Vibration Energy Harvesting Using Piezoelectric Elements by Multi-switch Circuit with Adaptive Inductance

被引:0
作者
Hatam, Salar [1 ]
Mohammadi, Saber [1 ]
Khodayari, Akram [1 ]
机构
[1] Razi Univ, Sch Mech Engn, Kermanshah 6714967346, Iran
关键词
Electrical resonance; energy harvesting; impedance matching; mechanical vibrations; piezoelectric materials; POWER OPTIMIZATION; GENERATORS; OUTPUT;
D O I
10.1007/s12555-020-0101-x
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
Mechanical vibration energy harvesting using multi-switch circuit with adaptive inductance is a new method based on impedance matching between electrical circuit and mechanical vibrating system in order to maximize the harvested energy. Considering a vibrating piezoelectric element in parallel with a load resistance, the whole converted energy is not dissipated or flowed into the load resistance and a remarkable portion of this energy is stored on the internal capacitor of the piezoelectric. By connecting the vibrating piezoelectric to a special interface circuit, approximately the whole stored energy portion on the piezoelectric flows into the circuit. The proposed interface circuit contains a set of inductors in series with electronic switches that controlled by a microcontroller which always provides resonance condition in the designed frequency range. In the proposed technique, for a simulated piezoelectric generator with a constant current source in the design frequency range of 100 to 700 Hz, the harvested power of numerical analysis is 2 to 10 times (depending on frequency) more than standard method (simple resistive circuit). Harvested power in the exprimental test for a cantilever piezoelectric plate in the design frequency of 100 to 350 Hz, is 4.5 times more than standard method.
引用
收藏
页码:3657 / 3665
页数:9
相关论文
共 32 条
[11]  
Durbin SM., 2012, FREQUENCY RESPONSE E
[12]   Finite element based system simulation for piezoelectric vibration energy harvesting devices [J].
Gedeon, Dominik ;
Rupitsch, Stefan J. .
JOURNAL OF INTELLIGENT MATERIAL SYSTEMS AND STRUCTURES, 2018, 29 (07) :1333-1347
[13]   Semi-passive random vibration control based on statistics [J].
Guyomar, D. ;
Richard, C. ;
Mohammadi, S. .
JOURNAL OF SOUND AND VIBRATION, 2007, 307 (3-5) :818-833
[14]   Recent Progress in Piezoelectric Conversion and Energy Harvesting Using Nonlinear Electronic Interfaces and Issues in Small Scale Implementation [J].
Guyomar, Daniel ;
Lallart, Mickael .
MICROMACHINES, 2011, 2 (02) :274-294
[15]   Anthropomorphic robotic soft fingertip with randomly distributed receptors [J].
Hosoda, K ;
Tada, Y ;
Asada, M .
ROBOTICS AND AUTONOMOUS SYSTEMS, 2006, 54 (02) :104-109
[16]   A comparison between several vibration-powered piezoelectric generators for standalone systems [J].
Lefeuvre, E ;
Badel, A ;
Richard, C ;
Petit, L ;
Guyomar, D .
SENSORS AND ACTUATORS A-PHYSICAL, 2006, 126 (02) :405-416
[17]   Buck-boost converter for sensorless power optimization of piezoelectric energy harvester [J].
Lefeuvre, Elie ;
Audigier, David ;
Richard, Claude ;
Guyomar, Daniel .
IEEE TRANSACTIONS ON POWER ELECTRONICS, 2007, 22 (05) :2018-2025
[18]   Signal Transformed Internal Model Control for Non-raster Scanning of Piezo-actuated Nanopositioning Stages [J].
Ling, Jie ;
Feng, Zhao ;
Ming, Min ;
Guo, Zhao ;
Xiao, Xiaohui .
INTERNATIONAL JOURNAL OF CONTROL AUTOMATION AND SYSTEMS, 2020, 18 (08) :1915-1925
[19]   Active Piezoelectric Energy Harvesting: General Principle and Experimental Demonstration [J].
Liu, Yiming ;
Tian, Geng ;
Wang, Yong ;
Lin, Junhong ;
Zhang, Qiming ;
Hofmann, Heath F. .
JOURNAL OF INTELLIGENT MATERIAL SYSTEMS AND STRUCTURES, 2009, 20 (05) :575-585
[20]   Synthetic and Bio-Artificial Tactile Sensing: A Review [J].
Lucarotti, Chiara ;
Oddo, Calogero Maria ;
Vitiello, Nicola ;
Carrozza, Maria Chiara .
SENSORS, 2013, 13 (02) :1435-1466