive experimental study on four SBMR damping devices with different ring configurations. The initial test results for two single SM and SE Nitinol rings along with a double-ring device demonstrated the stability of the hysteretic responses of the proposed devices and their effectiveness in providing a balanced combination of damping and self-centering capabilities.
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基于sma的多环自定心阻尼装置在结构抗震加固中的应用
对地震易损性建筑结构进行加固的有效方法之一是采用附加耗能装置。这种装置可以降低改造结构的地震位移和加速度要求,从而减轻对结构和非结构部件的损害。由于超弹性镍钛诺具有强度高、弹性大、吸能大、抗疲劳性能好等独特的力学性能,各种形式/形状的超弹性镍钛诺已被用于研制自定心阻尼装置。SE镍钛诺环特别有效,因为它们具有较大的延展性,可以抵抗压缩而不屈曲,允许多向加载,并且具有成本效益。最近,一种采用SE镍钛诺环的自定心阻尼装置,被称为基于sma的多环(SBMR)装置,已经被开发出来并由作者进行了数值评估。每个SBMR阻尼装置包括至少一个SE镍钛诺环和至少一个补充能量耗散(ED)环。这些环是同心的,彼此紧密地放在一起,这样它们就会一起变形。ED环由具有高迟滞阻尼能力的金属制成,例如低碳钢或形状记忆(SM)镍钛诺。在直径变形下,SE环和ED环都吸收能量,而SE环主要用于提供自定心。由于它们的形状,SBMR装置可以通过各种方法安装在建筑框架中,其中交叉支撑特别有效。本报告通过广泛的实验研究评估了SBMR器件的性能。本文讨论了四种不同环形结构的SBMR阻尼装置的广泛实验研究。对两个单SM和SE镍钛诺环以及一个双环装置进行的初步测试结果表明,所提出的装置具有稳定的滞后响应,并且能够有效地提供平衡的阻尼和自定心能力。
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