Plucked piezoelectric bimorphs for knee-joint energy harvesting: modelling and experimental validation

被引:146
作者
Pozzi, Michele [1 ]
Zhu, Meiling [1 ]
机构
[1] Cranfield Univ, Sch Appl Sci, Dept Mat, Cranfield MK43 0AL, Beds, England
基金
英国工程与自然科学研究理事会;
关键词
D O I
10.1088/0964-1726/20/5/055007
中图分类号
TH7 [仪器、仪表];
学科分类号
0804 ; 080401 ; 081102 ;
摘要
The modern drive towards mobility and wireless devices is motivating intensive research in energy harvesting technologies. To reduce the battery burden on people, we propose the adoption of a frequency up-conversion strategy for a new piezoelectric wearable energy harvester. Frequency up-conversion increases efficiency because the piezoelectric devices are permitted to vibrate at resonance even if the input excitation occurs at much lower frequency. Mechanical plucking-based frequency up-conversion is obtained by deflecting the piezoelectric bimorph via a plectrum, then rapidly releasing it so that it can vibrate unhindered; during the following oscillatory cycles, part of the mechanical energy is converted into electrical energy. In order to guide the design of such a harvester, we have modelled with finite element methods the response and power generation of a piezoelectric bimorph while it is plucked. The model permits the analysis of the effects of the speed of deflection as well as the prediction of the energy produced and its dependence on the electrical load. An experimental rig has been set up to observe the response of the bimorph in the harvester. A PZT-5H bimorph was used for the experiments. Measurements of tip velocity, voltage output and energy dissipated across a resistor are reported. Comparisons of the experimental results with the model predictions are very successful and prove the validity of the model.
引用
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页数:10
相关论文
共 15 条
[1]   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
[2]  
Cavallier B, 2005, ULTRASON, P943
[3]   Development of micro power generators - A review [J].
Chou, S. K. ;
Yang, W. M. ;
Chua, K. J. ;
Li, J. ;
Zhang, K. L. .
APPLIED ENERGY, 2011, 88 (01) :1-16
[4]   A Timoshenko beam model for cantilevered piezoelectric energy harvesters [J].
Dietl, J. M. ;
Wickenheiser, A. M. ;
Garcia, E. .
SMART MATERIALS AND STRUCTURES, 2010, 19 (05)
[5]   Biomechanical energy harvesting: Generating electricity during walking with minimal user effort [J].
Donelan, J. M. ;
Li, Q. ;
Naing, V. ;
Hoffer, J. A. ;
Weber, D. J. ;
Kuo, A. D. .
SCIENCE, 2008, 319 (5864) :807-810
[6]   A distributed parameter electromechanical model for cantilevered piezoelectric energy harvesters [J].
Erturk, A. ;
Inman, D. J. .
JOURNAL OF VIBRATION AND ACOUSTICS-TRANSACTIONS OF THE ASME, 2008, 130 (04)
[7]   Piezoelectric energy harvesting [J].
Howells, Christopher A. .
ENERGY CONVERSION AND MANAGEMENT, 2009, 50 (07) :1847-1850
[8]   Modeling of electric energy harvesting using piezoelectric windmill [J].
Priya, S .
APPLIED PHYSICS LETTERS, 2005, 87 (18) :1-3
[9]   Piezoelectric-based power sources for harvesting energy from platforms with low frequency vibration [J].
Rastegar, J. ;
Pereira, C. ;
Nguyen, H-L. .
SMART STRUCTURES AND MATERIALS 2006: INDUSTRIAL AND COMMERCIAL APPLICATIONS OF SMART STRUCTURES TECHNOLOGIES, 2006, 6171
[10]  
RASTEGAR J, 2009, P SPIE, V7288