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首页> 外文期刊>Journal of Vibration and Acoustics >Active Stiffeners for Vibration Control of a Circular Plate Structure: Analytical and Experimental Investigations
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Active Stiffeners for Vibration Control of a Circular Plate Structure: Analytical and Experimental Investigations

机译:用于控制圆板结构振动的主动加强筋:分析和实验研究

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Space-based adaptive optic systems have gained considerable attention within the past couple of decades. Achieving the increasingly stringent performance requirements for these systems is greatly hindered by strict weight restrictions, size limitations, and subjected hostile environments. There has been considerable attention in developing lightweight adaptive optics where piezoelectric sheet actuators are attached on the back of optical mirrors to achieve a high precision surface shape with minimum additional weight. Vibration control of such large flexible space structures is continually challenging to engineers due to the large number of actuators and sensors and the large number of vibration modes within the operational bandwidth. For these structures, any disturbed modes are likely to remain vibrating for an extended period of time due to the small amount of damping available. As a result, controller spillover should be minimized as much as possible to avoid exciting the residual modes. In recent investigations of circular plate shape control by [Philen and Wang, Int. Soc. Opt. Eng. 4327, pp. 709-719]. It was demonstrated that directional decoupling of the two-dimensional actuator (meaning that the actuation in one of the two directions is eliminated) improves the system performance when correcting for the lower order Zernike static deformations. This directional decoupling effect can be achieved through an active stiffener (AS) design. In this research, anafytical and experimental efforts are carried out to examine the effect of the active stiffener actuators in reducing the controller spillover through the stiffeners' decoupling characteristics. It is shown that significant reductions in controller spillover can be achieved in systems using the active stiffener actuators when compared to systems having direct attached (DA) actuators, thus resulting in improved vibration control performance. The experimental results verify the analytical predictions and clearly demonstrate the merit of the active stiffener concept.
机译:在过去的几十年中,天基自适应光学系统获得了相当大的关注。严格的重量限制,尺寸限制和恶劣的环境极大地阻碍了对这些系统越来越严格的性能要求。在开发轻巧的自适应光学器件方面已经引起了相当大的关注,在这种光学器件中,压电薄板致动器安装在光学镜的背面,从而以最小的附加重量实现了高精度的表面形状。由于大量的致动器和传感器以及工作带宽内的大量振动模式,对这样的大型柔性空间结构的振动控制对工程师来说一直是挑战。对于这些结构,由于可用的阻尼量很小,因此任何受干扰的模式都可能长时间保持振动。因此,应尽可能减少控制器溢出,以避免激发残留模式。在最近对圆形板形状控制的研究中,[Philen and Wang,Int。 Soc。选择。 。 4327,第709-719页]。已经证明,在校正较低阶的Zernike静态变形时,二维执行器的方向解耦(意味着消除了两个方向之一的执行)会提高系统性能。可以通过主动加劲肋(AS)设计来实现这种定向去耦效果。在这项研究中,进行了厌烦和实验努力,以检查主动加劲肋执行器在通过加劲肋的去耦特性减少控制器溢出方面的作用。结果表明,与具有直接连接(DA)执行器的系统相比,使用主动式加劲肋执行器的系统可以显着减少控制器溢出,从而提高了振动控制性能。实验结果验证了分析预测,并清楚地证明了主动加劲肋概念的优点。

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