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Modeling and Adaptive Compensation of Unknown Multiple Frequency Vibrations for the Stabilization and Control of an Active Isolation System

机译:主动隔振系统稳定和控制的未知多频率振动的建模和自适应补偿

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摘要

To realize the isolation from the deleterious vibration source, it is essential to model the vibration’s physical characteristic and then compensate for it in the control scheme. However, most current research studies of active isolator treat the vibration as bounded lumped blocks or linear fashions in the system analysis. Therefore, it unavoidably results in unsatisfying isolation in practical applications. In this paper, the modeling technique on multiple frequency vibrations is first developed to pave the way for the controller formulation. Subsequently, a novel adaptive compensation network is constructed, which aims to compensate for the vibration’s physical property. In what follows, an adaptive neural controller is proposed for stabilizing the active isolation system. Guaranteed by the Lyapunov method, all signals in the closed-loop system are kept stable during the vibration suppression. Finally, the comparative results are presented to validate the proposed scheme’s effectiveness.
机译:为了实现与有害振动源的隔离,必须对振动的物理特征进行建模,然后在控制方案中对其进行补偿。但是,当前大多数有源隔离器的研究都将振动视为系统分析中的有界集总块或线性形式。因此,在实际应用中不可避免地导致不令人满意的隔离。在本文中,首先开发了多频率振动的建模技术,为控制器的设计铺平了道路。随后,构建了一种新型的自适应补偿网络,旨在补偿振动的物理特性。在下文中,提出了用于稳定有源隔离系统的自适应神经控制器。通过Lyapunov方法的保证,在抑制振动过程中,闭环系统中的所有信号均保持稳定。最后,提供比较结果以验证所提议方案的有效性。

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