National Changhua University of Education Institutional Repository : Item 987654321/1593
English  |  正體中文  |  简体中文  |  全文笔数/总笔数 : 6507/11669
造访人次 : 30087494      在线人数 : 877
RC Version 3.2 © Powered By DSPACE, MIT. Enhanced by NTU Library IR team.
搜寻范围 进阶搜寻

jsp.display-item.identifier=請使用永久網址來引用或連結此文件: http://ir.ncue.edu.tw/ir/handle/987654321/1593

题名: “ Experimental Study of Complete Band Gaps and Waveguiding inside Phononic Crystal Slabs”
作者: Fu-Li Hsiao;Abdelkrim Khelif;Hanane Moubchir;Abdelkrim Choujaa;Chii-Chang Chen;Vincent Laude
贡献者: 光電科技研究所
日期: 2007
上传时间: 2010-11-10T07:51:30Z
摘要: The propagation of elastic waves in inhomogeneous media has attracted much attention over the last years. Media with periodically varying elastic coefficients are called phononic crystals. Phononic crystals can be the siege of complete acoustic band gaps. For frequencies within a complete band gap, there can be no vibration and no propagation of acoustic waves, whatever the polarization and the wave vector. In such a situation, a phononic crystal behaves like a perfect mirror and can be further modified to gain control over acoustic waves. This principle can be used to obtain acoustic cavities, acoustic filters, or very efficient waveguides by adding certain defects to the lattice. All these functions can be achieved in a very tight space of the order of the acoustic wavelength. The purpose of this paper is to demonstrate a complete band gap in a phononic crystal slab and to investigate the propagation of acoustic waves within it. The system we have chosen is a finite thickness, solid/solid and two face free phononic crystal slab. This system lends itself to numerical simulation by a finite element method developed previously. Furthermore, by using a combination of ultrasonic electrical transduction and optical detection by a laser interferometer, we can obtain a map of the propagation of waves at any monochromatic frequency. This experimental set-up is used to quantify the attenuation on propagation and the confinement of acoustic energy within a line-defect waveguide. A complete band gap was identified by measuring the transmission spectrum along the two most symmetric directions of the Brillouin zone by laser interferometry. The measured transmission spectra and the theoretical band structure obtained by a finite element method are in agreement and show that the complete band gap ranges from 255 kHz to 340 kHz. The dependence of the attenuation on the propagation distance was studied. Little attenuation is observed below the complete band gap and a clear exponent- ial decay is observed within it. Unexpectedly, a pronounced unexpected decay is observed for frequencies above the complete band gap, unlike observations for bulk acoustic waves. Finally, a defect line waveguide was formed. The transmission through the waveguide was measured and the wave field was imaged. The observations show that the waveguide confine the acoustic energy within the complete band gap.
關聯: 2007 IEEE International Ultrasonics Symposium, New York, USA(Poster, Best student poster award)
显示于类别:[光電科技研究所] 會議論文

文件中的档案:

没有与此文件相关的档案.



在NCUEIR中所有的数据项都受到原著作权保护.

 


DSpace Software Copyright © 2002-2004  MIT &  Hewlett-Packard  /   Enhanced by   NTU Library IR team Copyright ©   - 回馈