A Circular Eccentric Vibration Absorber with Circumferentially Graded Acoustic Black Hole Features

IF 1.9 4区 工程技术 Q2 ACOUSTICS Journal of Vibration and Acoustics-Transactions of the Asme Pub Date : 2022-01-10 DOI:10.1115/1.4053475
H. Ji, Xiaoning Zhao, Ning Wang, Wei Huang, J. Qiu, Li Cheng
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引用次数: 8

Abstract

A previously proposed planar axisymmetric dynamic vibration absorber (DVA), with embedded acoustic black hole (ABH) features, has been shown to suffer from the very selective coupling with the host structure, thus compromising its vibration reduction performance. To tackle the problem, an eccentric ABH-based circular DVA whose thickness profile is tailored according to a circumferential gradient variation is proposed in this paper. This new configuration preserves the ABH profile in the radial direction alongside a continuous variation along the circumferential direction and breaks the axisymmetry of the original DVA design at the same time. While the former permits the ABH features to fully play out in a continuous manner, the later entails a more effective coupling with the host structure. These salient properties have been demonstrated and confirmed both numerically and experimentally by examining a benchmark plate structure. For analyses, a coupling model embracing the host structure and the add-on DVAs is established which allows the calculation of the coupling coefficient, a vital quantity to guide the DVA design. Studies demonstrate the advantages of the proposed DVA over existing designs for the same given mass. The enriched structural coupling and the enhanced modal damping, arising from the eccentric and circumferentially graded ABH design, are shown to be the origin of such improvement. All in all, the physical process underpinning the dynamic absorber principle and waveguide absorber from the host structures is simultaneously consolidated, thus leading to superior broadband structural vibration suppression.
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具有周向梯度声黑洞特征的圆形偏心吸振器
先前提出的一种具有嵌入式声黑洞(ABH)特征的平面轴对称动态吸振器(DVA)已被证明与宿主结构存在非常选择性的耦合,从而影响了其减振性能。为了解决这一问题,本文提出了一种基于偏心abh的圆形DVA,其厚度轮廓根据周向梯度变化进行定制。这种新结构在径向上保留了ABH剖面,同时沿周向连续变化,同时打破了原始DVA设计的轴对称。前者允许ABH特征以连续的方式充分发挥作用,后者需要与宿主结构更有效的耦合。通过对基准板结构的数值和实验研究,证明并证实了这些显著特性。为了进行分析,建立了包含主结构和附加DVA的耦合模型,计算了耦合系数,这是指导DVA设计的重要量。研究表明,对于相同的给定质量,拟议的DVA优于现有的设计。偏心和周向梯度ABH设计所产生的结构耦合增强和模态阻尼增强是这种改进的根源。总而言之,支撑主结构的动态吸收原理和波导吸收的物理过程同时得到巩固,从而导致优越的宽带结构振动抑制。
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来源期刊
CiteScore
4.20
自引率
11.80%
发文量
79
审稿时长
7 months
期刊介绍: The Journal of Vibration and Acoustics is sponsored jointly by the Design Engineering and the Noise Control and Acoustics Divisions of ASME. The Journal is the premier international venue for publication of original research concerning mechanical vibration and sound. Our mission is to serve researchers and practitioners who seek cutting-edge theories and computational and experimental methods that advance these fields. Our published studies reveal how mechanical vibration and sound impact the design and performance of engineered devices and structures and how to control their negative influences. Vibration of continuous and discrete dynamical systems; Linear and nonlinear vibrations; Random vibrations; Wave propagation; Modal analysis; Mechanical signature analysis; Structural dynamics and control; Vibration energy harvesting; Vibration suppression; Vibration isolation; Passive and active damping; Machinery dynamics; Rotor dynamics; Acoustic emission; Noise control; Machinery noise; Structural acoustics; Fluid-structure interaction; Aeroelasticity; Flow-induced vibration and noise.
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