Two degree of freedom vibration based electromagnetic energy harvester for bridge health monitoring system

被引:15
作者
Masood Ahmad, Muhammad [1 ]
Ullah Khan, Farid [1 ]
机构
[1] Univ Engn & Technol Peshawar, Dept Mechatron, Phase 5, Peshawar 25000, Kp, Pakistan
关键词
Bridge’ s vibration; electromagnetic; energy harvester; dual transductions; two degree of freedom; low frequency; low acceleration;
D O I
10.1177/1045389X20959459
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
This paper presents an electromagnetic energy harvester to extract low frequency and low acceleration vibration energy available in a bridge environment. The developed harvester is a multi-mode oscillator with dual electromagnetic transduction mechanisms. The harvester consists of two cantilever beams. The first cantilever beam is split into two equal pieces along its length and the second beam placed in between them coming back to the fixed end and attached at outer end to the first beam. This way instead of a long conventional cantilever beam a compact harvester is fabricated. Two magnets as proof masses are attached to each free end of the beam making it a two degree of freedom system (2-DOF). The magnets are positioned to oscillate inside hand wound coils during operation. An analytical model was developed and COMSOL multiphysics was used to simulate the mode shapes of the harvester. The mathematical model was simulated for open circuit voltage in MATLAB and showed closely matching results with the experimental values. The harvester is characterized in lab for its performance under sinusoidal vibrations at low frequency (3 Hz-15 Hz) and low acceleration (0.01-0.09 g) levels. The 2-DOF harvester has two resonant frequencies of 4.4 Hz and 5.5 Hz and a volume of 333 cm(3). It produces maximum voltage of 0.6 V at first resonance on coil-1 and maximum voltage of 1.2 V on coil-2 at second resonance at 0.09 g. At acceleration of 0.09 g the harvester produced 2.51 mW at first resonant frequency and 10.7 mW at second resonance. Moreover, the AC output voltage of the harvester is rectified to DC voltage by a three-stage Cockcroft-Walton multiplier type circuit. The DC power output at 0.05 g was 0.939 mW at first resonance and 0.956 mW at second resonance while maximum voltages of 5.4 V on coil-1 and 4 V on coil-2 were produced.
引用
收藏
页码:516 / 536
页数:21
相关论文
共 55 条
[1]  
Abdel WahabM., 1997, Journal of Structural Engineering, V4, P266
[2]   AMBIENT VIBRATION STUDIES OF GOLDEN GATE BRIDGE .1. SUSPENDED STRUCTURE [J].
ABDELGHAFFAR, AM ;
SCANLAN, RH .
JOURNAL OF ENGINEERING MECHANICS-ASCE, 1985, 111 (04) :463-482
[3]   Improved energy harvesting from low frequency vibrations by resonance amplification at multiple frequencies [J].
Ashraf, K. ;
Khir, M. H. Md ;
Dennis, J. O. ;
Baharudin, Z. .
SENSORS AND ACTUATORS A-PHYSICAL, 2013, 195 :123-132
[4]  
Ashraf K., 2012, POWER MEMS 2012
[5]  
Bakhtiar S., 2019, SCI WORLD J, V2019
[6]  
Bhaskaran Prathish Raaja, 2017, Smart Materials Research, V2017, DOI 10.1155/2017/6084309
[7]   Assessment of Highway Bridge Upgrading by Dynamic Testing and Finite-Element Model Updating [J].
Brownjohn, James Mark William ;
Moyo, Pilate ;
Omenzetter, Piotr ;
Lu, Yong .
JOURNAL OF BRIDGE ENGINEERING, 2003, 8 (03) :162-172
[8]   Vibration energy harvesting based monitoring of an operational bridge undergoing forced vibration and train passage [J].
Cahill, Paul ;
Hazra, Budhaditya ;
Karoumi, Raid ;
Mathewson, Alan ;
Pakrashi, Vikram .
MECHANICAL SYSTEMS AND SIGNAL PROCESSING, 2018, 106 :265-283
[9]   Time-frequency analysis of railway bridge response in forced vibration [J].
Cantero, Daniel ;
Ulker-Kaustell, Mahir ;
Karoumi, Raid .
MECHANICAL SYSTEMS AND SIGNAL PROCESSING, 2016, 76-77 :518-530
[10]   Structural health monitoring and reliability estimation: Long span truss bridge application with environmental monitoring data [J].
Catbas, F. Necati ;
Susoy, Melih ;
Frangopol, Dan M. .
ENGINEERING STRUCTURES, 2008, 30 (09) :2347-2359