Modeling and experimental verification of proof mass effects on vibration energy harvester performance

被引:186
作者
Kim, Miso [1 ]
Hoegen, Mathias [1 ]
Dugundji, John [1 ]
Wardle, Brian L. [1 ]
机构
[1] MIT, Dept Aeronaut & Astronaut, Cambridge, MA 02139 USA
关键词
GENERATING ELECTRICITY; POWER GENERATOR; CANTILEVER BEAM; WALKING;
D O I
10.1088/0964-1726/19/4/045023
中图分类号
TH7 [仪器、仪表];
学科分类号
0804 ; 080401 ; 081102 ;
摘要
An electromechanically coupled model for a cantilevered piezoelectric energy harvester with a proof mass is presented. Proof masses are essential in microscale devices to move device resonances towards optimal frequency points for harvesting. Such devices with proof masses have not been rigorously modeled previously; instead, lumped mass or concentrated point masses at arbitrary points on the beam have been used. Thus, this work focuses on the exact vibration analysis of cantilevered energy harvester devices including a tip proof mass. The model is based not only on a detailed modal analysis, but also on a thorough investigation of damping ratios that can significantly affect device performance. A model with multiple degrees of freedom is developed and then reduced to a single-mode model, yielding convenient closed-form normalized predictions of device performance. In order to verify the analytical model, experimental tests are undertaken on a macroscale, symmetric, bimorph, piezoelectric energy harvester with proof masses of different geometries. The model accurately captures all aspects of the measured response, including the location of peak-power operating points at resonance and anti-resonance, and trends such as the dependence of the maximal power harvested on the frequency. It is observed that even a small change in proof mass geometry results in a substantial change of device performance due not only to the frequency shift, but also to the effect on the strain distribution along the device length. Future work will include the optimal design of devices for various applications, and quantification of the importance of nonlinearities (structural and piezoelectric coupling) for device performance.
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页数:21
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共 38 条
  • [1] Modeling and analysis of a bimorph piezoelectric cantilever beam for voltage generation
    Ajitsaria, J.
    Choe, S. Y.
    Shen, D.
    Kim, D. J.
    [J]. SMART MATERIALS AND STRUCTURES, 2007, 16 (02) : 447 - 454
  • [2] Self-powered signal processing using vibration-based power generation
    Amirtharajah, R
    Chandrakasan, AP
    [J]. IEEE JOURNAL OF SOLID-STATE CIRCUITS, 1998, 33 (05) : 687 - 695
  • [3] Energy harvesting vibration sources for microsystems applications
    Beeby, S. P.
    Tudor, M. J.
    White, N. M.
    [J]. MEASUREMENT SCIENCE AND TECHNOLOGY, 2006, 17 (12) : R175 - R195
  • [4] BHAT BR, 1976, J SOUND VIB, V45, P304, DOI 10.1016/0022-460X(76)90606-4
  • [5] Powering MEMS portable devices - a review of non-regenerative and regenerative power supply systems with special emphasis on piezoelectric energy harvesting systems
    Cook-Chennault, K. A.
    Thambi, N.
    Sastry, A. M.
    [J]. SMART MATERIALS AND STRUCTURES, 2008, 17 (04)
  • [6] Biomechanical energy harvesting: Generating electricity during walking with minimal user effort
    Donelan, J. M.
    Li, Q.
    Naing, V.
    Hoffer, J. A.
    Weber, D. J.
    Kuo, A. D.
    [J]. SCIENCE, 2008, 319 (5864) : 807 - 810
  • [7] DUTOIT N, 2005, THESIS MIT
  • [8] Design considerations for MEMS-scale piezoelectric mechanical vibration energy harvesters
    duToit, NE
    Wardle, BL
    Kim, SG
    [J]. INTEGRATED FERROELECTRICS, 2005, 71 : 121 - 160
  • [9] Experimental verification of models for microfabricated piezoelectric vibration energy harvesters
    duToit, Noel E.
    Wardle, Brian L.
    [J]. AIAA JOURNAL, 2007, 45 (05) : 1126 - 1137
  • [10] Performance of microfabricated piezoelectric vibration energy harvesters
    duToit, Noel E.
    Wardle, Brian L.
    [J]. INTEGRATED FERROELECTRICS, 2006, 83 : 13 - 32