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基于一维梁模型的轻质粉末振动低频吸声理论分析

Theoretical Analysis of Low-Frequency Sound Absorption Owing to the Vibration of Lightweight Powder Using a 1D Beam Model.

作者信息

Sakamoto Shuichi, Kawakami Yuya, Soeta Hiroaki, Kubo Yosuke

机构信息

Department of Engineering, Niigata University, Ikarashi 2-no-cho 8050, Nishi-ku, Niigata 950-2181, Japan.

Graduate School of Science and Technology, Niigata University, Ikarashi 2-no-cho 8050, Nishi-ku, Niigata 950-2181, Japan.

出版信息

Materials (Basel). 2025 Jun 3;18(11):2611. doi: 10.3390/ma18112611.

Abstract

Lightweight powder-based sound-absorbing materials are characterized by sound absorption peaks at lower frequencies compared to other sound absorption materials of the same thickness. This behavior is attributed to the excitation of longitudinal vibration modes in the powder particles by incident sound waves, wherein acoustic energy is converted into kinetic energy and subsequently dissipated through interparticle interactions. These lightweight, fine powders are artificially engineered acoustic materials. Despite their structural simplicity, they exhibit emergent and complex sound absorption behaviors through fundamental vibrational mechanisms. Representing the powder layer with a transfer matrix simplifies model-based development and enhances versatility as an acoustic element. The powder layer was modeled as a longitudinally oscillating 1D beam, and transfer matrix of the powder layer was derived. To verify the obtained transfer matrix, the experimental values were compared with the theoretical values for a single powder layer. In addition, both were compared for the case of other acoustic elements stacked on top of each other, which were close to each other. The theoretical values were compared with the experimental values, which were close to each other.

摘要

与相同厚度的其他吸声材料相比,轻质粉末基吸声材料的特点是在较低频率处有吸声峰值。这种行为归因于入射声波激发了粉末颗粒中的纵向振动模式,其中声能转化为动能,随后通过颗粒间相互作用耗散。这些轻质细粉是人工设计的声学材料。尽管它们结构简单,但通过基本振动机制表现出涌现和复杂的吸声行为。用传递矩阵表示粉末层简化了基于模型的开发,并增强了作为声学元件的通用性。将粉末层建模为纵向振荡的一维梁,并推导了粉末层的传递矩阵。为了验证得到的传递矩阵,将单粉末层的实验值与理论值进行了比较。此外,还对彼此相邻堆叠的其他声学元件的情况进行了比较。将理论值与彼此接近的实验值进行了比较。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3111/12156335/d3afc962fe8d/materials-18-02611-g001.jpg

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