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基于有效负质量的双稳态非线性声学超材料的振动传递特性

Vibration Transmission Characteristics of Bistable Nonlinear Acoustic Metamaterials Based on Effective Negative Mass.

作者信息

Gao Ming, Shang Guodong, Guo Jing, Xu Lingfeng, Fan Guiju

机构信息

Mechanical and Electronic Engineering College, Shandong Agricultural University, Tai'an 271018, China.

Shandong Engineering Research Center of Agricultural Equipment Intelligentization, Shandong Agricultural University, Tai'an 271018, China.

出版信息

Nanomaterials (Basel). 2025 Aug 17;15(16):1269. doi: 10.3390/nano15161269.

Abstract

The growing demand for low-frequency, broadband vibration and noise suppression technologies in next-generation mechanical equipment has become increasingly urgent. Effective negative mass locally resonant structures represent one of the most paradigmatic classes of acoustic metamaterials. Their unique elastic wave bandgaps enable efficient suppression of low-frequency vibrations, while inherent nonlinear effects provide significant potential for the design and tunability of these bandgaps. To achieve ultra-low-frequency and ultra-broadband vibration attenuation, this study employs Duffing oscillators exhibiting negative-stiffness characteristics as structural elements, establishing a bistable nonlinear acoustic-metamaterial mechanical model. Subsequently, based on the effective negative mass local resonance theory, the perturbation solution for the dispersion curves is derived using the perturbation method. Finally, the effects of mass ratio, stiffness ratio, and nonlinear term on the starting and cutoff frequencies of the bandgap are analyzed, and key geometric parameters influencing the design of ultra-low vibration reduction bandgaps are comprehensively investigated. Subsequently, the influence of external excitation amplitude and the nonlinear term on bandgap formation is analyzed using numerical computation methods. Finally, effective positive mass, negative mass, and zero-mass phenomena within distinct frequency ranges of the bandgap and passband are examined to validate the theoretically derived results. The findings demonstrate that, compared to a positive-stiffness system, the bandgap of the bistable nonlinear acoustic metamaterial incorporating negative-stiffness Duffing oscillators shifts to higher frequencies and widens by a factor of 2. The external excitation amplitude changes the bandgap starting frequency and cutoff frequency. As increases, the starting frequency rises while the cutoff frequency decreases, resulting in a narrowing of the bandgap width. Within the frequency range bounded by the bandgap starting frequency and cutoff frequency, the region between the resonance frequency and cutoff frequency corresponds to an effective negative mass state, whereas the region between the bandgap starting frequency and resonance frequency exhibits an effective positive mass state. Critically, the bandgap encompasses both effective positive mass and negative mass regions, wherein vibration propagation is suppressed. Concurrently, a zero-mass state emerges within this structure, with its frequency precisely coinciding with the bandgap cutoff frequency. This study provides a theoretical foundation and practical guidelines for designing nonlinear acoustic metamaterials targeting ultra-low-frequency and ultra-broadband vibration and noise mitigation.

摘要

下一代机械设备对低频、宽带振动和噪声抑制技术的需求日益迫切。有效的负质量局部共振结构是声学超材料中最典型的一类。其独特的弹性波带隙能够有效抑制低频振动,而固有的非线性效应为这些带隙的设计和可调性提供了巨大潜力。为实现超低频和超宽带振动衰减,本研究采用具有负刚度特性的达芬振子作为结构元件,建立了双稳态非线性声学超材料力学模型。随后,基于有效的负质量局部共振理论,利用微扰法推导了色散曲线的微扰解。最后,分析了质量比、刚度比和非线性项对带隙起始频率和截止频率的影响,全面研究了影响超低频减振带隙设计的关键几何参数。随后,采用数值计算方法分析了外部激励幅值和非线性项对带隙形成的影响。最后,研究了带隙和通带不同频率范围内的有效正质量、负质量和零质量现象,以验证理论推导结果。研究结果表明,与正刚度系统相比,包含负刚度达芬振子的双稳态非线性声学超材料的带隙向更高频率移动,宽度扩大了两倍。外部激励幅值改变了带隙起始频率和截止频率。随着激励幅值增大,起始频率升高而截止频率降低,导致带隙宽度变窄。在带隙起始频率和截止频率界定的频率范围内,共振频率与截止频率之间的区域对应有效负质量状态,而带隙起始频率与共振频率之间的区域呈现有效正质量状态。关键的是,带隙同时包含有效正质量和负质量区域,其中振动传播受到抑制。同时,该结构中出现了零质量状态,其频率恰好与带隙截止频率重合。本研究为设计用于超低频和超宽带振动与噪声缓解的非线性声学超材料提供了理论基础和实用指导。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/29d3/12389181/78db302a9c57/nanomaterials-15-01269-g001.jpg

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