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Hysteresis modeling of Magneto-Rheological (MR) fluid damper by self tuning fuzzy control

机译:磁流变(MR)流体阻尼器的迟滞建模与自整定模糊控制

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摘要

Magneto-rheological (MR) fluid damper is a semi-active control device that has recently received more attention by the vibration control community. But inherent nonlinear hysteresis character of magneto-rheological fluid dampers is one of the challenging aspects for utilizing this device to achieve high system performance. So the development of accurate model is necessary to take the advantage their unique characteristics. Research by others [3] has shown that a system of nonlinear differential equations can successfully be used to describe the hysteresis behavior of the MR damper. The focus of this paper is to develop an alternative method for modeling a damper in the form of centre average fuzzy interference system, where back propagation learning rules are used to adjust the weight of network. The inputs for the model are used from the experimental data. The resulting fuzzy interference system is satisfactorily represents the behavior of the MR fluid damper with reduced computational requirements. Use of the neuro-fuzzy model increases the feasibility of real time simulation.
机译:磁流变(MR)流体阻尼器是一种半主动控制设备,近来受到振动控制界的更多关注。但是,磁流变流体阻尼器固有的非线性磁滞特性是利用该器件实现高系统性能的挑战之一。因此,有必要开发精确的模型以利用其独特的特性。其他人[3]的研究表明,非线性微分方程组可以成功地用于描述MR阻尼器的磁滞行为。本文的重点是开发一种以中心平均模糊干扰系统的形式对阻尼器建模的替代方法,该方法使用反向传播学习规则来调整网络的权重。该模型的输入来自实验数据。由此产生的模糊干扰系统令人满意地表示了MR流体阻尼器的性能,并降低了计算需求。神经模糊模型的使用增加了实时仿真的可行性。

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