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Combining active structural damping and active suspension control in flexible bodied railway vehicles

机译:柔性车身铁路车辆的主动结构阻尼和主动悬架控制相结合

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摘要

There is a desire to design lightweight railway vehicle bodies for future high speed trains. Previously, suppression of structural vibration of the flexible lightweight vehicle body was attempted via use of active suspensions (conventional actuators) or by structural damping via piezoelectric actuators, with the aim being to improve the ride quality. In a railway vehicle the typical active suspension setup comprises front and rear suspension conventional actuators, while adding more macro-actuator elements to minimise structural vibrations can substantially impact vehicle weight and location considerations. In this paper, we show that piezoelectric actuator control can provide complementary action to active suspensions. Decentralized control is adopted for combined active structural damping and active suspension design via Linear Quadratic Gaussian (LQG) method and modal control with skyhook damping respectively. The side-view model of a flexible-bodied railway vehicle integrated with piezoelectric actuators and appropriate sensor outputs is derived and the placement of the piezoelectric actuators and sensors is addressed via structural norms. It is shown that vibrations of both the flexible modes and rigid modes are suppressed effectively. This suggests that with the combined approach, control by both piezoelectric actuators and suspension actuators could be used in a more efficient way to address vibrations in light railway vehicle bodies.
机译:期望为未来的高速火车设计轻型铁路车辆车身。以前,试图通过使用主动悬架(常规执行器)或通过压电执行器进行结构阻尼来抑制柔性轻型车身的结构振动,目的是提高乘坐质量。在铁路车辆中,典型的主动悬架装置包括前悬架和后悬架常规致动器,同时增加更多的宏观致动器元件以最小化结构振动会大大影响车辆的重量和位置考虑因素。在本文中,我们表明压电致动器控制可以为主动悬架提供补充作用。分别采用线性二次高斯(LQG)方法和带天钩阻尼的模态控制分别采用分散控制进行主动结构阻尼和主动悬架组合设计。推导了集成了压电致动器和适当传感器输出的柔性铁路车辆的侧视图模型,并通过结构规范解决了压电致动器和传感器的布置问题。结果表明,柔性模式和刚性模式的振动均得到有效抑制。这表明通过组合方法,可以以更有效的方式使用压电致动器和悬架致动器的控制来解决轻轨车辆车身中的振动。

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