广义声子晶体的振动和隔声特性

IF 0.9 4区 物理与天体物理 Q4 PHYSICS, APPLIED
W. Xingguo, Shu Haisheng, Zhang Lei
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引用次数: 3

摘要

在前人研究的基础上,进一步将广义声子晶体(GPCs)的概念引入圆柱壳结构,构造了一类广义声子晶体(CS-GPCs)的圆柱壳。随后,对复合圆柱壳的结构场和声-结构耦合场分别进行了分析。考虑到布洛赫定理无法解释该结构场中存在的广义周期情况,提出了一种基于力学状态向量转移矩阵特征值的能带结构计算新方法。通过对能带结构的观察发现,弹性波在CS-GPCs中传播时,对于不同阶数的模态,得到了明显的带隙,其形成机制包括波前膨胀效应和Bragg散射效应两个方面。此外,我们进一步探讨了结构中纵波模态和横波模态对这些带隙的相关影响,并给出了一些结论。在声-结构耦合场中,建立了不同模态下的声透射系数表达式,并对其频率响应进行了数值计算,验证了CS-GPCs的带隙特性。此外,还详细分析了内外声场的声压分布,探讨了线源参数(偏移距离和频率)对声压分布及其指向性的影响规律。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Vibration and acoustic insulation properties of generalized phononic crystals
Based on the previous studies, the concept of generalized phononic crystals (GPCs) is further introduced into the cylindrical shell structures, and a type of cylindrical shells of generalized phononic crystals (CS-GPCs) is constructed. Subsequently, the structure field and acoustic-structural coupled field of that composite cylindrical shells are examined respectively in this paper. Considering the Bloch theorem is not capable of explaining the generalized periodic situation existing in this structure field, a new analysis method involving transferring matrix eigenvalue based on the mechanical state vector is proposed to calculate the energy band structure. Through observing the energy band structure, an obvious wave band gap is obtained when the elastic wave propagates in the CS-GPCs for modes with different order, whose forming mechanism includes two aspects, i.e., the wave front expansion effect and the Bragg scattering effect. In addition, we further explore the related influences of the longitudinal wave mode and shear wave mode in structure on these band gaps, and some conclusions are illustrated. For acoustic-structural coupled field, the expressions of the acoustic transmission coefficients for different modes are built, and the frequency responses are numerically calculated to verify the band gap characteristics of the CS-GPCs. Furthermore, the acoustic pressure distribution of the internal and external acoustic fields is also analyzed in detail, and the influence laws of the parameters (offset distance and frequency) of the line source on acoustical pressure distribution and its directivity are explored.
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来源期刊
CiteScore
1.90
自引率
10.00%
发文量
84
审稿时长
1.9 months
期刊介绍: EPJ AP an international journal devoted to the promotion of the recent progresses in all fields of applied physics. The articles published in EPJ AP span the whole spectrum of applied physics research.
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