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Seismic Risk-Based Stochastic Optimal Control of Structures Using Magnetorheological Dampers

机译:基于磁流变阻尼器的基于地震风险的结构随机最优控制

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Magnetorheological (MR) dampers are regarded as among the most promising control devices owing to their perfect dynamic damping behaviors. The operating efficiency of MR dampers, however, upon randomly excited structural systems remains a challenge because the conventional schemes employing linear quadratic Gaussian (LQG) control lack a logical treatment of randomness inherent in external excitations. A scheme of physically based stochastic optimal control designed to bypass the dilemma was proposed in recent years. To this end, in the present paper, a design and optimization procedure for the semi-active control of randomly base-excited structures with MR dampers is developed. Stochastic modeling of seismic ground motions as a result of the source properties and propagation path is carried out. The control efficiency of MR damped structures with respect to seismic risk and variation is investigated. Numerical results reveal that MR damping control can strengthen the seismic safety of structures significantly whether in the case of low or high seismic risk. The MR damping control, meanwhile, has proven robust in accommodating sample variations. In addition, the appropriately designed semi-active controller can achieve almost the same effect as an active controller in a probabilistic sense. Additionally, the MR damper gains a satisfactory performance which behaves as a type-like Bouc-Wen model with strength deterioration, stiffness degradation, and a pinch effect.
机译:磁流变(MR)阻尼器由于其完美的动态阻尼特性而被认为是最有前途的控制设备。然而,由于采用线性二次高斯(LQG)控制的常规方案缺乏对外部激励固有的随机性的逻辑处理,因此在随机激励结构系统上,MR阻尼器的运行效率仍然是一个挑战。近年来,提出了一种绕过困境的基于物理的随机最优控制方案。为此,在本文中,开发了一种用于MR阻尼器的随机基础激励结构半主动控制的设计和优化程序。由于震源特性和传播路径的结果,对地震地震动进行了随机建模。研究了MR阻尼结构相对于地震风险和变化的控制效率。数值结果表明,无论是低地震风险还是高地震风险,MR阻尼控制都能显着增强结构的地震安全性。同时,MR阻尼控制已被证明在适应样品变化方面具有鲁棒性。另外,在概率意义上,适当设计的半主动控制器可以实现与主动控制器几乎相同的效果。另外,MR阻尼器获得令人满意的性能,表现为具有强度下降,刚度下降和挤压效应的类似类型的Bouc-Wen模型。

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