Electrode Coverage Optimization for Piezoelectric Energy Harvesting from Tip Excitation

被引:28
作者
Fu, Hailing [1 ]
Chen, Guangzhu [2 ]
Bai, Nan [2 ]
机构
[1] Imperial Coll London, Dept Aeronaut, Exhibit Rd, London SW7 2AZ, England
[2] Chengdu Univ Technol, Coll Nucl Technol & Automat Engn, Chengdu 610059, Sichuan, Peoples R China
关键词
piezoelectric; electrode coverage; energy harvesting; cantilever beam; tip excitation; distributed parameter modelling; DESIGN; MINIATURE; GENERATOR;
D O I
10.3390/s18030804
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
Piezoelectric energy harvesting using cantilever-type structures has been extensively investigated due to its potential application in providing power supplies for wireless sensor networks, but the low output power has been a bottleneck for its further commercialization. To improve the power conversion capability, a piezoelectric beam with different electrode coverage ratios is studied theoretically and experimentally in this paper. A distributed-parameter theoretical model is established for a bimorph piezoelectric beam with the consideration of the electrode coverage area. The impact of the electrode coverage on the capacitance, the output power and the optimal load resistance are analyzed, showing that the piezoelectric beam has the best performance with an electrode coverage of 66.1%. An experimental study was then carried out to validate the theoretical results using a piezoelectric beam fabricated with segmented electrodes. The experimental results fit well with the theoretical model. A 12% improvement on the Root-Mean-Square (RMS) output power was achieved with the optimized electrode converge ratio (66.1%). This work provides a simple approach to utilizing piezoelectric beams in a more efficient way.
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页数:14
相关论文
共 41 条
[1]   3D ANALYTICAL CALCULATION OF THE FORCES EXERTED BETWEEN 2 CUBOIDAL MAGNETS [J].
AKOUN, G ;
YONNET, JP .
IEEE TRANSACTIONS ON MAGNETICS, 1984, 20 (05) :1962-1964
[2]  
[Anonymous], 2011, PIEZOELECTRIC ENERGY, DOI DOI 10.1002/9781119991151.APP1
[3]   Piezoelectric and ferroelectric materials and structures for energy harvesting applications [J].
Bowen, C. R. ;
Kim, H. A. ;
Weaver, P. M. ;
Dunn, S. .
ENERGY & ENVIRONMENTAL SCIENCE, 2014, 7 (01) :25-44
[4]   Alternating Resistive Impedance Matching for an Impact-Type Microwind Piezoelectric Energy Harvester [J].
Chen, Nan ;
Wei, Tingcun ;
Ha, Dong Sam ;
Jung, Hyun Jun ;
Lee, Soobum .
IEEE TRANSACTIONS ON INDUSTRIAL ELECTRONICS, 2018, 65 (09) :7374-7382
[5]   A piezoelectric impact-induced vibration cantilever energy harvester from speed bump with a low-power power management circuit [J].
Chen, Nan ;
Jung, Hyun Jun ;
Jabbar, Hamid ;
Sung, Tae Hyun ;
Wei, Tingcun .
SENSORS AND ACTUATORS A-PHYSICAL, 2017, 254 :134-144
[6]   Fully Integrated Inductor-Less Flipping-Capacitor Rectifier for Piezoelectric Energy Harvesting [J].
Chen, Zhiyuan ;
Law, Man-Kay ;
Mak, Pui-In ;
Ki, Wing-Hung ;
Martins, Rui P. .
IEEE JOURNAL OF SOLID-STATE CIRCUITS, 2017, 52 (12) :3168-3180
[7]   Optimization of electromechanical coupling for a thin-film PZT membrane: I. Modeling [J].
Cho, J ;
Anderson, M ;
Richards, R ;
Bahr, D ;
Richards, C .
JOURNAL OF MICROMECHANICS AND MICROENGINEERING, 2005, 15 (10) :1797-1803
[8]   Piezoaeroelastic Modeling and Analysis of a Generator Wing with Continuous and Segmented Electrodes [J].
De Marqui, Carlos, Jr. ;
Erturk, Alper ;
Inman, Daniel J. .
JOURNAL OF INTELLIGENT MATERIAL SYSTEMS AND STRUCTURES, 2010, 21 (10) :983-993
[9]   A new energy harvester design for high power output at low frequencies [J].
Dhakar, Lokesh ;
Liu, Huicong ;
Tay, F. E. H. ;
Lee, Chengkuo .
SENSORS AND ACTUATORS A-PHYSICAL, 2013, 199 :344-352
[10]   Power-Extraction Circuits for Piezoelectric Energy Harvesters in Miniature and Low-Power Applications [J].
Dicken, James ;
Mitcheson, Paul D. ;
Stoianov, Ivan ;
Yeatman, Eric M. .
IEEE TRANSACTIONS ON POWER ELECTRONICS, 2012, 27 (11) :4514-4529