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Neuro-fuzzy model of hybrid semi-active base isolation system with FPS bearings and an MR damper

机译:具有FPS轴承和MR阻尼器的混合半主动基础隔振系统的神经模糊模型

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Full-scale experiments are carried out on a single-degree-of-freedom mass that is equipped with a hybrid base isolation system. The isolator consists of a set of four friction pendulum system (FPS) bearings and a magnetorheological (MR) damper. The 13,620 kg mass and its hybrid isolation system are subjected to various intensities of near- and far-fault earthquakes on a large shake table. The proposed fuzzy controller uses feedback from displacement or acceleration transducers attached to the structure to modulate resistance of the semi-active damper to motion. Results from several types of passive and semi-active control strategies are summarized and compared. The study shows that a combination of FPS bearings and an adjustable MR damper can provide robust control of vibration for a large full-scale structure undergoing a wide variety of seismic loads. Low power consumption, real-time feedback control, and fail-safe operation are validated in this study. A combination of the FPS bearings and the MR damper appears to offer significant possibilities for reduction of displacement and acceleration due to seismic load. A neuro-fuzzy model is used to represent behavior of the damper for various displacement, velocity, and voltage combinations that are obtained from a series of laboratory evaluation tests. Modeling of the FPS bearings is carried out with a nonlinear analytical equation and neuro-fuzzy training. Numerical simulation using neuro-fuzzy models of the MR damper and FPS bearings predict the response of the hybrid base isolation system very well. Results show that dynamic behavior of the FPS bearings and MR damper can be successfully estimated using these neuro-fuzzy models.
机译:对配备混合基础隔离系统的单自由度质量进行了大规模实验。隔离器由一组四个摩擦摆系统(FPS)轴承和一个磁流变(MR)阻尼器组成。 13620公斤重的物体及其混合隔离系统在大型振动台上经受了近,远断层地震的各种强度。所提出的模糊控制器使用来自附着在结构上的位移或加速度传感器的反馈来调节半主动阻尼器的运动阻力。总结并比较了几种被动和半主动控制策略的结果。研究表明,FPS轴承和可调节的MR阻尼器的组合可以为承受各种地震载荷的大型全尺寸结构提供可靠的振动控制。这项研究验证了低功耗,实时反馈控制和故障安全操作。 FPS轴承和MR阻尼器的组合似乎为减少地震载荷引起的位移和加速度提供了显着的可能性。神经模糊模型用于表示从一系列实验室评估测试中获得的各种位移,速度和电压组合的阻尼器行为。 FPS轴承的建模是通过非线性解析方程和神经模糊训练进行的。使用MR阻尼器和FPS轴承的神经模糊模型进行的数值模拟很好地预测了混合基础隔震系统的响应。结果表明,使用这些神经模糊模型可以成功地估计FPS轴承和MR阻尼器的动态行为。

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