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Adaptive isolation system combining low-friction sliding pendulum bearings and SMA-based gap dampers

机译:低摩擦滑动摆轴承和基于SMA的间隙阻尼器的自适应隔离系统

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The flag-shaped hysteretic behavior of Shape Memory Alloys (SMAs) can be conveniently used for developing efficient isolation systems, providing energy dissipation without implying residual displacements. This work presents a base isolation layout that combines low-friction curved surface sliders (CSSs) with SMA gap dampers (SMAGDs). The proposed SMAGDs are formed by a group of SMA wires placed in parallel with the CSS isolation system and connected to it through a sliding pin and a slotted ring in order to accomplish the "gap damper" feature. Based on this installation configuration, SMAGDs introduce additional stiffening and energy dissipation to the isolation system only when the displacement of the CSS exceeds a certain threshold or gap displacement d gap, while not being engaged for lower displacements. Consequently, the system exhibits a phased behavior, meaning that its reaction force depends on the amplitude of the displacement. This is particularly convenient for limiting seismic displacements while avoiding at the same time undesirable effects such as high structural accelerations and poor re-centering capability exhibited by alternative systems at low-intensity excitations, e.g. systems based on high-friction CSSs or combinations of CSSs with traditional supplemental energy dissipation devices. The paper describes a preliminary design procedure and the evaluation of the seismic performance of the proposed CSS + SMGAGD system. A leading design parameter of the SMAGDs is the overall cross-sectional area of the SMA wires, which is designed here through a direct displacement based procedure, by introducing some reasonable assumptions for the definition of the linear equivalent mechanical properties of CSS, SMAGD and combined CSS + SMAGD system. This performance-oriented design procedure is aimed at achieving a target displacement demand of the combined CSS + SMAGD system under the maximum credible design earthquake. A parametric study comprising a variety of CSS and SMAGD properties reveals that the proposed isolation layout is suitable to limit the maximum displacement under ultimate limit state earthquakes, providing at the same time satisfactory energy dissipation along with high re-centering capability, and outperforms both low-friction CSSs and high-friction CSSs.
机译:形状记忆合金(SMA)的旗形滞后行为可以方便地用于显影有效的隔离系统,提供能量耗散而不暗示残余位移。这项工作介绍了基本隔离布局,将低摩擦弯曲表面滑块(CSSS)与SMA间隙阻尼器(SMAGD)结合起来。所提出的SMAGDS由一组与CSS隔离系统平行的一组SMA线形成,并通过滑动销和开槽环连接,以实现“间隙阻尼器”特征。基于该安装配置,仅当CSS的位移超过某个阈值或间隙位移D间隙时,SMAGDS才会向隔离系统引入额外的加强和能量耗散,同时不接合较低的位移。因此,系统表现出分阶段行为,这意味着其反作用力取决于位移的幅度。这对于限制地震位移是特别方便的,同时以相同的时间避免诸如高结构加速度和低强度兴奋的替代系统所呈现的差的重新定心能力,例如,在低强度激励下避免的相同的影响。基于高摩擦CSSS的系统或CSSS的组合,具有传统的补充能量耗散装置。本文介绍了初步设计程序和评估所提出的CSS + SMGAGD系统的地震性能。 SMAGDS的领先设计参数是SMA线的总横截面积,其在这里通过直接位移的过程设计,通过引入CSS,SMAGD和组合的线性等同机械性能的定义的一些合理假设CSS + SMAGD系统。这种以性能为导向的设计程序旨在根据最大可靠的设计地震实现CSS + SMAGD系统的目标位移需求。包括各种CSS和SMAGD属性的参数研究表明,所提出的隔离布局适合限制最终极限状态地震下的最大位移,同时提供令人满意的能量耗散以及高重定位能力,并且均低于高-friction CSSS和高摩擦CSSS。

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