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内插扩张室声子晶体管路带隙特性研究
引用本文:张振方,郁殿龙,刘江伟,温激鸿.内插扩张室声子晶体管路带隙特性研究[J].物理学报,2018,67(7):74301-074301.
作者姓名:张振方  郁殿龙  刘江伟  温激鸿
作者单位:国防科技大学, 装备综合保障技术重点实验室, 长沙 410073
基金项目:国家自然科学基金(批准号:11372346)资助的课题.
摘    要:声子晶体管路的带隙特性,可以实现管路系统在特定频率下的噪声控制.利用二维模态匹配法推导出单个内插扩张室元胞的传递矩阵,结合Bloch定理,得到声子晶体管路的能带结构计算方法;验证了二维方法在计算能带结构时的准确性.研究发现,内插扩张室声子晶体管路存在布拉格带隙和局域共振带隙.进一步研究了晶格常数以及内插管长度对能带结构的影响,结果表明,晶格常数主要控制布拉格带隙,而内插管长度对局域共振带隙有较大的影响,并研究了两种参数变化下的带隙耦合.研究结果可以为管路降噪设计提供新的思路.

关 键 词:内插扩张室  二维模态匹配法  能带结构  带隙耦合
收稿时间:2017-11-05

Properties of band gaps in phononic crystal pipe consisting of expansion chambers with extended inlet/outlet
Zhang Zhen-Fang,Yu Dian-Long,Liu Jiang-Wei,Wen Ji-Hong.Properties of band gaps in phononic crystal pipe consisting of expansion chambers with extended inlet/outlet[J].Acta Physica Sinica,2018,67(7):74301-074301.
Authors:Zhang Zhen-Fang  Yu Dian-Long  Liu Jiang-Wei  Wen Ji-Hong
Institution:Laboratory of Science and Technology on Integrated Logistics Support, National University of Defense Technology, Changsha 410073, China
Abstract:Noise reduction is an interesting and important subject in the piping systems of many applications, in order to suppress noise in the pipe, many significative researches have been done. In recent years, the acoustic wave propagation in the phononic crystal pipe has received increasing attention. The characteristic band gaps in phononic crystal pipe can forbid wave to propagate within the band-gap frequency range, which provides a new way to control the noise in piping system. In this paper, the acoustic properties of phononic crystal pipe consisting of expansion chambers with the extended inlet/outlet are investigated theoretically and numerically. By combining the two-dimensional mode matching method and the transfer matrix method, the band structure and transmission loss, especially the band-gap properties of the phononic crystal structure are presented. The obtained results exhibit excellent agreement with the results from the finite element method. Then, this theoretical method is compared with the one-dimensional plane wave method, and it is found that the results from the proposed method are more accurate within the studied frequency range. Further, the effect of modal order in the band-gap frequency range is analyzed, which shows that the mode matching method has a good convergence.
The wave scattering and resonance of the chamber will induce the Bragg and locally-resonant band gaps in the periodic pipe, respectively. Further analysis on the transmission coefficient in a band gap is conducted. It shows that the transmission coefficient decays exponentially with the periodic number increasing, which demonstrates that the suppression of the wave propagation in phononic crystal pipe is caused by the band-gap rather than the impedance mismatch. Then the effects of variable parameters including the lattice constant and the length of the insertion on the location and width of the band gaps are investigated. The results show that the lattice constant mainly controls the Bragg band gaps and the length of the insertion exerts a significant influence on the locally-resonant band gaps. Finally, the coupling behaviors of band gaps are studied to expand their widths. It is found that the Bragg band gaps can be coupled with the locally-resonant band gaps via changing the lattice constant and the length of the insertion, which can give rise to wider band gaps. Furthermore, the coupling between two locally-resonant band gaps is proposed by changing the length of the insertion, which also produces wider band gaps.
This study can provide new ideas for designing the phononic crystal pipe to suppress the noise in piping system.
Keywords:expansion chambers with extended inlet and outlet  two-dimensional mode matching method  band structure  coupled band gaps
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