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首页> 外文期刊>International Journal of Precision Engineering and Manufacturing >Hysteresis Modeling of Magneto-Rheological Damper using Self-Tuning Lyapunov-based Fuzzy Approach
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Hysteresis Modeling of Magneto-Rheological Damper using Self-Tuning Lyapunov-based Fuzzy Approach

机译:基于Lyapunov自整定模糊方法的磁流变阻尼器磁滞建模

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摘要

Magneto-rheological (MR) fluid damper is a semi-active control device that has recently received more attention because they offer the adaptability of active control devices without requiring the associated large power sources. But inherent nonlinear nature of the MR fluid damper is one of the challenging aspects for utilizing this device to achieve the high performance. So development of an accurate MR fluid damper model is necessary to take the advantages from its unique characteristics. The focus of this paper is to develop an alternative method for modeling a MR fluid damper by using a so-called self-tuning Lyapunov-based fuzzy model (STLFM). Here, the model is constructed in the form of a center average fuzzy interference system, of which the fuzzy rules are designed based on the Lyapunov stability condition. In addition, in order to optimize the STLFM, the back propagation learning rules are used to adjust the fuzzy weighting net. Firstly, experimental data of a damping system using this damper is used to optimize the model. Next, the optimized model is used to estimate online the damping performance in the real-time conditions. The modeling results prove convincingly that the developed model could represent satisfactorily the behavior of the MR fluid damper.
机译:磁流变(MR)流体阻尼器是一种半主动控制设备,最近受到越来越多的关注,因为它们无需额外的大功率电源即可提供主动控制设备的适应性。但是,MR流体阻尼器固有的非线性特性是利用该设备实现高性能的挑战之一。因此,有必要开发一种精确的MR流体阻尼器模型,以利用其独特特性带来的优势。本文的重点是通过使用所谓的基于Lyapunov的自调整模糊模型(STLFM),开发一种用于MR流体阻尼器建模的替代方法。在此,模型以中心平均模糊干扰系统的形式构建,其中基于Lyapunov稳定性条件设计了模糊规则。另外,为了优化STLFM,使用反向传播学习规则来调整模糊加权网络。首先,使用该阻尼器的阻尼系统的实验数据被用于优化模型。接下来,使用优化模型在线估计实时条件下的阻尼性能。建模结果令人信服地证明,所开发的模型可以令人满意地表示MR流体阻尼器的性能。

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