Inverse Rate-Dependent Rayleigh Model Based Feedforward Control for Piezoelectric-Driven Mechanism

In this article, a novel feedforward control method is proposed to control the hysteretic nonlinearity and resonance in piezoelectric-driven mechanism. A third-order rate-dependent Rayleigh model is established according to voltage dependence and rate dependence tests using sinusoidal and triangular...

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Main Authors: Meng Zhang, Zhigang Liu, Yu Zhu
Format: Article
Language:English
Published: IEEE 2020-01-01
Series:IEEE Access
Subjects:
Online Access:https://ieeexplore.ieee.org/document/9239936/
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spelling doaj-30860046b5fd4e619ab3baa887206e2c2021-03-30T03:41:26ZengIEEEIEEE Access2169-35362020-01-01819480819481910.1109/ACCESS.2020.30338459239936Inverse Rate-Dependent Rayleigh Model Based Feedforward Control for Piezoelectric-Driven MechanismMeng Zhang0Zhigang Liu1https://orcid.org/0000-0003-1013-8321Yu Zhu2Key Laboratory of Education Ministry for Modern Design and Rotor-Bearing System, School of Mechanical Engineering, Xi’an Jiaotong University, Xi’an, ChinaKey Laboratory of Education Ministry for Modern Design and Rotor-Bearing System, School of Mechanical Engineering, Xi’an Jiaotong University, Xi’an, ChinaKey Laboratory of Education Ministry for Modern Design and Rotor-Bearing System, School of Mechanical Engineering, Xi’an Jiaotong University, Xi’an, ChinaIn this article, a novel feedforward control method is proposed to control the hysteretic nonlinearity and resonance in piezoelectric-driven mechanism. A third-order rate-dependent Rayleigh model is established according to voltage dependence and rate dependence tests using sinusoidal and triangular waveform signals. In order to verify the accuracy of this model, the tracking errors of the Rayleigh model are analyzed and a comparison of the 3D Rayleigh model and the experimental data is visualized. The modeling accuracy of Rayleigh model in minor loops is also analyzed quantitatively. The hysteresis compensation Rayleigh model is then derived based on the energy compensation method. To control the mechanical resonance in piezoelectric-driven mechanism, a triangular input signal trajectory optimization method is developed based on minimum-acceleration trajectory planning theory. The turning parts of the triangular waveform signal are replaced with smooth curves but the linear parts are retained. Experiments are conducted to demonstrate the effectiveness of the proposed control method.https://ieeexplore.ieee.org/document/9239936/Piezoelectric-driven mechanismrate-dependent Rayleigh modelhysteretic nonlinearity
collection DOAJ
language English
format Article
sources DOAJ
author Meng Zhang
Zhigang Liu
Yu Zhu
spellingShingle Meng Zhang
Zhigang Liu
Yu Zhu
Inverse Rate-Dependent Rayleigh Model Based Feedforward Control for Piezoelectric-Driven Mechanism
IEEE Access
Piezoelectric-driven mechanism
rate-dependent Rayleigh model
hysteretic nonlinearity
author_facet Meng Zhang
Zhigang Liu
Yu Zhu
author_sort Meng Zhang
title Inverse Rate-Dependent Rayleigh Model Based Feedforward Control for Piezoelectric-Driven Mechanism
title_short Inverse Rate-Dependent Rayleigh Model Based Feedforward Control for Piezoelectric-Driven Mechanism
title_full Inverse Rate-Dependent Rayleigh Model Based Feedforward Control for Piezoelectric-Driven Mechanism
title_fullStr Inverse Rate-Dependent Rayleigh Model Based Feedforward Control for Piezoelectric-Driven Mechanism
title_full_unstemmed Inverse Rate-Dependent Rayleigh Model Based Feedforward Control for Piezoelectric-Driven Mechanism
title_sort inverse rate-dependent rayleigh model based feedforward control for piezoelectric-driven mechanism
publisher IEEE
series IEEE Access
issn 2169-3536
publishDate 2020-01-01
description In this article, a novel feedforward control method is proposed to control the hysteretic nonlinearity and resonance in piezoelectric-driven mechanism. A third-order rate-dependent Rayleigh model is established according to voltage dependence and rate dependence tests using sinusoidal and triangular waveform signals. In order to verify the accuracy of this model, the tracking errors of the Rayleigh model are analyzed and a comparison of the 3D Rayleigh model and the experimental data is visualized. The modeling accuracy of Rayleigh model in minor loops is also analyzed quantitatively. The hysteresis compensation Rayleigh model is then derived based on the energy compensation method. To control the mechanical resonance in piezoelectric-driven mechanism, a triangular input signal trajectory optimization method is developed based on minimum-acceleration trajectory planning theory. The turning parts of the triangular waveform signal are replaced with smooth curves but the linear parts are retained. Experiments are conducted to demonstrate the effectiveness of the proposed control method.
topic Piezoelectric-driven mechanism
rate-dependent Rayleigh model
hysteretic nonlinearity
url https://ieeexplore.ieee.org/document/9239936/
work_keys_str_mv AT mengzhang inverseratedependentrayleighmodelbasedfeedforwardcontrolforpiezoelectricdrivenmechanism
AT zhigangliu inverseratedependentrayleighmodelbasedfeedforwardcontrolforpiezoelectricdrivenmechanism
AT yuzhu inverseratedependentrayleighmodelbasedfeedforwardcontrolforpiezoelectricdrivenmechanism
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