Details
Originalsprache | Englisch |
---|---|
Seiten (von - bis) | 216-237 |
Seitenumfang | 22 |
Fachzeitschrift | Mechanical Systems and Signal Processing |
Jahrgang | 108 |
Frühes Online-Datum | 22 Feb. 2018 |
Publikationsstatus | Veröffentlicht - Aug. 2018 |
Abstract
Sandwich type piezoelectric transducers are widely employed as actuating mechanisms for ultrasonic motors and ultrasonic cutting machines due to their advantages of compact structure, no electromagnetic interference, excellent mechanical performance, and fast response. By simultaneously adopting bending piezoelectric ceramics and longitudinal piezoelectric ceramics, sandwich type piezoelectric transducers can be utilized to generate coupled longitudinal and bending vibrations. To neglect the specific and complex polarization of the bending piezoelectric ceramics, a novel sandwich type piezoelectric transducer adopting commonly rectangular longitudinal piezoelectric ceramics is proposed in this study. The proposed transducer can be stimulated to produce the coupled longitudinal and bending vibrations by applying two electrical signals with shifted phase. To reveal the dynamic behavior of the proposed transducer and reduce the computational efforts of the finite element simulation, a semi-analytical model is developed using the transfer matrix method. Although the individual longitudinal or bending vibration model has been developed for piezoelectric elements, the modeling of coupled longitudinal and bending vibrations by simultaneously considering the electrical and mechanical coefficients is still unavailable. Therefore, a new transfer matrix model is created for the composite piezoelectric beam to describe the coupled longitudinal and bending vibrations. The presented transfer matrix model is capable of optimizing the proposed transducer and is also suitable for modeling conventional sandwich type piezoelectric transducers. To validate the effectiveness of the proposed model, two case studies are conducted. First, the optimizations of the transducer are conducted to obtain suitable geometrical dimensions. Then the frequency response characteristics and vibration shapes of the transducer are computed and compared to finite element simulation results. The comparisons demonstrate that the proposed transfer matrix model is valid and can effectively reduce the computational efforts.
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- Steuerungs- und Systemtechnik
- Informatik (insg.)
- Signalverarbeitung
- Ingenieurwesen (insg.)
- Tief- und Ingenieurbau
- Ingenieurwesen (insg.)
- Luft- und Raumfahrttechnik
- Ingenieurwesen (insg.)
- Maschinenbau
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- Angewandte Informatik
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in: Mechanical Systems and Signal Processing, Jahrgang 108, 08.2018, S. 216-237.
Publikation: Beitrag in Fachzeitschrift › Artikel › Forschung › Peer-Review
}
TY - JOUR
T1 - Modeling of coupled longitudinal and bending vibrations in a sandwich type piezoelectric transducer utilizing the transfer matrix method
AU - Wang, Liang
AU - Hofmann, Viktor
AU - Bai, Fushi
AU - Jin, Jiamei
AU - Twiefel, Jens
N1 - Funding Information: This research was supported by the National Science Foundation of China (Grants No. 51775263 ), and the funding of Outstanding Doctoral Dissertation in NUAA (Grant No. BCXJ17-01 ).
PY - 2018/8
Y1 - 2018/8
N2 - Sandwich type piezoelectric transducers are widely employed as actuating mechanisms for ultrasonic motors and ultrasonic cutting machines due to their advantages of compact structure, no electromagnetic interference, excellent mechanical performance, and fast response. By simultaneously adopting bending piezoelectric ceramics and longitudinal piezoelectric ceramics, sandwich type piezoelectric transducers can be utilized to generate coupled longitudinal and bending vibrations. To neglect the specific and complex polarization of the bending piezoelectric ceramics, a novel sandwich type piezoelectric transducer adopting commonly rectangular longitudinal piezoelectric ceramics is proposed in this study. The proposed transducer can be stimulated to produce the coupled longitudinal and bending vibrations by applying two electrical signals with shifted phase. To reveal the dynamic behavior of the proposed transducer and reduce the computational efforts of the finite element simulation, a semi-analytical model is developed using the transfer matrix method. Although the individual longitudinal or bending vibration model has been developed for piezoelectric elements, the modeling of coupled longitudinal and bending vibrations by simultaneously considering the electrical and mechanical coefficients is still unavailable. Therefore, a new transfer matrix model is created for the composite piezoelectric beam to describe the coupled longitudinal and bending vibrations. The presented transfer matrix model is capable of optimizing the proposed transducer and is also suitable for modeling conventional sandwich type piezoelectric transducers. To validate the effectiveness of the proposed model, two case studies are conducted. First, the optimizations of the transducer are conducted to obtain suitable geometrical dimensions. Then the frequency response characteristics and vibration shapes of the transducer are computed and compared to finite element simulation results. The comparisons demonstrate that the proposed transfer matrix model is valid and can effectively reduce the computational efforts.
AB - Sandwich type piezoelectric transducers are widely employed as actuating mechanisms for ultrasonic motors and ultrasonic cutting machines due to their advantages of compact structure, no electromagnetic interference, excellent mechanical performance, and fast response. By simultaneously adopting bending piezoelectric ceramics and longitudinal piezoelectric ceramics, sandwich type piezoelectric transducers can be utilized to generate coupled longitudinal and bending vibrations. To neglect the specific and complex polarization of the bending piezoelectric ceramics, a novel sandwich type piezoelectric transducer adopting commonly rectangular longitudinal piezoelectric ceramics is proposed in this study. The proposed transducer can be stimulated to produce the coupled longitudinal and bending vibrations by applying two electrical signals with shifted phase. To reveal the dynamic behavior of the proposed transducer and reduce the computational efforts of the finite element simulation, a semi-analytical model is developed using the transfer matrix method. Although the individual longitudinal or bending vibration model has been developed for piezoelectric elements, the modeling of coupled longitudinal and bending vibrations by simultaneously considering the electrical and mechanical coefficients is still unavailable. Therefore, a new transfer matrix model is created for the composite piezoelectric beam to describe the coupled longitudinal and bending vibrations. The presented transfer matrix model is capable of optimizing the proposed transducer and is also suitable for modeling conventional sandwich type piezoelectric transducers. To validate the effectiveness of the proposed model, two case studies are conducted. First, the optimizations of the transducer are conducted to obtain suitable geometrical dimensions. Then the frequency response characteristics and vibration shapes of the transducer are computed and compared to finite element simulation results. The comparisons demonstrate that the proposed transfer matrix model is valid and can effectively reduce the computational efforts.
KW - Coupled longitudinal-bending vibration
KW - Sandwich type piezoelectric transducer
KW - Systematic dynamic model
KW - Transfer matrix method
KW - Validation
UR - http://www.scopus.com/inward/record.url?scp=85042943555&partnerID=8YFLogxK
U2 - 10.1016/j.ymssp.2018.02.022
DO - 10.1016/j.ymssp.2018.02.022
M3 - Article
AN - SCOPUS:85042943555
VL - 108
SP - 216
EP - 237
JO - Mechanical Systems and Signal Processing
JF - Mechanical Systems and Signal Processing
SN - 0888-3270
ER -