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Experimental study of semi-active magnetorheological elastomer base isolation system using optimal neuro fuzzy logic control

机译:最优神经模糊逻辑控制的半主动磁流变弹性体隔震系统的实验研究

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In this paper, a "smart" base isolation strategy is proposed in this study utilising a semi active magnetorheological elastomer (MRE) isolator whose stiffness can be controlled in real-time and reversible fashion. By modulating the applied current, the horizontal stiffness of the MRE isolator can be controlled and thus the control action can be generated for the isolated structure. To overcome the inherent nonlinearity and hysteresis of the MRE isolator, radial basis function neural network based fuzzy logic control (RBF-NFLC) was developed due to its inherent robustness and capability in coping with uncertainties. The NFLC was optimised by a non-dominated sorting genetic algorithm type II (NSGA-II) for better suited fuzzy control rules as well as most appropriate parameters for the membership functions. To evaluate the effectiveness of the proposed smart base isolation system, four scenarios are tested under various historical earthquake excitations, i.e. bare building with no isolation, passive isolated structure, MRE isolated structure with Bang Bang control, MRE isolated structure with proposed NFLC. A three-storey shear building model was adopted as the testing bed. Through the testing results, limited performance of passive isolation system was revealed. In contrast, the adaptability of the proposed isolation strategy was demonstrated and it is proven that the smart MRE base isolation system is able to provide satisfactory protection for both structural and non-structural elements of the system over a wide range of hazard dynamic loadings. (C) 2018 Elsevier Ltd. All rights reserved.
机译:在本文中,本研究提出了一种“智能”基础隔离策略,该策略使用半主动磁流变弹性体(MRE)隔离器,其隔离度可以实时且可逆地进行控制。通过调制所施加的电流,可以控制MRE隔离器的水平刚度,从而可以为隔离的结构产生控制作用。为了克服MRE隔离器固有的非线性和磁滞现象,由于其固有的鲁棒性和应对不确定性的能力,开发了基于径向基函数神经网络的模糊逻辑控制(RBF-NFLC)。通过非主导的排序遗传算法II型(NSGA-II)对NFLC进行了优化,以获得更适合的模糊控制规则以及隶属函数的最合适参数。为了评估所提出的智能基础隔离系统的有效性,在各种历史地震激发下测试了四种情况,即无隔离的裸露建筑,被动隔离结构,具有Bang Bang控制的MRE隔离结构,具有拟议NFLC的MRE隔离结构。采用三层剪力建筑模型作为试验台。通过测试结果,发现了被动隔离系统的性能有限。相反,证明了所提出的隔离策略的适应性,并且证明了智能MRE基础隔离系统能够在各种危险动态载荷下为系统的结构和非结构元素提供令人满意的保护。 (C)2018 Elsevier Ltd.保留所有权利。

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