A Micro Piezoelectric Motor With Multiple Excitation Modes and Methods

To widen the performance of piezoelectric motors, this paper demonstrates a micro piezoelectric motor having multiple driving ways. The stator includes a hollow polygon bar and two groups of PZT plates. PZT plates are symmetrically bonded onto a brass base, and used to actuate the vibration modes of...

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Main Authors: Chong Li, Cunyue Lu
Format: Article
Language:English
Published: IEEE 2020-01-01
Series:IEEE Access
Subjects:
Online Access:https://ieeexplore.ieee.org/document/9224654/
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spelling doaj-14057fa2793d410a8ea796d3b90ab7ac2021-03-30T03:26:19ZengIEEEIEEE Access2169-35362020-01-01819098119098810.1109/ACCESS.2020.30312789224654A Micro Piezoelectric Motor With Multiple Excitation Modes and MethodsChong Li0https://orcid.org/0000-0002-7485-7248Cunyue Lu1College of Electronic and Electric Engineering, Henan Normal University, Xinxiang, ChinaDepartment of Instrument Science and Engineering, Shanghai Jiao Tong University, Shanghai, ChinaTo widen the performance of piezoelectric motors, this paper demonstrates a micro piezoelectric motor having multiple driving ways. The stator includes a hollow polygon bar and two groups of PZT plates. PZT plates are symmetrically bonded onto a brass base, and used to actuate the vibration modes of the stator. The symmetrical design enables the motor to operate in two types of vibration modes. The working modes are the second/third-order in-plane bending modes, and can be excited by different ways. Elliptical motion of stator surface points is generated by superposition of two bending modes with the same order. To investigate the feasibility of multi-mode and multi-motivation mechanisms, vibration behaviors of stator driving particles are simulated using ANSYS software. The structural parameters of the stator are strictly designed to harmonize the eigenfrequencies of the vibration modes. The calculated results reveal that the motor performance can be adjusted by selecting different operating modes and excitation ways. The motor performances under various excitation ways and driving modes are also investigated experimentally to validate the proposed design. The dimension of the fabricated prototype motor is 8.3 mm$\times 7.2$ mm$\times 15.0$ mm. The maximum torques are respectively 8.3 cN$\cdot \text{m}$ and 13.3 cN$\cdot \text{m}$ under single-phase and two-phase excitation voltages, when the motor operates in the second-order bending modes. The corresponding no-load speeds are respectively 40 rpm and 47 rpm. The maximum torque and speed under the third-order bending modes are much smaller than that under the second-order bending modes.https://ieeexplore.ieee.org/document/9224654/Piezoelectric motorbending modesmulti-motivationANSYS
collection DOAJ
language English
format Article
sources DOAJ
author Chong Li
Cunyue Lu
spellingShingle Chong Li
Cunyue Lu
A Micro Piezoelectric Motor With Multiple Excitation Modes and Methods
IEEE Access
Piezoelectric motor
bending modes
multi-motivation
ANSYS
author_facet Chong Li
Cunyue Lu
author_sort Chong Li
title A Micro Piezoelectric Motor With Multiple Excitation Modes and Methods
title_short A Micro Piezoelectric Motor With Multiple Excitation Modes and Methods
title_full A Micro Piezoelectric Motor With Multiple Excitation Modes and Methods
title_fullStr A Micro Piezoelectric Motor With Multiple Excitation Modes and Methods
title_full_unstemmed A Micro Piezoelectric Motor With Multiple Excitation Modes and Methods
title_sort micro piezoelectric motor with multiple excitation modes and methods
publisher IEEE
series IEEE Access
issn 2169-3536
publishDate 2020-01-01
description To widen the performance of piezoelectric motors, this paper demonstrates a micro piezoelectric motor having multiple driving ways. The stator includes a hollow polygon bar and two groups of PZT plates. PZT plates are symmetrically bonded onto a brass base, and used to actuate the vibration modes of the stator. The symmetrical design enables the motor to operate in two types of vibration modes. The working modes are the second/third-order in-plane bending modes, and can be excited by different ways. Elliptical motion of stator surface points is generated by superposition of two bending modes with the same order. To investigate the feasibility of multi-mode and multi-motivation mechanisms, vibration behaviors of stator driving particles are simulated using ANSYS software. The structural parameters of the stator are strictly designed to harmonize the eigenfrequencies of the vibration modes. The calculated results reveal that the motor performance can be adjusted by selecting different operating modes and excitation ways. The motor performances under various excitation ways and driving modes are also investigated experimentally to validate the proposed design. The dimension of the fabricated prototype motor is 8.3 mm$\times 7.2$ mm$\times 15.0$ mm. The maximum torques are respectively 8.3 cN$\cdot \text{m}$ and 13.3 cN$\cdot \text{m}$ under single-phase and two-phase excitation voltages, when the motor operates in the second-order bending modes. The corresponding no-load speeds are respectively 40 rpm and 47 rpm. The maximum torque and speed under the third-order bending modes are much smaller than that under the second-order bending modes.
topic Piezoelectric motor
bending modes
multi-motivation
ANSYS
url https://ieeexplore.ieee.org/document/9224654/
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