Experimental model validation for a nonlinear energy harvester incorporating a bump stop

被引:20
|
作者
Mak, Kuok H. [1 ]
Popov, Atanas A. [1 ]
McWilliam, Stewart [1 ]
机构
[1] Univ Nottingham, Mat Mech & Struct Div, Nottingham NG7 2RD, England
关键词
VIBRATION; ACTUATORS; BEHAVIOR; BEAM;
D O I
10.1016/j.jsv.2012.01.023
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
In some practical applications, cantilever beam piezoelectric energy harvesters are subjected to large amplitude base excitations which induce nonlinear behaviour in the harvester that affects their performance. In this paper, a cantilever piezoelectric energy harvester model is developed which takes account of geometric nonlinearity arising through the inextensible beam condition and material nonlinearity arising in the piezoelectric layers of the harvester. The model is validated against experimental measurements for different base accelerations and load resistances, and an investigation into the nonlinear behaviour indicates that nonlinear softening is caused predominantly by material nonlinearity. To reduce the beam amplitude and the resulting bending stress in the cantilever harvester, a bump stop is incorporated into the harvester design and the influence of the bump stop is modelled. Comparisons of theoretical predictions with experimental measurements indicate that taking account of the nonlinear behaviour improves the prediction significantly in some cases. Parameter studies are also conducted to investigate how the stop location and initial gap size between the harvester and stop affect the performance of the nonlinear energy harvester. (C) 2012 Elsevier Ltd. All rights reserved.
引用
收藏
页码:2602 / 2623
页数:22
相关论文
共 50 条
  • [21] Nonlinear Thermally Buckled Piezoelectric Energy Harvester
    Ansari, M. H.
    Karami, M. Amin
    PROCEEDINGS OF THE ASME INTERNATIONAL DESIGN ENGINEERING TECHNICAL CONFERENCES AND COMPUTERS AND INFORMATION IN ENGINEERING CONFERENCE, 2016, VOL 6, 2016,
  • [22] Nonlinear Thermally Buckled Piezoelectric Energy Harvester
    Ansari, M. H.
    Karami, M. Amin
    ACTIVE AND PASSIVE SMART STRUCTURES AND INTEGRATED SYSTEMS XII, 2018, 10595
  • [23] Electromechanical Modelling and Experimental Verification of Cantilevered Permendur Energy Harvester
    Ghodsi, Mojtaba
    Ziaiefar, Hamidreza
    Alam, Khurshid
    Mohammadzaheri, Morteza
    Al-Yahmedi, Amur
    Ghodsi, Mohammad Hadi
    Omar, Farag K.
    2018 IEEE/ASME INTERNATIONAL CONFERENCE ON ADVANCED INTELLIGENT MECHATRONICS (AIM), 2018, : 1360 - 1365
  • [24] A utility piezoelectric energy harvester with low frequency and high-output voltage: Theoretical model, experimental verification and energy storage
    Zhang, Guangyi
    Gao, Shiqiao
    Liu, Haipeng
    AIP ADVANCES, 2016, 6 (09):
  • [25] Nonlinear characteristic of a circular composite plate energy harvester: experiments and simulations
    Yuan, Tianchen
    Yang, Jian
    Chen, Li-Qun
    NONLINEAR DYNAMICS, 2017, 90 (04) : 2495 - 2506
  • [26] Nonlinear energy harvester with coupled Duffing oscillators
    Karlicic, Danilo
    Cajic, Milan
    Paunovic, Stepa
    Adhikari, Sondipon
    COMMUNICATIONS IN NONLINEAR SCIENCE AND NUMERICAL SIMULATION, 2020, 91
  • [27] A nonlinear energy sink with an energy harvester: Harmonically forced responses
    Kremer, Daniel
    Liu, Kefu
    JOURNAL OF SOUND AND VIBRATION, 2017, 410 : 287 - 302
  • [28] Theoretical modelling and experimental investigation on a frequency up-converted nonlinear piezoelectric energy harvester
    Cheng, Qianju
    Lv, Zean
    Liu, Zhi
    Wang, Qingmeng
    SENSORS AND ACTUATORS A-PHYSICAL, 2022, 347
  • [30] Nonlinear Dynamic Response of Galfenol Cantilever Energy Harvester Considering Geometric Nonlinear with a Nonlinear Energy Sink
    Wang, Lingzhi
    Liu, Chao
    Liu, Weidong
    Yan, Zhitao
    Nie, Xiaochun
    BUILDINGS, 2024, 14 (05)