Modeling the Effects of Electromechanical Coupling on Energy Storage Through Piezoelectric Energy Harvesting

被引:62
|
作者
Wickenheiser, Adam M. [1 ]
Reissman, Timothy [1 ]
Wu, Wen-Jong [2 ]
Garcia, Ephrahim [1 ]
机构
[1] Cornell Univ, Sibley Sch Mech & Aerosp Engn, Ithaca, NY 14853 USA
[2] Natl Taiwan Univ, Dept Engn Sci & Ocean Engn, Taipei 10617, Taiwan
关键词
Piezoelectric transducers; power harvesting; GENERATOR; DEVICE;
D O I
10.1109/TMECH.2009.2027318
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
This paper focuses on comparing the effects of varying degrees of electromechanical coupling in piezoelectric power harvesting systems on the dynamics of charging a storage capacitor. In order to gain an understanding of the behavior of these dynamics, a transducer whose vibrational dynamics are impacted very little by electrical energy extraction is compared to a transducer that displays strong electromechanical coupling. Both transducers are cantilevered piezoelectric beams undergoing base excitation whose harvested electrical energy is used to charge a storage capacitor. The transient dynamics of the coupled system are studied in detail with an emphasis on their charging power curves and the time to charge the storage capacitor to a specified voltage. An analytic model for the system is derived that takes into consideration the reduction in vibration amplitude of the beam caused by the removal of electrical energy. Although this model makes the typical assumption that the beam is vibrating at its open-circuit resonance, it is shown to predict the charging behavior of the system accurately when compared to experimental results and a complete, nonlinear simulation without this simplification. Finally, the simplifications and discrepancies created by several types of modeling assumptions for a highly coupled energy harvesting system are discussed.
引用
收藏
页码:400 / 411
页数:12
相关论文
共 50 条
  • [21] Modeling and Simulation of Piezoelectric Energy Harvesting System
    Wu Z.-D.
    Fang J.-L.
    He Y.-B.
    Pan D.
    Li Q.
    Beijing Ligong Daxue Xuebao/Transaction of Beijing Institute of Technology, 2020, 40 (08): : 894 - 900
  • [22] Snap-through piezoelectric energy harvesting
    Jiang, Wen-An
    Chen, Li-Qun
    JOURNAL OF SOUND AND VIBRATION, 2014, 333 (18) : 4314 - 4325
  • [23] PIEZOELECTRIC ENERGY HARVESTING THROUGH FLUID EXCITATION
    Truitt, Andrew
    Mahmoodi, S. Nima
    PROCEEDINGS OF THE ASME CONFERENCE ON SMART MATERIALS, ADAPTIVE STRUCTURES AND INTELLIGENT SYSTEMS, VOL 2, 2012, : 785 - 792
  • [24] Improved piezoelectric multifrequency energy harvesting by magnetic coupling
    Yang, Jin
    Wen, Yumei
    Li, Ping
    Bai, Xiaoling
    Li, Ming
    2011 IEEE SENSORS, 2011, : 28 - 31
  • [25] On the Energy Theory of the Electromechanical Coupling Coefficient for Vibrations of Piezoelectric Bodies
    Mikhailenko, V. V.
    Karnaukhova, T. V.
    INTERNATIONAL APPLIED MECHANICS, 2020, 56 (02) : 231 - 239
  • [26] On the Energy Theory of the Electromechanical Coupling Coefficient for Vibrations of Piezoelectric Bodies
    V. V. Mikhailenko
    T. V. Karnaukhova
    International Applied Mechanics, 2020, 56 : 231 - 239
  • [27] Power and electromechanical coupling of nonlinear piezoelectric vibration energy harvesters
    Lan, Chunbo
    Liao, Yabin
    Hu, Guobiao
    Tang, Lihua
    ACTIVE AND PASSIVE SMART STRUCTURES AND INTEGRATED SYSTEMS XIV, 2020, 11376
  • [28] Electromechanical Modeling of MEMS-Based Piezoelectric Energy Harvesting Devices for Applications in Domestic Washing Machines
    Martinez-Cisneros, Eustaquio
    Velosa-Moncada, Luis A.
    Del Angel-Arroyo, Jesus A.
    Antonio Aguilera-Cortes, Luz
    Arturo Ceron-Alvarez, Carlos
    Herrera-May, Agustin L.
    ENERGIES, 2020, 13 (03)
  • [29] Piezoelectric energy harvesting
    Howells, Christopher A.
    ENERGY CONVERSION AND MANAGEMENT, 2009, 50 (07) : 1847 - 1850
  • [30] Modeling and simulation of piezoelectric MEMS energy harvesting device
    Lin, J. H.
    Wu, X. M.
    Ren, T. L.
    Liu, L. T.
    INTEGRATED FERROELECTRICS, 2007, 95 : 128 - 141