This paper develops and validates an aero-electromechanical model which captures the nonlinear response behavior of a piezoelectric cantilever-type energy harvester under combined galloping and base excitations. The harvester consists of a thin piezoelectric cantilever beam clamped at one end and rigidly attached to a bluff body at the other end. In addition to the vibratory base excitations, the beam is also subjected to aerodynamic forces resulting from the separation of the incoming airflow on both sides of the bluff body which gives rise to limit-cycle oscillations when the airflow velocity exceeds a critical value. A nonlinear electromechanical distributed-parameter model of the harvester under the combined excitations is derived using the energy approach and by adopting the nonlinear Euler–Bernoulli beam theory, linear constitutive relations for the piezoelectric transduction, and the quasi-steady assumption for the aerodynamic loading. The resulting partial differential equations of motion are discretized and a reduced-order model is obtained. The mathematical model is validated by conducting a series of experiments at different wind speeds and base excitation amplitudes for excitation frequencies around the primary resonance of the harvester. Results from the model and experiment are presented to characterize the response behavior under the combined loading.
Skip Nav Destination
Article navigation
June 2015
Research-Article
Modeling and Characterization of a Piezoelectric Energy Harvester Under Combined Aerodynamic and Base Excitations
Amin Bibo,
Amin Bibo
Nonlinear Vibrations and Energy
Harvesting Laboratory (NOVEHL),
Department of Mechanical Engineering,
Harvesting Laboratory (NOVEHL),
Department of Mechanical Engineering,
Clemson University
,Clemson, SC 29634
Search for other works by this author on:
Abdessattar Abdelkefi,
Abdessattar Abdelkefi
Department of Mechanical
and Aerospace Engineering,
and Aerospace Engineering,
New Mexico State University
,Las Cruces, NM 88003
Search for other works by this author on:
Mohammed F. Daqaq
Mohammed F. Daqaq
Nonlinear Vibrations and Energy
Harvesting Laboratory (NOVEHL),
Department of Mechanical Engineering,
Harvesting Laboratory (NOVEHL),
Department of Mechanical Engineering,
Clemson University
,Clemson, SC 29634
Visiting Associate Professor
Department of Mechanical and Materials
Engineering,
e-mails: mdaqaq@clemson.edu;
mfdaqaq@masdar.ac.ae
Department of Mechanical and Materials
Engineering,
Masdar Institute of Science and Technology (MIST)
,Abu Dhabi
, UAE
e-mails: mdaqaq@clemson.edu;
mfdaqaq@masdar.ac.ae
Search for other works by this author on:
Amin Bibo
Nonlinear Vibrations and Energy
Harvesting Laboratory (NOVEHL),
Department of Mechanical Engineering,
Harvesting Laboratory (NOVEHL),
Department of Mechanical Engineering,
Clemson University
,Clemson, SC 29634
Abdessattar Abdelkefi
Department of Mechanical
and Aerospace Engineering,
and Aerospace Engineering,
New Mexico State University
,Las Cruces, NM 88003
Mohammed F. Daqaq
Nonlinear Vibrations and Energy
Harvesting Laboratory (NOVEHL),
Department of Mechanical Engineering,
Harvesting Laboratory (NOVEHL),
Department of Mechanical Engineering,
Clemson University
,Clemson, SC 29634
Visiting Associate Professor
Department of Mechanical and Materials
Engineering,
e-mails: mdaqaq@clemson.edu;
mfdaqaq@masdar.ac.ae
Department of Mechanical and Materials
Engineering,
Masdar Institute of Science and Technology (MIST)
,Abu Dhabi
, UAE
e-mails: mdaqaq@clemson.edu;
mfdaqaq@masdar.ac.ae
Contributed by the Technical Committee on Vibration and Sound of ASME for publication in the JOURNAL OF VIBRATION AND ACOUSTICS. Manuscript received March 3, 2014; final manuscript received January 4, 2015; published online February 18, 2015. Assoc. Editor: Marco Amabili.
J. Vib. Acoust. Jun 2015, 137(3): 031017 (12 pages)
Published Online: June 1, 2015
Article history
Received:
March 3, 2014
Revision Received:
January 4, 2015
Online:
February 18, 2015
Citation
Bibo, A., Abdelkefi, A., and Daqaq, M. F. (June 1, 2015). "Modeling and Characterization of a Piezoelectric Energy Harvester Under Combined Aerodynamic and Base Excitations." ASME. J. Vib. Acoust. June 2015; 137(3): 031017. https://doi.org/10.1115/1.4029611
Download citation file:
Get Email Alerts
Cited By
Topology Optimization and Wave Propagation of Three-Dimensional Phononic Crystals
J. Vib. Acoust (February 2023)
Vibration of Complex Euler–Bernoulli and Timoshenko–Ehrenfest Beams Through Affine GPSFs
J. Vib. Acoust (December 2022)
Satellite Vibration Isolation Using Periodic Acoustic Black Hole Structures With Ultrawide Bandgap
J. Vib. Acoust (February 2023)
Free Vibration of Timoshenko–Ehrenfest Beams and Frameworks Using Frequency-Dependent Mass and Stiffness Matrices
J. Vib. Acoust (December 2022)
Related Articles
Analysis of a Chaotic Electrostatic Micro-Oscillator
J. Comput. Nonlinear Dynam (January,2011)
Two-Frequency Oscillation With Combined Coulomb and Viscous Frictions
J. Vib. Acoust (October,2002)
Modeling and Analysis of Piezoelectric Energy Harvesting Beams Using the Dynamic Stiffness and Analytical Modal Analysis Methods
J. Vib. Acoust (February,2011)
The Power and Efficiency Limits of Piezoelectric Energy Harvesting
J. Vib. Acoust (April,2014)
Related Proceedings Papers
Related Chapters
Fluidelastic Instability of Tube Bundles in Single-Phase Flow
Flow-Induced Vibration Handbook for Nuclear and Process Equipment
Understanding the Problem
Design and Application of the Worm Gear
Axially Loaded Members
Design & Analysis of ASME Boiler and Pressure Vessel Components in the Creep Range