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    Modeling and Analysis of Piezoelectric Energy Harvesting From Aeroelastic Vibrations Using the Doublet-Lattice Method

    Source: Journal of Vibration and Acoustics:;2011:;volume( 133 ):;issue: 001::page 11003
    Author:
    Carlos De Marqui
    ,
    Alper Erturk
    ,
    Daniel J. Inman
    ,
    Wander G. R. Vieira
    DOI: 10.1115/1.4002785
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: Multifunctional structures are pointed out as an important technology for the design of aircraft with volume, mass, and energy source limitations such as unmanned air vehicles (UAVs) and micro air vehicles (MAVs). In addition to its primary function of bearing aerodynamic loads, the wing/spar structure of an UAV or a MAV with embedded piezoceramics can provide an extra electrical energy source based on the concept of vibration energy harvesting to power small and wireless electronic components. Aeroelastic vibrations of a lifting surface can be converted into electricity using piezoelectric transduction. In this paper, frequency-domain piezoaeroelastic modeling and analysis of a cantilevered platelike wing with embedded piezoceramics is presented for energy harvesting. The electromechanical finite-element plate model is based on the thin-plate (Kirchhoff) assumptions while the unsteady aerodynamic model uses the doublet-lattice method. The electromechanical and aerodynamic models are combined to obtain the piezoaeroelastic equations, which are solved using a p-k scheme that accounts for the electromechanical coupling. The evolution of the aerodynamic damping and the frequency of each mode are obtained with changing airflow speed for a given electrical circuit. Expressions for piezoaeroelastically coupled frequency response functions (voltage, current, and electrical power as well the vibratory motion) are also defined by combining flow excitation with harmonic base excitation. Hence, piezoaeroelastic evolution can be investigated in frequency domain for different airflow speeds and electrical boundary conditions.
    keyword(s): Air flow , Stress , Flutter (Aerodynamics) , Damping , Vibration , Circuits , Energy harvesting , Wings , Piezoelectric ceramics , Modeling , Electrical resistance , Equations , Motion AND Electricity (Physics) ,
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      Modeling and Analysis of Piezoelectric Energy Harvesting From Aeroelastic Vibrations Using the Doublet-Lattice Method

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    https://yetl.yabesh.ir/yetl1/handle/yetl/147987
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    contributor authorCarlos De Marqui
    contributor authorAlper Erturk
    contributor authorDaniel J. Inman
    contributor authorWander G. R. Vieira
    date accessioned2017-05-09T00:47:50Z
    date available2017-05-09T00:47:50Z
    date copyrightFebruary, 2011
    date issued2011
    identifier issn1048-9002
    identifier otherJVACEK-28911#011003_1.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/147987
    description abstractMultifunctional structures are pointed out as an important technology for the design of aircraft with volume, mass, and energy source limitations such as unmanned air vehicles (UAVs) and micro air vehicles (MAVs). In addition to its primary function of bearing aerodynamic loads, the wing/spar structure of an UAV or a MAV with embedded piezoceramics can provide an extra electrical energy source based on the concept of vibration energy harvesting to power small and wireless electronic components. Aeroelastic vibrations of a lifting surface can be converted into electricity using piezoelectric transduction. In this paper, frequency-domain piezoaeroelastic modeling and analysis of a cantilevered platelike wing with embedded piezoceramics is presented for energy harvesting. The electromechanical finite-element plate model is based on the thin-plate (Kirchhoff) assumptions while the unsteady aerodynamic model uses the doublet-lattice method. The electromechanical and aerodynamic models are combined to obtain the piezoaeroelastic equations, which are solved using a p-k scheme that accounts for the electromechanical coupling. The evolution of the aerodynamic damping and the frequency of each mode are obtained with changing airflow speed for a given electrical circuit. Expressions for piezoaeroelastically coupled frequency response functions (voltage, current, and electrical power as well the vibratory motion) are also defined by combining flow excitation with harmonic base excitation. Hence, piezoaeroelastic evolution can be investigated in frequency domain for different airflow speeds and electrical boundary conditions.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleModeling and Analysis of Piezoelectric Energy Harvesting From Aeroelastic Vibrations Using the Doublet-Lattice Method
    typeJournal Paper
    journal volume133
    journal issue1
    journal titleJournal of Vibration and Acoustics
    identifier doi10.1115/1.4002785
    journal fristpage11003
    identifier eissn1528-8927
    keywordsAir flow
    keywordsStress
    keywordsFlutter (Aerodynamics)
    keywordsDamping
    keywordsVibration
    keywordsCircuits
    keywordsEnergy harvesting
    keywordsWings
    keywordsPiezoelectric ceramics
    keywordsModeling
    keywordsElectrical resistance
    keywordsEquations
    keywordsMotion AND Electricity (Physics)
    treeJournal of Vibration and Acoustics:;2011:;volume( 133 ):;issue: 001
    contenttypeFulltext
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