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自锁负泊松比嵌套圆环声学超结构设计及降噪性能研究

Design and noise reduction performance of a self-locking negative Poisson's ratio nested circular rings acoustic metastructure

  • 摘要: 针对传统吸声结构在低频噪声控制中频带狭窄、承载能力与声学性能难以兼顾的瓶颈,本文设计了一种具备自锁机制的负泊松比嵌套圆环声学超材料结构。基于声学波动理论推导了声波传播控制方程并确定截止频率,采用有限元方法建立了声学数值模型,分析了结构的拉胀行为与声学性能,并通过阻抗管实验验证了仿真方法的可靠性。研究结果表明,该结构在292~731 Hz与1356~1527 Hz频段内吸声系数高于0.5,实现有效吸声,且在440 Hz与1440 Hz处分别出现吸声峰值,达到0.86和0.60。通过优化多孔材料及圆柱壳几何参数可进一步提升其声学性能。引入声学黑洞后,结构在50~1600 Hz全频段内的吸声性能显著提升。该结构通过自锁机制维持腔体形态稳定,融合了谐振腔、声学黑洞与负泊松比结构的协同优势,为宽频带噪声控制提供了一种具有承载稳定性的新型超结构解决方案。

     

    Abstract: To address the bottlenecks of traditional sound-absorbing structures—namely, the narrow effective frequency band in low-frequency noise control and the difficulty in balancing load-bearing capacity with acoustic performance—a self-locking acoustic metamaterial structure composed of nested circular rings exhibiting a negative Poisson’s ratio is proposed. Based on acoustic wave theory, the wave equation for sound propagation is derived, and the cutoff frequency is determined. A finite-element acoustic model is established to analyze the auxetic behavior and acoustic performance of the structure, and the reliability of the simulation is verified through impedance-tube experiments. The results show that the structure achieves effective sound absorption (absorption coefficient > 0.5) in the frequency ranges of 292–731 Hz and 13561527 Hz, with peak values of 0.86 at 440 Hz and 0.60 at 1440 Hz. Its acoustic performance can be further improved by optimizing the porous material and the geometric parameters of the cylindrical shells. After integrating acoustic black holes, the sound absorption performance is significantly enhanced across a broad frequency band of 50–1600 Hz. The structure maintains cavity stability via a self-locking mechanism and synergistically combines the advantages of Helmholtz resonators, acoustic black holes, and auxetic configurations, offering a novel solution for broadband noise control with enhanced load-bearing stability.

     

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