Search

Article

x

留言板

尊敬的读者、作者、审稿人, 关于本刊的投稿、审稿、编辑和出版的任何问题, 您可以本页添加留言。我们将尽快给您答复。谢谢您的支持!

姓名
邮箱
手机号码
标题
留言内容
验证码

Low frequency band gaps and vibration reduction properties of a multi-frequency locally resonant phononic plate

Wu Jian Bai Xiao-Chun Xiao Yong Geng Ming-Xin Yu Dian-Long Wen Ji-Hong

Citation:

Low frequency band gaps and vibration reduction properties of a multi-frequency locally resonant phononic plate

Wu Jian, Bai Xiao-Chun, Xiao Yong, Geng Ming-Xin, Yu Dian-Long, Wen Ji-Hong
PDF
Get Citation

(PLEASE TRANSLATE TO ENGLISH

BY GOOGLE TRANSLATE IF NEEDED.)

  • A multi-frequency locally resonant (LR) phononic plate is proposed in this paper. The phononic plate consists of periodic arrays of multiple double-cantilevered thin beams attached to a thin homogeneous plate. This proposed phononic plate is simplified and modeled using a plane wave expansion method to enable the calculation of flexural wave band structures. The band gap behavior of the phononic plate is analyzed comprehensively. In addition, an experimental specimen is fabricated using a square aluminum plate with a thickness of 0.9 mm and an area of 840 mm840 mm, and attached to the specimens as periodic arrays of two types of double-cantilevered thin beams made of the same material as the host plate. And the specimen is measured by using a scanning laser Doppler vibrometer to verify the theoretical predictions of band gaps. Investigations of this paper yield the following findings and conclusions: (1) Due to the interaction of low-frequency vibrational modes of attached multiple double-cantilevered beams and flexural vibration of the host plate, the proposed multi-frequency LR phononic plate can exhibit multiple low-frequency flexural wave band gaps (stop bands). It is also found that the band gaps of a multi-frequency LR phononic plate, especially those appearing in a lower frequency range, are generally narrower than that of a single-frequency LR phononic plate with the same type of double-cantilevered beams. (2) The frequency location of band gaps moves to higher frequency range when the thickness of the double-cantilevered beams is increased, or when the length of the double-cantilevered beams is decreased. It is also shown that a very small variation of the thickness (e. g., 0.1 mm) may lead to significant changes of frequency position of the band gaps. (3) When the width of the double-cantilevered beams is enlarged or the number of the double-cantilevered beams is increased, the lower band gap edge will move to a lower frequency range, while the upper band gap edge will move to a higher frequency range. This implies that the bandwidth of the band gaps is broadened. However, at the same time, it is shown that the central frequencies of the band gaps remain almost unchanged. (4) Experimental measurements of the fabricated specimen evidence the existence of two low frequency band gaps, and confirm that the flexural plate vibrations are significantly reduced in the predicted band gaps.
      Corresponding author: Xiao Yong, xiaoy@vip.sina.com
    • Funds: Project supported by the National Natural Science Foundation of China (Grant No. 51305448), the Aeronautical Science Fund, Chinia (Grant No. 2015ZA88003), and the Science and Technology Project of State Grid Company of China (Grant No. 5299001352UC).
    [1]

    Kushwaha M S, Halevi P, Dobrzynski L, Djafari-Rouhani B 1993 Phys. Rev. Lett. 71 2022

    [2]

    Liu Z, Zhang X, Mao Y, Zhu Y Y, Yang Z, Chan C T, Sheng P 2000 Science 289 1734

    [3]

    Fang N, Xi D, Xu J, Ambati M, Strituravanich W, Sun C, Zhang X 2006 Nat. Mater. 5 452

    [4]

    Wen X S, Wen J H, Yu D L, Wang G, Liu Y Z, Han X Y 2009 Phononic Crystals (Beiging: National Defense Industry Press) pp196-291 (in Chinese) [温熙森, 温激鸿, 郁殿龙, 王刚, 刘耀宗, 韩小云 2009 声子晶体 (北京: 国防工业出版社) 第196-291页]

    [5]

    Wen J H, Wang G, Yu D L, Zhao H G, Liu Y Z, Wen X S 2008 Sci. China Series E: Technol. Sci. 51 85

    [6]

    Cheng C, Wu F G, Zhang X, Yao Y W 2014 Acta Phys. Sin. 63 024301 (in Chinese) [程聪, 吴福根, 张欣, 姚源卫 2014 物理学报 63 024301]

    [7]

    Liu J, Hou Z L, Fu X J 2015 Acta Phys. Sin. 64 154302 (in Chinese) [刘娇, 侯志林, 傅秀军 2015 物理学报 64 154302]

    [8]

    Zhang H, Wen J H, Chen S B, Wang G, Wen X S 2015 Chin. Phys. B 24 036201

    [9]

    Xiao Y, Wen J, Wen X 2012 Phys Lett A 376 1384

    [10]

    Xiao Y, Wen J, Yu D, Wen X 2013 J. Sound Vib. 332 867

    [11]

    Xiao Y, Wen J, Wang G, Wen X 2013 J. Vib. Acoust. 135 041006

    [12]

    Wang Y F, Wang Y S 2013 J. Sound Vib. 332 2019

    [13]

    Xiao Y, Wen J, Wen X 2012 New J. Phys. 14 033042

    [14]

    Zhang H, Wen J, Xiao Y, Wang G, Wen X 2015 J. Sound Vib. 343 104

    [15]

    Zhang H, Xiao Y, Wen J, Yu D, Wen X 2015 J. Phys. D: Appl. Phys. 48 435305

    [16]

    Zhang Y, Wen J, Xiao Y, Wen X, Wang J 2012 Phys Lett A 376 1489

    [17]

    Liu Z, Chan C T, Sheng P 2005 Phys. Rev. B 71 014103

    [18]

    Li J, Chan C T 2004 Phys. Rev. E 70 055602(R)

    [19]

    Yu D L, Liu Y Z, Qiu J, Zhao H G, Liu Z M 2005 Chin. Phys. Lett. 22 1958

    [20]

    Wu T T, Huang Z G, Tsai T C, Wu T C 2008 Appl. Phys. Lett. 93 111902

    [21]

    Pennec Y, Djafari-Rouhani B, Larabi H, Vasseur J O, Hladky-Hennion A C 2008 Phys. Rev. B 78 104105

    [22]

    Oudich M, Assouar M B, Hou Z 2010 Appl. Phys. Lett. 97 193503

    [23]

    Oudich M, Senesi M, Assouar M B, Ruzenne M, Sun J H, Vincent B, Hou Z, Wu T T 2011 Phys. Rev. B 84 165136

    [24]

    Xiao Y, Wen J, Wen X 2012 J. Sound Vib. 331 5408

    [25]

    Xiao Y, Wen J, Wen X 2012 J. Phys. D: Appl. Phys. 45 195401

    [26]

    Zhang S, Wu J H, Hu Z 2013 J. Appl. Phys. 113 163511

    [27]

    Wang Y F, Wang Y S 2013 J. Appl. Phys. 114 043509

    [28]

    Ma J, Hou Z, Assouar B M 2014 J. Appl. Phys. 115 093508

    [29]

    Xiao Y, Wen J, Huang L, Wen X 2014 J. Phys. D: Appl. Phys. 47 045307

    [30]

    Torrent D, Mayou D, Snchez-Dehesa J 2013 Phys. Rev. B 87 115143

  • [1]

    Kushwaha M S, Halevi P, Dobrzynski L, Djafari-Rouhani B 1993 Phys. Rev. Lett. 71 2022

    [2]

    Liu Z, Zhang X, Mao Y, Zhu Y Y, Yang Z, Chan C T, Sheng P 2000 Science 289 1734

    [3]

    Fang N, Xi D, Xu J, Ambati M, Strituravanich W, Sun C, Zhang X 2006 Nat. Mater. 5 452

    [4]

    Wen X S, Wen J H, Yu D L, Wang G, Liu Y Z, Han X Y 2009 Phononic Crystals (Beiging: National Defense Industry Press) pp196-291 (in Chinese) [温熙森, 温激鸿, 郁殿龙, 王刚, 刘耀宗, 韩小云 2009 声子晶体 (北京: 国防工业出版社) 第196-291页]

    [5]

    Wen J H, Wang G, Yu D L, Zhao H G, Liu Y Z, Wen X S 2008 Sci. China Series E: Technol. Sci. 51 85

    [6]

    Cheng C, Wu F G, Zhang X, Yao Y W 2014 Acta Phys. Sin. 63 024301 (in Chinese) [程聪, 吴福根, 张欣, 姚源卫 2014 物理学报 63 024301]

    [7]

    Liu J, Hou Z L, Fu X J 2015 Acta Phys. Sin. 64 154302 (in Chinese) [刘娇, 侯志林, 傅秀军 2015 物理学报 64 154302]

    [8]

    Zhang H, Wen J H, Chen S B, Wang G, Wen X S 2015 Chin. Phys. B 24 036201

    [9]

    Xiao Y, Wen J, Wen X 2012 Phys Lett A 376 1384

    [10]

    Xiao Y, Wen J, Yu D, Wen X 2013 J. Sound Vib. 332 867

    [11]

    Xiao Y, Wen J, Wang G, Wen X 2013 J. Vib. Acoust. 135 041006

    [12]

    Wang Y F, Wang Y S 2013 J. Sound Vib. 332 2019

    [13]

    Xiao Y, Wen J, Wen X 2012 New J. Phys. 14 033042

    [14]

    Zhang H, Wen J, Xiao Y, Wang G, Wen X 2015 J. Sound Vib. 343 104

    [15]

    Zhang H, Xiao Y, Wen J, Yu D, Wen X 2015 J. Phys. D: Appl. Phys. 48 435305

    [16]

    Zhang Y, Wen J, Xiao Y, Wen X, Wang J 2012 Phys Lett A 376 1489

    [17]

    Liu Z, Chan C T, Sheng P 2005 Phys. Rev. B 71 014103

    [18]

    Li J, Chan C T 2004 Phys. Rev. E 70 055602(R)

    [19]

    Yu D L, Liu Y Z, Qiu J, Zhao H G, Liu Z M 2005 Chin. Phys. Lett. 22 1958

    [20]

    Wu T T, Huang Z G, Tsai T C, Wu T C 2008 Appl. Phys. Lett. 93 111902

    [21]

    Pennec Y, Djafari-Rouhani B, Larabi H, Vasseur J O, Hladky-Hennion A C 2008 Phys. Rev. B 78 104105

    [22]

    Oudich M, Assouar M B, Hou Z 2010 Appl. Phys. Lett. 97 193503

    [23]

    Oudich M, Senesi M, Assouar M B, Ruzenne M, Sun J H, Vincent B, Hou Z, Wu T T 2011 Phys. Rev. B 84 165136

    [24]

    Xiao Y, Wen J, Wen X 2012 J. Sound Vib. 331 5408

    [25]

    Xiao Y, Wen J, Wen X 2012 J. Phys. D: Appl. Phys. 45 195401

    [26]

    Zhang S, Wu J H, Hu Z 2013 J. Appl. Phys. 113 163511

    [27]

    Wang Y F, Wang Y S 2013 J. Appl. Phys. 114 043509

    [28]

    Ma J, Hou Z, Assouar B M 2014 J. Appl. Phys. 115 093508

    [29]

    Xiao Y, Wen J, Huang L, Wen X 2014 J. Phys. D: Appl. Phys. 47 045307

    [30]

    Torrent D, Mayou D, Snchez-Dehesa J 2013 Phys. Rev. B 87 115143

  • [1] Wang Yan-Ping, Cai Fei-Yan, Li Fei, Zhang Ru-Jun, Li Yong-Chuan, Wang Jin-Ping, Zhang Xin, Zheng Hai-Rong. Acoustic manipulation of microparticles using a two-dimensional phononic crystal plate. Acta Physica Sinica, 2023, 72(14): 144207. doi: 10.7498/aps.72.20230099
    [2] Han Dong-Hai, Zhang Guang-Jun, Zhao Jing-Bo, Yao Hong. Low-frequency bandgaps and sound isolation characteristics of a novel Helmholtz-type phononic crystal. Acta Physica Sinica, 2022, 71(11): 114301. doi: 10.7498/aps.71.20211932
    [3] Tan Zi-Hao, Sun Xiao-Wei, Song Ting, Wen Xiao-Dong, Liu Xi-Xuan, Liu Zi-Jiang. Numerical simulation study on band gap characteristics of surface phononic crystal with spherical composite column. Acta Physica Sinica, 2021, 70(14): 144301. doi: 10.7498/aps.70.20210165
    [4] Guo Zhi-Wei, Guo Han-Bei, Wang Ting. Vibro-acoustic performance of acoustic metamaterial plate with periodic lateral local resonator. Acta Physica Sinica, 2021, 70(21): 214301. doi: 10.7498/aps.70.20210595
    [5] Luo Quan-Bin, Huang Xue-Qin, Deng Wei-Yin, Wu Ying, Lu Jiu-Yang, Liu Zheng-You. Type-II Dirac points and edge transports in phononic crystal plates. Acta Physica Sinica, 2021, 70(18): 184302. doi: 10.7498/aps.70.20210712
    [6] Xu Qiang-Rong, Shen Cheng, Han Feng, Lu Tian-Jian. Broadband low-frequency sound insulation performance of quasi-zero stiffness local resonant acoustic metamaterial plate. Acta Physica Sinica, 2021, 70(24): 244302. doi: 10.7498/aps.70.20211203
    [7] Zheng Zhou-Fu, Yin Jian-Fei, Wen Ji-Hong, Yu Dian-Long. Topologically protected edge states of elastic waves in phononic crystal plates. Acta Physica Sinica, 2020, 69(15): 156201. doi: 10.7498/aps.69.20200542
    [8] Chen Xin, Yao Hong, Zhao Jing-Bo, Zhang Shuai, He Zi-Hou, Jiang Juan-Na. Band gap of structure coupling Helmholtz resonator with elastic oscillator. Acta Physica Sinica, 2019, 68(8): 084302. doi: 10.7498/aps.68.20182102
    [9] Jiang Jiu-Long, Yao Hong, Du Jun, Zhao Jing-Bo, Deng Tao. Low frequency band gap characteristics of double-split Helmholtz locally resonant periodic structures. Acta Physica Sinica, 2017, 66(6): 064301. doi: 10.7498/aps.66.064301
    [10] Du Chun-Yang, Yu Dian-Long, Liu Jiang-Wei, Wen Ji-Hong. Flexural vibration band gaps for a phononic crystal beam with X-shaped local resonance metadamping structure. Acta Physica Sinica, 2017, 66(14): 140701. doi: 10.7498/aps.66.140701
    [11] Zhu Xi-Xi, Xiao Yong, Wen Ji-Hong, Yu Dian-Long. Flexural wave band gaps and vibration reduction properties of a locally resonant stiffened plate. Acta Physica Sinica, 2016, 65(17): 176202. doi: 10.7498/aps.65.176202
    [12] Hou Li-Na, Hou Zhi-Lin, Fu Xiu-Jun. Defect state of the locally resonant phononic crystal. Acta Physica Sinica, 2014, 63(3): 034305. doi: 10.7498/aps.63.034305
    [13] Cheng Cong, Wu Fu-Gen, Zhang Xin, Yao Yuan-Wei. Phononic crystal multi-channel low-frequency filter based on locally resonant unit. Acta Physica Sinica, 2014, 63(2): 024301. doi: 10.7498/aps.63.024301
    [14] Zhang Si-Wen, Wu Jiu-Hui. Low-frequency band gaps in phononic crystals with composite locally resonant structures. Acta Physica Sinica, 2013, 62(13): 134302. doi: 10.7498/aps.62.134302
    [15] Liu Min, Hou Zhi-Lin, Fu Xiu-Jun. Local resonant acoustic band gaps in two-dimensional square-arranged Helmholtz resonators array. Acta Physica Sinica, 2012, 61(10): 104302. doi: 10.7498/aps.61.104302
    [16] Wen Qi-Hua, Zuo Shu-Guang, Wei Huan. Locally resonant elastic wave band gaps in flexural vibration of multi-oscillators beam. Acta Physica Sinica, 2012, 61(3): 034301. doi: 10.7498/aps.61.034301
    [17] Chen Sheng-Bing, Han Xiao-Yun, Yu Dian-Long, Wen Ji-Hong. Influences of different types of piezoelectric shunting circuits on band gaps of phononic beam. Acta Physica Sinica, 2010, 59(1): 387-392. doi: 10.7498/aps.59.387
    [18] Li Xiao-Chun, Liang Hong-Yu, Yi Xiu-Ying, Xiao Qing-Wu, Zhao Bao-Xing. The study of two-dimensional composite materials with wide band gap. Acta Physica Sinica, 2007, 56(5): 2784-2789. doi: 10.7498/aps.56.2784
    [19] Hua Jia, Zhang Shu, Cheng Jian-Chun. Mechanism of broad acoustic band-gap in the three-component composite. Acta Physica Sinica, 2005, 54(3): 1261-1266. doi: 10.7498/aps.54.1261
    [20] Wen Ji-Hong, Wang Gang, Liu Yao-Zong, Yu Dian-Long. Lumped-mass method on calculation of elastic band gaps of one-dimensional phononic crystals. Acta Physica Sinica, 2004, 53(10): 3384-3388. doi: 10.7498/aps.53.3384
Metrics
  • Abstract views:  6841
  • PDF Downloads:  434
  • Cited By: 0
Publishing process
  • Received Date:  07 August 2015
  • Accepted Date:  12 November 2015
  • Published Online:  05 March 2016

/

返回文章
返回