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Resonance Suppression for Hydraulic Servo Shaking Table Based on Adaptive Notch Filter

机译:基于自适应陷波滤波器的液压伺服振动台共振抑制

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摘要

In dynamic structure test, the specimen of hydraulic servo shaking table contains not only inertia load but also elastic load. The specimen herein is simplified as a spring-mass-damping system, and the mathematical model of the hydraulic servo shaking table is established by theoretical analysis. The coupling between specimen's elastic load and shaking table itself produces resonance phenomenon in the required bandwidth when the elastic load is not negligible, which deteriorates the system's dynamic performance and even leads to the instability of the control system. Also, the time-varying resonance frequency further aggravates the control performance of the system in the shaking test. In this paper, an adaptive notch filter based on least mean square (LMS) error principle is employed to identify the resonance frequencies online and real-time adjust the parameters of the notch filter. Simulation and experiment results show the effectiveness of frequency identification and resonance mode suppression. Compared with the existing resonance suppression scheme, the proposed method can suppress the appeared resonance mode adaptively.
机译:在动态结构试验中,液压伺服振动台试样不仅包含惯性载荷,还包含弹性载荷。本文中的试件简化为弹簧-阻尼系统,并通过理论分析建立了液压伺服振动台的数学模型。当弹性载荷不可忽略时,试样的弹性载荷与振动台自身之间的耦合会在所需带宽内产生共振现象,这会降低系统的动态性能,甚至导致控制系统的不稳定。而且,随时间变化的共振频率进一步加剧了振动测试中系统的控制性能。本文采用基于最小均方误差(LMS)原理的自适应陷波滤波器在线识别共振频率,并实时调整陷波滤波器的参数。仿真和实验结果表明了频率识别和共振模式抑制的有效性。与现有的共振抑制方案相比,该方法可以自适应地抑制出现的共振模式。

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