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A control scheme for AMD in the presence of time-delays and SSI effects for tall buildings

机译:在高层建筑的时间延迟和SSI效应存在下AMD的控制方案

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The present study addresses the issue of seismic control of active mass damper (AMD) devices in the presence of time-delay for the tall buildings taking into account soil-structure interaction (SSI) effects. Considering the simultaneous effects of the time-delay and SSI, a control scheme of linear quadratic regulator (LQR) controller with a new form of the weighting matrices is proposed. Then, a design procedure based on a particle swarm optimization (PSO) algorithm is proposed to find the optimal weighting matrices of the controller. The numerical studies are conducted on a benchmark tall building. The validity of the proposed LQR controller is demonstrated for the structure subjected to 44 well-known earthquakes. It is concluded that ignoring the SSI and time-delay effects may give an incorrect estimation of the seismic demands of the building. By increasing the soil softness, the structural responses are often increased. Furthermore, it is found that the proposed controller gives a worthy performance in mitigation of maximum top floor displacement for different soil conditions in the presence of time-delays. However, in the presence of long time-delay, a significant increment may achieve for maximum floor acceleration, especially for the soft and medium soils. However, the maximum drifts of the floors remain within the allowed ranges.
机译:本研究解决了在考虑土壤 - 结构相互作用(SSI)效应的高层建筑物的时滞的存在中存在激活质量阻尼器(AMD)器件的地震控制问题。考虑到时滞和SSI的同时效果,提出了具有新形式的加权矩阵的线性二次调节器(LQR)控制器的控制方案。然后,提出了一种基于粒子群优化(PSO)算法的设计过程来找到控制器的最佳加权矩阵。数值研究在基准高层建筑上进行。所提出的LQR控制器的有效性被证明了44个众所周知地震的结构。结论是,忽略SSI和时滞效应可能会产生对建筑物抗震要求的错误估计。通过增加土壤柔软度,往往增加了结构反应。此外,发现所提出的控制器在存在时滞的情况下,在不同土壤条件下减轻最大顶层位移的有价值的性能。然而,在很长的时间延迟存在下,可以实现最大的楼层加速度,特别是对于柔软和中等土壤来实现显着增量。然而,地板的最大漂移仍然在允许的范围内。

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