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Displacement/velocity‐based control of a liquid spring—MR damper for vertical isolation

机译:基于位移/速度的液体弹簧-MR阻尼器控制垂直隔离

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Seismic isolation is an effective technique used to mitigate effects of shaking and helps to achieve higher seismic performance. Recent researches have suggested that vertical excitation has significant effects on structures behavior during earthquake. In this study, three-dimensional (3D) isolation is proposed that combines an elastomeric bearing to resist horizontal ground shaking in series with a bilinear liquid spring (BLS)-controllable magnetorheological fluid damper (CMRD) to resist vertical shaking. A numerical model of a simplified rigid 2D block was developed to predict BLS-CMRD response under earthquake loading. The response of the BLS-CMRDs was simulated through a combination of nonlinear stiffness and viscous and hysteretic (semi-active) damping. A Disp/Vel-based control strategy was proposed that adjusts the input current according to the instantaneous vector combination of feedback displacement and velocity of the damper. Two variations of the control strategy were explored. First, with linear current variation, the current is activated when a threshold lower bound vector magnitude is reached, and maximum current is applied when threshold upper bound magnitude is exceeded. Second, the simplified ON-OFF strategy uses single threshold vector magnitude that triggers the maximum current to turn on when the instantaneous vector magnitude exceeds the threshold, and turn off otherwise. Results show that for ground motions that exceed the design level, Disp/Vel-based Control is effective to moderate the level of energy dissipation, keep the device vertical displacement within the design stroke limit, and attenuate vertical acceleration below PGA. In addition, Disp/Vel-based control reduces all responses relative to the well-known clipped optimal strategy used for structural control.
机译:地震隔离是一种有效的技术,用于减轻摇动效果并有助于实现更高的地震性能。最近的研究表明,垂直励磁对地震期间的结构行为具有显着影响。在该研究中,提出了三维(3D)隔离,其结合弹性体轴承以抵抗与双线性液体弹簧(BLS)可控制的磁流变学流体阻尼器(CMRD)串联串联摇动的水平接地以抵抗垂直摇动。开发了一种简化的刚性2D块的数值模型,以预测地震载荷下的BLS-CMRD响应。通过非线性刚度和粘性和滞后(半活跃)阻尼的组合来模拟BLS-CMRDS的响应。提出了一种根据反馈位移和阻尼器的速度的瞬时向量组合调节输入电流的方式。探索了控制策略的两种变化。首先,利用线性电流变化,当达到阈值下方向量幅度时激活电流,并且在超过阈值上限幅度时施加最大电流。其次,简化的开关策略使用单个阈值向量幅度,当瞬时向量幅度超过阈值时,触发最大电流打开,然后否则关闭。结果表明,对于超过设计水平的地面运动,DISP / Vel-基控制对于缓和能耗水平有效,使器件垂直位移在设计行程限制内,并衰减PGA以下垂直加速度。此外,基于DISP / VEL-的控制可减少相对于用于结构控制的众所周知的剪裁最佳策略的所有响应。

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