Fabrication and characterization of non-resonant magneto mechanical low-frequency vibration energy harvester

被引:71
作者
Nammari, Abdullah [1 ]
Caskey, Logan [1 ]
Negrete, Johnny [1 ]
Bardaweel, Hamzeh [1 ]
机构
[1] Louisiana Tech Univ, Coll Engn & Sci, Inst Micromfg, Mech Engn Program, Ruston, LA 71272 USA
基金
美国国家科学基金会;
关键词
Nonlinear energy harvester; Magnetic levitation; Broadband harvester; Magneto-mechanical energy harvester; Magnetic springs; MICRO-POWER GENERATOR; OPTIMIZATION; COULOMB; SYSTEMS; DESIGN;
D O I
10.1016/j.ymssp.2017.09.036
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
This article presents a non-resonant magneto-mechanical vibration energy harvester. When externally excited, the energy harvester converts vibrations into electric charge using a guided levitated magnet oscillating inside a multi-turn coil that is fixed around the exterior of the energy harvester. The levitated magnet is guided using four oblique mechanical springs. A prototype of the energy harvester is fabricated using additive manufacturing. Both experiment and model are used to characterize the static and dynamic behavior of the energy harvester. Measured restoring forces show that the fabricated energy harvester retains a mono-stable potential energy well with desired stiffness nonlinearities. Results show that magnetic spring results in hardening effect which increases the resonant frequency of the energy harvester. Additionally, oblique mechanical springs introduce geometric, negative, nonlinear stiffness which improves the harvester's response towards lower frequency spectrum. The unique design can produce a tunable energy harvester with multi-well potential energy characteristics. A finite element model is developed to estimate the average radial flux density experienced by the multi-turn coil. Also, a lumped parameter model of the energy harvester is developed and validated against measured data. Both upward and downward frequency sweeps are performed to determine the frequency response of the harvester. Results show that at higher excitation levels hardening effects become more apparent, and the system dynamic response turns into non-resonant. Frequency response curves exhibit frequency jump phenomena as a result of coexistence of multiple energy states at the frequency branch. The fabricated energy harvester is hand-held and measures approximately 100.5 [cm(3)] total volume. For a base excitation of 1.0 g [m/s(2)], the prototype generates a peak voltage and normalized power density of approximately 3.5 [V] and 0.133 [mW/cm(3) g(2)], respectively, at 15.5 [Hz]. (C) 2017 Elsevier Ltd. All rights reserved.
引用
收藏
页码:298 / 311
页数:14
相关论文
共 44 条
[1]  
[Anonymous], 2011, DUFFING EQUATION NON, DOI DOI 10.1002/9780470977859
[2]   High Power Density Levitation-Induced Vibration Energy Harvester [J].
Apo, Daniel J. ;
Priya, Shashank .
Energy Harvesting and Systems, 2014, 1 (1-2) :79-88
[3]   Energy harvesting vibration sources for microsystems applications [J].
Beeby, S. P. ;
Tudor, M. J. ;
White, N. M. .
MEASUREMENT SCIENCE AND TECHNOLOGY, 2006, 17 (12) :R175-R195
[4]   Design and optimization of a magnetically sprung block magnet vibration energy harvester [J].
Berdy, D. F. ;
Valentino, D. J. ;
Peroulis, D. .
SENSORS AND ACTUATORS A-PHYSICAL, 2014, 218 :69-79
[5]   The "click" mechanism in dipteran flight: if it exists, then what effect does it have? [J].
Brennan, MJ ;
Elliott, SJ ;
Bonello, P ;
Vincent, JFV .
JOURNAL OF THEORETICAL BIOLOGY, 2003, 224 (02) :205-213
[6]   Analysis of compliance effects on power generation of a nonlinear electromagnetic energy harvesting unit; theory and experiment [J].
Chen, Yan ;
Pollock, Tim E. ;
Salehian, Armaghan .
SMART MATERIALS AND STRUCTURES, 2013, 22 (09)
[7]   A 3D printed electromagnetic nonlinear vibration energy harvester [J].
Constantinou, P. ;
Roy, S. .
SMART MATERIALS AND STRUCTURES, 2016, 25 (09)
[8]   Enhanced vibrational energy harvester based on velocity amplification [J].
Cottone, Francesco ;
Frizzell, Ronan ;
Goyal, Suresh ;
Kelly, Gerard ;
Punch, Jeff .
JOURNAL OF INTELLIGENT MATERIAL SYSTEMS AND STRUCTURES, 2014, 25 (04) :443-451
[9]  
Craik DJ, 2003, MAGNETISM PRINCIPLES, P468
[10]   Simulated and experimental studies on a high-static-low-dynamic stiffness isolator using magnetic negative stiffness spring [J].
Dong, Guangxu ;
Zhang, Xinong ;
Xie, Shilin ;
Yan, Bo ;
Luo, Yajun .
MECHANICAL SYSTEMS AND SIGNAL PROCESSING, 2017, 86 :188-203