A review of power harvesting using piezoelectric materials (2003-2006)

被引:2119
作者
Anton, Steven R. [1 ]
Sodano, Henry A.
机构
[1] Virginia Polytech Inst & State Univ, Ctr Intelligent Mat Syst & Struct, Blacksburg, VA 24061 USA
[2] Michigan Technol Univ, Dept Mech Engn Engn Mech, Houghton, MI 49931 USA
关键词
CLAMPED CIRCULAR PLATE; FILM PZT MEMBRANE; BAND-PASS FILTERS; ENERGY; GENERATION; OPTIMIZATION; PERFORMANCE; DEVICES; DESIGN; TRANSDUCERS;
D O I
10.1088/0964-1726/16/3/R01
中图分类号
TH7 [仪器、仪表];
学科分类号
0804 ; 080401 ; 081102 ;
摘要
The field of power harvesting has experienced significant growth over the past few years due to the ever-increasing desire to produce portable and wireless electronics with extended lifespans. Current portable and wireless devices must be designed to include electrochemical batteries as the power source. The use of batteries can be troublesome due to their limited lifespan, thus necessitating their periodic replacement. In the case of wireless sensors that are to be placed in remote locations, the sensor must be easily accessible or of a disposable nature to allow the device to function over extended periods of time. Energy scavenging devices are designed to capture the ambient energy surrounding the electronics and convert it into usable electrical energy. The concept of power harvesting works towards developing self-powered devices that do not require replaceable power supplies. A number of sources of harvestable ambient energy exist, including waste heat, vibration, electromagnetic waves, wind, flowing water, and solar energy. While each of these sources of energy can be effectively used to power remote sensors, the structural and biological communities have placed an emphasis on scavenging vibrational energy with piezoelectric materials. This article will review recent literature in the field of power harvesting and present the current state of power harvesting in its drive to create completely self-powered devices.
引用
收藏
页码:R1 / R21
页数:21
相关论文
共 90 条
[1]  
Ammar Y., 2005, sOc-EUSAI '05, P287
[2]  
ANDERSON TA, 2006, P SPIE, V6174
[3]   Power management for energy harvesting wireless sensors [J].
Arms, SW ;
Townsend, CP ;
Churchill, DL ;
Galbreath, JH ;
Mundell, SW .
SMART STRUCTURES AND MATERIALS 2005: SMART ELECTRONICS, MEMS, BIOMEMS, AND NANOTECHNOLOGY, 2005, 5763 :267-275
[4]   Energy scavenging for sensor applications using structural strains [J].
Ayers, JP ;
Greve, DW ;
Oppenheim, IJ .
SMART STRUCTURES AND MATERIALS 2003: SMART SYSTEMS AND NONDESTRUCTIVE EVALUATION FOR CIVIL INFRASTRUCTURES, 2003, 5057 :364-375
[5]   Efficiency enhancement of a piezoelectric energy harvesting device in pulsed operation by synchronous charge inversion [J].
Badel, A ;
Guyomar, D ;
Lefeuvre, E ;
Richard, C .
JOURNAL OF INTELLIGENT MATERIAL SYSTEMS AND STRUCTURES, 2005, 16 (10) :889-901
[6]  
Baker J., 2005, Proceedings of the Third International Energy Conversion Conference, P959
[7]   Low frequency wireless powering of microsystems using piezoelectric-magnetostrictive laminate composites [J].
Bayrashev, A ;
Robbins, WP ;
Ziaie, B .
SENSORS AND ACTUATORS A-PHYSICAL, 2004, 114 (2-3) :244-249
[8]   ANISOTROPIC ACTUATION WITH PIEZOELECTRIC FIBER COMPOSITES [J].
BENT, AA ;
HAGOOD, NW ;
RODGERS, JP .
JOURNAL OF INTELLIGENT MATERIAL SYSTEMS AND STRUCTURES, 1995, 6 (03) :338-349
[9]   Optimization of electromechanical coupling for a thin-film PZT membrane: II. Experiment [J].
Cho, J ;
Anderson, M ;
Richards, R ;
Bahr, D ;
Richards, C .
JOURNAL OF MICROMECHANICS AND MICROENGINEERING, 2005, 15 (10) :1804-1809
[10]   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