期刊文献+

Tuning of band-gap of phononic crystals with initial confining pressure 被引量:2

Tuning of band-gap of phononic crystals with initial confining pressure
下载PDF
导出
摘要 The mechanism of the shift of the band-gap in phononic crystal (PC) with different initial confining pressures is studied experimentally and numerically. The experimental results and numerical analysis simultaneously indicate that the confining pressure can efficiently tune the location in and the width of the band-gap. The present work provides a basis for tuning the band-gap of phononic crystal in engineering applications. The mechanism of the shift of the band-gap in phononic crystal (PC) with different initial confining pressures is studied experimentally and numerically. The experimental results and numerical analysis simultaneously indicate that the confining pressure can efficiently tune the location in and the width of the band-gap. The present work provides a basis for tuning the band-gap of phononic crystal in engineering applications.
出处 《Chinese Physics B》 SCIE EI CAS CSCD 2012年第12期366-371,共6页 中国物理B(英文版)
基金 Project supported by the National Natural Science Foundation of China(Grant No.10732010,10972010,and 11028206)
关键词 phononic crystals band-gap initial confining pressure modified split-Hopkinson pres-sure bar apparatus phononic crystals, band-gap, initial confining pressure, modified split-Hopkinson pres-sure bar apparatus
  • 相关文献

参考文献24

  • 1Kushwaha M S, Halevi P, Martinez G, Dobrzynski L and Djafari-Rouhani B 1994 Phys. Rev. B 49 2313.
  • 2Kushwaha M S 1996 Int. J, Mod. Phys. B 10 977.
  • 3Robillard J F, Matar O B, Vasseur J O, Deymier P A, Stippinger M, Hladky-Hennion A C, Pennec Y and Djafari-Rouhani B 2009 Appl. Phys. Left. 95 124104.
  • 4Mullin T, Deschanel S, Bertoldi K and Boyce M C 2007 Phys. Rev. Lett. 99 084301.
  • 5Bertoldi K and Boyce M C 2008 Phys. Rev. B 77 052105.
  • 6Jang J H, Koh C Y, Bertoldi K, Boyce M C and Thomas E L 2009 Nano Lett. 9 2113.
  • 7Wang Y Z, Li F M, Kishimoto K, Wang Y S and Huang W H 2008 Acta Mech. Solida. Sin. 21 529.
  • 8Herbold E B, Kim J, Nesterenko V, Wang S Y and Daraio C 2009 Acta Mech. 205 85.
  • 9Wang Y Z, Li F M, Kishimoto K, Wang Y S and Huang W H 2010 Eur. J. Mech. A: Solid 29 182.
  • 10Wang Y Z, Li F M and Kishimoto K 2011 Acta Mech. 216 291.

同被引文献14

  • 1程志宝,石志飞,向宏军.层状周期结构动力衰减域特性研究[J].振动与冲击,2013,32(9):178-182. 被引量:7
  • 2蒋学武,朱石坚.舰船管路橡胶减振器的应用[J].海军工程大学学报,2000,12(4):90-92. 被引量:14
  • 3郁殿龙,刘耀宗,王刚,温激鸿,邱静.一维杆状声子晶体振动中的表面局域态研究[J].机械工程学报,2005,41(6):35-38. 被引量:12
  • 4闫辉,姜洪源,李瑰贤,A.M.Ulannov.航空发动机管路支承用金属隔振器性能研究[J].中国机械工程,2007,18(12):1443-1447. 被引量:7
  • 5ELLISON J. Passive vibration control of airborne equipment using a circular steel ring[J]. Journal of Sound and Vibration, 2001, 246(1). 1-28.
  • 6KUSHWAHA M S, HALEVI P, DOBRZYNSKI L, et al. Acoustic band structure of periodic elastic composites[J]. Physical ReviewLetters, 1993, 71. 2022-2025.
  • 7KUSHWAHA M S, HALEVI P, MARTINEZ G, et al. Theory of acoustic band structure of periodic elastic composites[J]. Physical Review B, 1994, 49: 2313-2322.
  • 8SIGALAS M M, ECONOMOU E N. Elastic and acoustic wave band structure[J]. Journal of Sound and Vibration, 1992, 158: 377-382.
  • 9WEN Jihong, WANG Gang, YU Dianlong, et al. Theoretical and experimental investigation of flexural wave propagation in straight beams with periodic structures: Application to a vibration isolation structure[J] Journal ofAppliedPhysics, 2005, 97: 114907.
  • 10YU Dianlong, LIU Yaozong, QIU Jing, et al. Complete flexural vibration band gaps in membrane-like lattice structures[J]. Physics LettersA, 2006, 357: 154-158.

引证文献2

二级引证文献6

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部