Damping as a result of piezoelectric energy harvesting

被引:243
作者
Lesieutre, GA
Ottman, GK
Hofmann, HF
机构
[1] Penn State Univ, Ctr Acoust & Vibrat, Dept Aerosp Engn, University Pk, PA 16802 USA
[2] Penn State Univ, Dept Elect Engn, University Pk, PA 16802 USA
关键词
D O I
10.1016/S0022-460X(03)00210-4
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
Systems that harvest or scavenge energy from their environments are of considerable interest for use in remote power supplies. A class of such systems exploits the motion or deformation associated with vibration, converting the mechanical energy to electrical, and storing it for later use; some of these systems use piezoelectric materials-for the direct conversion of strain energy to electrical energy. The removal of mechanical energy from a vibrating structure necessarily results in damping. This research addresses the damping associated with a piezoelectric energy harvesting system that consists of a full-bridge rectifier, a filter capacitor, a switching DC-DC step-down converter, and a battery. Under conditions of harmonic forcing, the effective modal loss factor depends on: (1) the electromechanical coupling coefficient of the piezoelectric system; and (2) the ratio of the rectifier output voltage during operation to its maximum open-circuit value. When the DC-DC converter is maximizing power flow to the battery, this voltage ratio is very nearly 1/2, and the loss factor depends only on the coupling coefficient. Experiments on a base-driven piezoelectric cantilever, having a system coupling coefficient of 26%, yielded an effective loss factor for the fundamental vibration mode of 2.2%, in excellent agreement with theory. (C) 2003 Elsevier Science Ltd. All rights reserved.
引用
收藏
页码:991 / 1001
页数:11
相关论文
共 11 条
  • [1] Design considerations for distributed microsensor systems
    Chandrakasan, A
    Amirtharajah, R
    Cho, SH
    Goodman, J
    Konduri, G
    Kulik, J
    Rabiner, W
    Wang, A
    [J]. PROCEEDINGS OF THE IEEE 1999 CUSTOM INTEGRATED CIRCUITS CONFERENCE, 1999, : 279 - 286
  • [2] A MODAL STRAIN-ENERGY APPROACH TO THE PREDICTION OF RESISTIVELY SHUNTED PIEZOCERAMIC DAMPING
    DAVIS, CL
    LESIEUTRE, GA
    [J]. JOURNAL OF SOUND AND VIBRATION, 1995, 184 (01) : 129 - 139
  • [3] An actively tuned solid-state vibration absorber using capacitive shunting of piezoelectric stiffness
    Davis, CL
    Lesieutre, GA
    [J]. JOURNAL OF SOUND AND VIBRATION, 2000, 232 (03) : 601 - 617
  • [4] Towards a piezoelectric vibration-powered microgenerator
    Glynne-Jones, P
    Beeby, SP
    White, NM
    [J]. IEE PROCEEDINGS-SCIENCE MEASUREMENT AND TECHNOLOGY, 2001, 148 (02) : 68 - 72
  • [5] DAMPING OF STRUCTURAL VIBRATIONS WITH PIEZOELECTRIC MATERIALS AND PASSIVE ELECTRICAL NETWORKS
    HAGOOD, NW
    VONFLOTOW, A
    [J]. JOURNAL OF SOUND AND VIBRATION, 1991, 146 (02) : 243 - 268
  • [6] Parasitic power harvesting in shoes
    Kymissis, J
    Kendall, C
    Paradiso, J
    Gershenfeld, N
    [J]. SECOND INTERNATIONAL SYMPOSIUM ON WEARABLE COMPUTERS - DIGEST OF PAPERS, 1998, : 132 - 139
  • [7] Lesieutre G.A., 1998, SHOCK VIB DIG, V30, P187, DOI DOI 10.1177/058310249803000301
  • [8] Adaptive piezoelectric energy harvesting circuit for wireless remote power supply
    Ottman, GK
    Hofmann, HF
    Bhatt, AC
    Lesieutre, GA
    [J]. IEEE TRANSACTIONS ON POWER ELECTRONICS, 2002, 17 (05) : 669 - 676
  • [9] Optimized piezoelectric energy harvesting circuit using step-down converter in discontinuous conduction mode
    Ottman, GK
    Hofmann, HF
    Lesieutre, GA
    [J]. IEEE TRANSACTIONS ON POWER ELECTRONICS, 2003, 18 (02) : 696 - 703
  • [10] PicoRadio supports ad hoc ultra-low power wireless networking
    Rabaey, JM
    Ammer, MJ
    da Silva, JL
    Patel, D
    Roundy, S
    [J]. COMPUTER, 2000, 33 (07) : 42 - +