Low-Power Design of a Self-powered Piezoelectric Energy Harvesting System With Maximum Power Point Tracking

被引:156
作者
Kong, Na [1 ]
Ha, Dong Sam [1 ]
机构
[1] Virginia Tech, Dept Elect & Comp Engn, Blacksburg, VA 24061 USA
关键词
Impedance matching; piezoelectric transducers; power conditioning; power conversion; pulse frequency modulation; CIRCUIT; CONVERTER; OPTIMIZATION; RECTIFIER;
D O I
10.1109/TPEL.2011.2172960
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
A low-power energy harvesting system targeting to harvest several milliwatts from vibration is presented in this paper. Several low-power design schemes to reduce power dissipation of the proposed system are described, and sources of power loss are analyzed to improve the power efficiency. A discontinuous conduction mode (DCM) flyback converter with the constant on-time modulation is adopted for our system. The DCM operation of a flyback converter is chosen as for maximum power point tracking (MPPT) to be implemented with a single current sensor. The constant on-time modulation lowers the clock frequency of the controller by more than an order of magnitude for our system, which reduces the dynamic power dissipation of the controller. MPPT, executed by amicrocontroller unit (MCU), is achieved through dynamic resistive matching, and the MPPT is executed at intermittent time intervals due to a relatively slow change of the operating condition. When MPPT is not active, the MCU operates at a lower clock frequency to save power. Experimental results indicate that the proposed system harvests up to 8.4 mW power under 0.5-g base acceleration with four parallel piezoelectric cantilevers and achieves 72% power efficiency around the resonant frequency of 47 Hz.
引用
收藏
页码:2298 / 2308
页数:11
相关论文
共 31 条
[21]   High resolution digital duty cycle modulation schemes for voltage regulators [J].
Li, Jian ;
Qiu, Yang ;
Sun, Yi ;
Huang, Bin ;
Xu, Ming ;
Ha, Dong S. ;
Lee, Fred C. .
APEC 2007: TWENTY-SECOND ANNUAL IEEE APPLIED POWER ELECTRONICS CONFERENCE AND EXPOSITION, VOLS 1 AND 2, 2007, :871-+
[22]   Adaptive piezoelectric energy harvesting circuit for wireless remote power supply [J].
Ottman, GK ;
Hofmann, HF ;
Bhatt, AC ;
Lesieutre, GA .
IEEE TRANSACTIONS ON POWER ELECTRONICS, 2002, 17 (05) :669-676
[23]   Optimized piezoelectric energy harvesting circuit using step-down converter in discontinuous conduction mode [J].
Ottman, GK ;
Hofmann, HF ;
Lesieutre, GA .
IEEE TRANSACTIONS ON POWER ELECTRONICS, 2003, 18 (02) :696-703
[24]   Resistor emulation approach to low-power RF energy harvesting [J].
Paing, Thurein ;
Shin, Jason ;
Zane, Regan ;
Popovic, Zoya .
IEEE TRANSACTIONS ON POWER ELECTRONICS, 2008, 23 (03) :1494-1501
[25]   An Efficient Piezoelectric Energy Harvesting Interface Circuit Using a Bias-Flip Rectifier and Shared Inductor [J].
Ramadass, Yogesh K. ;
Chandrakasan, Anantha P. .
IEEE JOURNAL OF SOLID-STATE CIRCUITS, 2010, 45 (01) :189-204
[26]   Semi-passive damping using continuous switching of a piezoelectric device [J].
Richard, C ;
Guyomar, D ;
Audigier, D ;
Ching, G .
SMART STRUCTURES AND MATERIALS 1999: PASSIVE DAMPING AND ISOLATION, 1999, 3672 :104-111
[27]   Improving power output for vibration-based energy scavengers [J].
Roundy, S ;
Leland, ES ;
Baker, J ;
Carleton, E ;
Reilly, E ;
Lai, E ;
Otis, B ;
Rabaey, JM ;
Wright, PK ;
Sundararajan, V .
IEEE PERVASIVE COMPUTING, 2005, 4 (01) :28-36
[28]   A Low-Power Stand-Alone Adaptive Circuit for Harvesting Energy From a Piezoelectric Micropower Generator [J].
Tabesh, Ahmadreza ;
Frechette, Luc G. .
IEEE TRANSACTIONS ON INDUSTRIAL ELECTRONICS, 2010, 57 (03) :840-849
[29]   Optimized Wind Energy Harvesting System Using Resistance Emulator and Active Rectifier for Wireless Sensor Nodes [J].
Tan, Yen Kheng ;
Panda, Sanjib Kumar .
IEEE TRANSACTIONS ON POWER ELECTRONICS, 2011, 26 (01) :38-50
[30]  
Vullers R., 2010, IEEE Solid-State Circuits Magazine, V2, P29, DOI DOI 10.1109/MSSC.2010.936667