• DocumentCode
    51474
  • Title

    Equivalent Circuit Representation and Analysis of Galloping-Based Wind Energy Harvesting

  • Author

    Lihua Tang ; Liya Zhao ; Yaowen Yang ; Lefeuvre, Elie

  • Author_Institution
    Nanyang Technol. Univ., Singapore, Singapore
  • Volume
    20
  • Issue
    2
  • fYear
    2015
  • fDate
    Apr-15
  • Firstpage
    834
  • Lastpage
    844
  • Abstract
    Small-scale wind energy can be harvested for wireless sensing applications by exploiting the galloping phenomenon of a bluff body attached to a piezoelectric cantilever. Certain predictive model is required to understand the behavior of such a galloping-based piezoelectric energy harvester (GPEH). Conventional analytical and numerical models have simplified the interface circuit as a pure resistor. In practice, the energy generated by the harvester should be rectified before delivery to a real application. In such a case, the formulation of analytical or numerical model becomes cumbersome considering the complex coupling between the structure, fluid, piezoelectric transducer, and practical interface circuit. This paper proposes an equivalent circuit representation approach to predict the performance of GPEHs, capable of incorporating various interface circuits. The mechanical parameters and piezoelectric coupling in the system are represented by standard electronic components and the aerodynamic force by a user-defined component (nonstandard). The entire system is modeled in a circuit simulator for system-level simulation and evaluation. The proposed approach is verified by theoretical solution and experiment. Subsequent parametric study is performed to investigate the influence of standard ac and dc interfaces on the GPEH´s behavior, with a focus on the threshold of galloping, power output, and induced electrical damping.
  • Keywords
    aerodynamics; cantilevers; circuit simulation; coupled circuits; energy harvesting; equivalent circuits; piezoelectric transducers; wind power; GPEH; ac interface; aerodynamic force; bluff body; dc interface; energy generation; equivalent circuit representation; galloping- based piezoelectric energy harvester; galloping-based wind energy harvesting analysis; induced electrical damping; piezoelectric cantilever; piezoelectric coupling; piezoelectric transducer; predictive model; pure resistor; user-defined component; wireless sensing applications; Aerodynamics; Damping; Equivalent circuits; Force; Integrated circuit modeling; Standards; Wind speed; Equivalent circuit representation; galloping; piezoelectric transducer; wind energy harvesting;
  • fLanguage
    English
  • Journal_Title
    Mechatronics, IEEE/ASME Transactions on
  • Publisher
    ieee
  • ISSN
    1083-4435
  • Type

    jour

  • DOI
    10.1109/TMECH.2014.2308182
  • Filename
    6778064