Energy harvesting vibration sources for microsystems applications

被引:2271
作者
Beeby, S. P. [1 ]
Tudor, M. J. [1 ]
White, N. M. [1 ]
机构
[1] Univ Southampton, Sch Elect & Comp Sci, Southampton SO17 1BJ, Hants, England
基金
英国工程与自然科学研究理事会;
关键词
energy harvesting review; vibration power; self-powered systems; power scavenging;
D O I
10.1088/0957-0233/17/12/R01
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
This paper reviews the state-of-the art in vibration energy harvesting for wireless, self-powered microsystems. Vibration-powered generators are typically, although not exclusively, inertial spring and mass systems. The characteristic equations for inertial-based generators are presented, along with the specific damping equations that relate to the three main transduction mechanisms employed to extract energy from the system. These transduction mechanisms are: piezoelectric, electromagnetic and electrostatic. Piezoelectric generators employ active materials that generate a charge when mechanically stressed. A comprehensive review of existing piezoelectric generators is presented, including impact coupled, resonant and human-based devices. Electromagnetic generators employ electromagnetic induction arising from the relative motion between a magnetic flux gradient and a conductor. Electromagnetic generators presented in the literature are reviewed including large scale discrete devices and wafer-scale integrated versions. Electrostatic generators utilize the relative movement between electrically isolated charged capacitor plates to generate energy. The work done against the electrostatic force between the plates provides the harvested energy. Electrostatic-based generators are reviewed under the classifications of in-plane overlap varying, in-plane gap closing and out-of-plane gap closing; the Coulomb force parametric generator and electret-based generators are also covered. The coupling factor of each transduction mechanism is discussed and all the devices presented in the literature are summarized in tables classified by transduction type; conclusions are drawn as to the suitability of the various techniques.
引用
收藏
页码:R175 / R195
页数:21
相关论文
共 109 条
  • [31] On the efficiency of electric power generation with piezoelectric ceramic
    Goldfarb, M
    Jones, LD
    [J]. JOURNAL OF DYNAMIC SYSTEMS MEASUREMENT AND CONTROL-TRANSACTIONS OF THE ASME, 1999, 121 (03): : 566 - 571
  • [32] González JL, 2001, PROCEEDINGS OF THE FOURTH INTERNATIONAL CONFERENCE ON MATERIALS ENGINEERING FOR RESOURCES, VOL 1, P202
  • [33] Microgenerators for energy autarkic pacemakers and defibrillators:: Fact or fiction?
    Görge, G
    Kirstein, M
    Erbel, R
    [J]. HERZ, 2001, 26 (01) : 64 - 68
  • [34] Hellbaum R. F., 1997, US Patent, Patent No. [5 632 841, 5632841]
  • [35] New, high-sensitivity, hybrid magnetostrictive/electroactive magnetic field sensors
    Huang, JK
    O'Handley, RC
    Bono, D
    [J]. SMART STRUCTURES AND MATERIALS 2003: SMART SENSOR TECHNOLOGY AND MEASUREMENT SYSTEMS, 2003, 5050 : 229 - 237
  • [36] HUANG WS, 2003, P EUR 17 GUIM PORT, P695
  • [37] IEEE, 2003, 802154 IEEE
  • [38] JACOBSON SA, 2003, P INT S MICR ENG ISM, pK18
  • [39] MEMS power generator with transverse mode thin film PZT
    Jeon, YB
    Sood, R
    Jeong, JH
    Kim, SG
    [J]. SENSORS AND ACTUATORS A-PHYSICAL, 2005, 122 (01) : 16 - 22
  • [40] LOW-COST MINIATURE THERMOELECTRIC GENERATOR
    KIELY, JJ
    MORGAN, DV
    ROWE, DM
    HUMPHREY, JM
    [J]. ELECTRONICS LETTERS, 1991, 27 (25) : 2332 - 2334