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Hybrid wave/mode active control of bending vibrations in beams based on the advanced Timoshenko theory

机译:基于先进的Timoshenko理论的梁弯曲振动的混合波/模式主动控制

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A hybrid approach to active control of bending vibrations in beams based on the advanced Timoshenko theory is described in this paper. It combines elements of both wave and mode approaches to active control and is an attempt to improve on the performance of these approaches individually. As is well known that the classical Euler-Bernoulli beam model considers only the lateral inertia and the elastic forces caused by bending deflections, and the effects of rotary inertia and shear distortion are neglected. As a result, the theory is not valid for higher frequencies, typically when the transverse dimensions are not negligible with respect to the wavelength. In the proposed hybrid approach based on the advanced Timoshenko model, wave control is first applied at one or more points in the structure. It is designed on the basis of the local behavior of the structure and is intended to either absorb vibrational energy or add damping, especially at higher frequencies. Then modal control is applied, being designed on the basis of the modified global equations of motion of the structure-plus-wave-controller. Because the higher order modes are relatively well damped, hybrid control improves the model accuracy and the robustness of the system and gives better broadband vibration attenuation performance. Numerical results are presented.
机译:本文介绍了一种基于先进的Timoshenko理论的主动控制梁弯曲振动的混合方法。它结合了波动和模式方法的要素来进行主动控制,并且是尝试分别改善这些方法的性能。众所周知,经典的Euler-Bernoulli梁模型仅考虑横向惯性和由弯曲挠度引起的弹力,而忽略了旋转惯性和剪切变形的影响。结果,该理论不适用于较高的频率,通常是在横向尺寸相对于波长不可忽略时。在基于高级Timoshenko模型的拟议混合方法中,首先在结构中的一个或多个点处应用波浪控制。它是根据结构的局部特性设计的,旨在吸收振动能量或增加阻尼,特别是在较高频率下。然后应用模态控制,并根据结构加波控制器的整体运动方程进行设计。由于高阶模的阻尼相对较好,因此混合控制提高了模型的准确性和系统的鲁棒性,并提供了更好的宽带振动衰减性能。给出了数值结果。

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