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A novel steel lever viscoelastic wall with amplified damper force-friction for wind and seismic resistance

机译:新型钢杠杆粘弹性壁,具有阻尼阻尼力-摩擦力,可增强风和地震的抵抗力

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This paper presents a new steel wind- and seismic-resisting wall, called a lever viscoelastic wall (LVEW) that includes a velocity-dependent VE damper and a displacement-dependent friction damper in a device, characterized by two different motion phases. In Phase one motion (i.e., small drifts), the VE damper which is activated by a lever delivers amplified lateral force and energy dissipation to the frame structure. In Phase two motion (i.e., medium-to-large drifts), the VE damper is constrained by a stopper and the friction damper, instead, is activated to provide frictional energy dissipation to the frame. The damping is provided by incorporating VE material and sliding friction in a wall configuration, reducing both the wind and earthquake responses of structures in a single unit. The objectives of the work were to (1) develop the force transfer mechanism and kinematics of the LVEW, (2) verify the cyclic response of LVEWs at low and large drifts, and (3) evaluate the limitation of LVEWs for the applications. Three full-scale LVEW specimens were designed and tested to validate the hysteretic response in two motion phases. The hysteretic response of LVEWs obtained from the test was compared to that from the analytical formulation.
机译:本文介绍了一种新型的钢制抗风和抗震墙,称为杠杆粘弹性墙(LVEW),该墙在设备中包括速度相关的VE阻尼器和位移相关的摩擦阻尼器,其特征在于两个不同的运动阶段。在第一阶段的运动(即小漂移)中,由杠杆启动的VE阻尼器将放大的侧向力和能量耗散传递给框架结构。在第二阶段运动(即中到大漂移)中,VE减震器由挡块约束,而摩擦减震器被激活以为框架提供摩擦能量消散。通过在墙面配置中加入VE材料和滑动摩擦来提供阻尼,从而减少了单个单元中结构的风和地震响应。该工作的目的是(1)开发LVEW的力传递机制和运动学;(2)验证LVEW在低漂移和大漂移时的循环响应;以及(3)评估LVEW在应用中的局限性。设计并测试了三个完整的LVEW标本,以验证两个运动阶段的磁滞响应。将测试得到的LVEW的滞后响应与分析配方的进行了比较。

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