An arch-linear composed beam piezoelectric energy harvester with magnetic coupling: Design, modeling and dynamic analysis

被引:29
作者
Chen, Xiaoyu [1 ,3 ]
Zhang, Xuhui [1 ,2 ]
Wang, Lin [1 ]
Chen, Luyang [1 ]
机构
[1] Xian Univ Sci & Technol, Coll Mech Engn, Xian 710054, Peoples R China
[2] Shaanxi Key Lab Mine Electromech Equipment Intell, Xian 710054, Peoples R China
[3] Zunyi Normal Coll, Coll Engn, Zunyi 563006, Peoples R China
关键词
Energy harvesting; Arch-linear configuration; Bistable characteristic; Dynamic behavior; PERFORMANCE; SINGLE; FORCE; SHAPE;
D O I
10.1016/j.jsv.2021.116394
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
A novel bistable piezoelectric energy harvester (BPEH-C) is constructed by introducing a nonlinear magnetic force on an arch-linear composed beam. The nonlinear magnetic model is obtained by using equivalent magnetizing current method, and the nonlinear restoring force model of the arch-linear composed beam is acquired based on fitting experimental data. The corresponding coupled governing equations are derived by using generalized Hamilton principle. The dynamic responses are obtained by solving the coupling equations with the ode45 method, and the effect mechanism of the excitation frequency and amplitude on large-amplitude periodic response is discussed and analyzed via the bifurcation diagram, the maximum Lyapunov exponent diagram, and the Poincare ' map. Moreover, the correctness of the theoretical analyses is qualitatively verified by experiments. The results reveal that the threshold excitation amplitude for the system to realize large-amplitude interwell oscillation is increased with the increasing of the excitation frequency, if the system starts with appropriate excitation level, it can do largeamplitude interwell oscillations at low excitation frequency. Compared with the non-magnet energy harvester, the BPEH-C has much better energy harvesting performance owing to the nonlinear magnetic force being efficiently introduced to broaden bandwidth. The arch-linear composed beam is superior to the conventional straight beam in enhancing output voltage and power. Overall, introducing the arch-linear composed beam into the bistable piezoelectric energy harvesting system contributes to enhance power output, improve energy harvesting performance of the piezoelectric energy harvester.
引用
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页数:19
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共 42 条
[21]   Application of wireless sensor network for environmental monitoring in underground coal mines: A systematic review [J].
Muduli, Lalatendu ;
Mislira, Devi Prasad ;
Jana, Prisanta K. .
JOURNAL OF NETWORK AND COMPUTER APPLICATIONS, 2018, 106 :48-67
[22]   Optimal piezoelectric beam shape for single and broadband vibration energy harvesting: Modeling, simulation and experimental results [J].
Muthalif, Asan G. A. ;
Nordin, N. H. Diyana .
MECHANICAL SYSTEMS AND SIGNAL PROCESSING, 2015, 54-55 :417-426
[23]   Ambient vibration energy harvesters: A review on nonlinear techniques for performance enhancement [J].
Ngan Tran ;
Ghayesh, Mergen H. ;
Arjomandi, Maziar .
INTERNATIONAL JOURNAL OF ENGINEERING SCIENCE, 2018, 127 :162-185
[24]   Analytical and finite-element study of optimal strain distribution in various beam shapes for energy harvesting applications [J].
Ooi, B. L. ;
Gilbert, J. M. ;
Aziz, A. Rashid A. .
ACTA MECHANICA SINICA, 2016, 32 (04) :670-683
[25]   Design and analysis of high output piezoelectric energy harvester using non uniform beam [J].
Raju, S. Srinivasulu ;
Umapathy, M. ;
Uma, G. .
MECHANICS OF ADVANCED MATERIALS AND STRUCTURES, 2020, 27 (03) :218-227
[26]   Nonlinear vibration energy harvester: Design and oscillating stability analyses [J].
Rubes, Ondrej ;
Brablc, Martin ;
Hadas, Zdenek .
MECHANICAL SYSTEMS AND SIGNAL PROCESSING, 2019, 125 :170-184
[27]   Novel modeling of circular piezoelectric devices as vibration suppresser and energy harvester [J].
Saadatinasab, Ahmad ;
Afsharfard, Aref .
JOURNAL OF MECHANICAL SCIENCE AND TECHNOLOGY, 2019, 33 (05) :2029-2035
[28]   A distributed-parameter electromechanical coupling model for a piezoelectric energy harvester with variable curvature [J].
Wang, Biao ;
Li, Zhongjie ;
Yang, Zhengbao .
SMART MATERIALS AND STRUCTURES, 2020, 29 (11)
[29]   Thickness-variable composite beams for vibration energy harvesting [J].
Wang, Biao ;
Luo, Xiaowei ;
Liu, Yizhong ;
Yang, Zhengbao .
COMPOSITE STRUCTURES, 2020, 244
[30]   Nonlinear magnetic force and dynamic characteristics of a tri-stable piezoelectric energy harvester [J].
Wang, Guangqing ;
Liao, Wei-Hsin ;
Zhao, Zexiang ;
Tan, Jiangping ;
Cui, Sujuan ;
Wu, Haiqiang ;
Wang, Wei .
NONLINEAR DYNAMICS, 2019, 97 (04) :2371-2397