Nonlinear Energy Transfer of a Spar-Floater System using the Inerter Pendulum Vibration Absorber

IF 1.9 4区 工程技术 Q2 ACOUSTICS Journal of Vibration and Acoustics-Transactions of the Asme Pub Date : 2023-08-16 DOI:10.1115/1.4063199
Aakash Gupta, V. Duong, Wei-Che Tai
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Abstract

The inerter pendulum vibration absorber (IPVA) is integrated between a spar and an annulus floater using a ball-screw mechanism to study its wave energy conversion potential. Hydrodynamic stiffness, added mass and radiation damping effects on the spar-floater system are characterized using the boundary element method. It is found that a 1:2 internal resonance via a period doubling bifurcation in the system is responsible for nonlinear energy transfer between the spar-floater system and the pendulum vibration absorber. This nonlinear energy transfer occurs when the primary harmonic solution of the system becomes unstable due to the 1:2 internal resonance phenomenon. The focus of this paper is to analyze this 1:2 internal resonance phenomenon near the first natural frequency of the system. The IPVA system when integrated with the spar-floater system is shown to outperform a linear coupling between the spar and the floater both in terms of the response amplitude operator (RAO) of the spar and one measure of the energy conversion potential of the system. Finally, experiments are performed on the IPVA system integrated with single-degree-of-freedom system (without any hydrodynamic effects) to observe the 1:2 internal resonance phenomenon and the nonlinear energy transfer between the primary mass and the pendulum vibration absorber. It is shown experimentally that the IPVA system outperforms a linear benchmark in terms of vibration suppression due to the energy transfer phenomenon.
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利用隔振摆减振器进行浮子系统的非线性能量传递
采用滚珠丝杠结构将隔振摆式吸振器集成在浮梁和环空浮子之间,研究其波能转换势能。采用边界元法分析了浮杆系统的水动力刚度、附加质量和辐射阻尼效应。研究发现,系统中通过倍周期分岔产生的1:2内共振是造成浮子系统与摆振器之间非线性能量传递的主要原因。当系统的一次谐波解由于1:2的内部共振现象而变得不稳定时,就会发生这种非线性能量传递。本文的重点是分析在系统第一固有频率附近的1:2内共振现象。当IPVA系统与桅杆-浮子系统集成时,无论是在桅杆的响应幅度算子(RAO)还是系统能量转换潜力的一项测量方面,都优于桅杆和浮子之间的线性耦合。最后,在单自由度系统集成的IPVA系统上(不含任何流体动力效应)进行了实验,观察了1:2的内部共振现象以及主质量与摆振器之间的非线性能量传递。实验表明,由于能量传递现象,IPVA系统在抑制振动方面优于线性基准。
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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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