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首页> 外文期刊>Journal of Sound and Vibration >A resonant beam damper tailored with Acoustic Black Hole features for broadband vibration reduction
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A resonant beam damper tailored with Acoustic Black Hole features for broadband vibration reduction

机译:具有用于宽带减振的声学黑洞特征的谐振梁阻尼器,用于宽带减振

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摘要

By capitalizing on the Acoustic Black Hole (ABH) phenomenon, a so-called ABH-featured Resonant Beam Damper (ABH-RBD) is proposed for the broadband vibration suppressions of a primary structure. As an add-on device to be attached to the primary structure, the proposed ABH-RBD embraces the principles of both dynamic vibration absorbers and waveguide absorbers. Its design and implementation do not need a tedious parameter tuning, thus showing robustness to accommodate structural variations in the primary structure. Using a beam as a benchmark, both numerical simulations and experiments show that multiple resonances of the primary structure can be significantly reduced by the proposed ABH-RBD, and the same ABH-RBD is effective on different primary systems. Typical control effects and the underlying mechanisms are investigated. Analyses reveal the existence of three types of vibration reduction mechanisms, manifested differently and dominated by different physical process, i.e. structural interaction, damping enhancement and their combination. Comparisons with a conventional uniform beam absorber show that the superiority of the proposed ABH-RBD is attributed to its ABH-specific features exemplified by the enriched system dynamics and the enhanced broadband damping. (C) 2018 Elsevier Ltd. All rights reserved.
机译:通过利用声学黑洞(ABH)现象,提出了一种所谓的ABH精选的谐振束阻尼器(ABH-RBD),用于初级结构的宽带振动抑制。作为附加装置附加到主要结构,所提出的ABH-RBD包括动态振动吸收器和波导吸收器的原理。其设计和实现不需要繁琐的参数调谐,从而显示鲁棒性以适应主要结构的结构变化。使用光束作为基准,两者的数值模拟和实验都表明,通过所提出的ABH-RBD可以显着降低初级结构的多个共振,并且相同的ABH-RBD在不同的主要系统上有效。研究了典型的控制效应和潜在机制。分析揭示了三种类型的减振机制,表现为不同的物理过程,即结构相互作用,阻尼增强及其组合。具有传统均匀梁吸收器的比较表明,所提出的ABH-RBD的优越性归因于其ABH特定特征,其富集的系统动力学和增强型宽带阻尼。 (c)2018年elestvier有限公司保留所有权利。

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