A FEM-based method to determine the complex material properties of piezoelectric disks

•Piezoelectric complex parameters are optimized to reproduce the energy losses.•A sensitivity analysis is presented for the more influent parameters.•A guideline to construct the main optimization algorithm is presented.•The methodology is applied to a PZ27 soft ceramic disk.•A very good agreement i...

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Veröffentlicht in:Ultrasonics 2014-08, Vol.54 (6), p.1631-1641
Hauptverfasser: Pérez, N., Carbonari, R.C., Andrade, M.A.B., Buiochi, F., Adamowski, J.C.
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container_end_page 1641
container_issue 6
container_start_page 1631
container_title Ultrasonics
container_volume 54
creator Pérez, N.
Carbonari, R.C.
Andrade, M.A.B.
Buiochi, F.
Adamowski, J.C.
description •Piezoelectric complex parameters are optimized to reproduce the energy losses.•A sensitivity analysis is presented for the more influent parameters.•A guideline to construct the main optimization algorithm is presented.•The methodology is applied to a PZ27 soft ceramic disk.•A very good agreement is verified using optical interferomerty. Numerical simulations allow modeling piezoelectric devices and ultrasonic transducers. However, the accuracy in the results is limited by the precise knowledge of the elastic, dielectric and piezoelectric properties of the piezoelectric material. To introduce the energy losses, these properties can be represented by complex numbers, where the real part of the model essentially determines the resonance frequencies and the imaginary part determines the amplitude of each resonant mode. In this work, a method based on the Finite Element Method (FEM) is modified to obtain the imaginary material properties of piezoelectric disks. The material properties are determined from the electrical impedance curve of the disk, which is measured by an impedance analyzer. The method consists in obtaining the material properties that minimize the error between experimental and numerical impedance curves over a wide range of frequencies. The proposed methodology starts with a sensitivity analysis of each parameter, determining the influence of each parameter over a set of resonant modes. Sensitivity results are used to implement a preliminary algorithm approaching the solution in order to avoid the search to be trapped into a local minimum. The method is applied to determine the material properties of a Pz27 disk sample from Ferroperm. The obtained properties are used to calculate the electrical impedance curve of the disk with a Finite Element algorithm, which is compared with the experimental electrical impedance curve. Additionally, the results were validated by comparing the numerical displacement profile with the displacements measured by a laser Doppler vibrometer. The comparison between the numerical and experimental results shows excellent agreement for both electrical impedance curve and for the displacement profile over the disk surface. The agreement between numerical and experimental displacement profiles shows that, although only the electrical impedance curve is considered in the adjustment procedure, the obtained material properties allow simulating the displacement amplitude accurately.
doi_str_mv 10.1016/j.ultras.2014.03.006
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Numerical simulations allow modeling piezoelectric devices and ultrasonic transducers. However, the accuracy in the results is limited by the precise knowledge of the elastic, dielectric and piezoelectric properties of the piezoelectric material. To introduce the energy losses, these properties can be represented by complex numbers, where the real part of the model essentially determines the resonance frequencies and the imaginary part determines the amplitude of each resonant mode. In this work, a method based on the Finite Element Method (FEM) is modified to obtain the imaginary material properties of piezoelectric disks. The material properties are determined from the electrical impedance curve of the disk, which is measured by an impedance analyzer. The method consists in obtaining the material properties that minimize the error between experimental and numerical impedance curves over a wide range of frequencies. The proposed methodology starts with a sensitivity analysis of each parameter, determining the influence of each parameter over a set of resonant modes. Sensitivity results are used to implement a preliminary algorithm approaching the solution in order to avoid the search to be trapped into a local minimum. The method is applied to determine the material properties of a Pz27 disk sample from Ferroperm. The obtained properties are used to calculate the electrical impedance curve of the disk with a Finite Element algorithm, which is compared with the experimental electrical impedance curve. Additionally, the results were validated by comparing the numerical displacement profile with the displacements measured by a laser Doppler vibrometer. The comparison between the numerical and experimental results shows excellent agreement for both electrical impedance curve and for the displacement profile over the disk surface. 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source ScienceDirect Journals (5 years ago - present)
subjects Algorithms
Computer simulation
Disks
Displacement
Electrical impedance
Energy losses
Finite Element Method
Mathematical models
Piezoelectric characterization
Piezoelectricity
title A FEM-based method to determine the complex material properties of piezoelectric disks
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