1-D electromechanical impedance model considering bonding layer effect on a dual-PZT transducer

Author(s):  
Dan-sheng Wang ◽  
Xiao-meng Zhou ◽  
Hong-ping Zhu
2011 ◽  
Vol 94-96 ◽  
pp. 73-76
Author(s):  
Wei Yan ◽  
Wan Chun Li ◽  
Wei Wang

Based on the finite element software ANSYS, an electromechanical impedance (EMI) model for a cracked beam with imperfectly bonded piezoelectric patches is established in the paper. The property of bonding layer between the PZT sensor/actuators and the host beam is taken into account and thus the three-dimensional (3D) model of piezoelectric patch-adhesive-cracked beam coupled system is developed. Comparison with existing numerical results validates the effectiveness and accuracy of the present analysis. Then, parameter study is conducted by considering effects of the vibration mode of the host beam, the mass density of the adhesive and crack depth etc. on EMI signatures. The numerical results indicate that the present EMI model can be used to detect the cracks in the structures.


IEEE Access ◽  
2018 ◽  
Vol 6 ◽  
pp. 40212-40220 ◽  
Author(s):  
Furui Wang ◽  
Siu Chun Michael Ho ◽  
Linsheng Huo ◽  
Gangbing Song

Materials ◽  
2020 ◽  
Vol 13 (21) ◽  
pp. 4735
Author(s):  
Xiangxing Kong ◽  
Chunyang Chen ◽  
Xiao Liu ◽  
Jianjian Zhu ◽  
Xinlin Qing

The electromechanical impedance model of the piezoelectric ceramics in a free state can be used for screening and quality control in the structural health monitoring community, but the derivation process of the existing model is usually complicated. This paper describes a novel theoretical derivation methodology based on the assumption of zero-stress on the free boundary of the one-dimensional transducer, which can simplify the derivation of the model to a large extent. To assess the accuracy of the model, a signal processing method based on frequency shifting transformation and the Pearson correlation coefficient is also proposed to calculate the similarity between theoretically predicted and experimentally measured data. Two different piezoelectric ceramics were used in experiments to verify the effectiveness of the model. Experimental results convincingly demonstrate that the assumption proposed in this paper possesses good feasibility for one-dimensional thin-walled piezoelectric ceramics and the model has excellent precision.


2016 ◽  
Vol 28 (2) ◽  
pp. 178-194 ◽  
Author(s):  
Mohammad I. Albakri ◽  
Pablo A. Tarazaga

Embedded and surface bonded piezoelectric wafers have been widely used for control and monitoring purposes. Several nondestructive evaluation and structural health monitoring techniques, such as electromechanical impedance and wave propagation–based techniques, utilize piezoelectric wafers in either active or passive manner to interrogate the host structure. The basis of all these techniques is the energy transfer between the piezoelectric wafer and the host structure which takes place through an adhesive bonding layer. In this article, the high-frequency dynamic response of a coupled piezoelectric-beam system is modeled including the adhesive bonding layer in between. A new three-layer spectral element is developed for this purpose. The formulation of this new element takes into account axial and shear deformations, in addition to rotary inertia effects in all three layers. The capabilities of the proposed model are demonstrated through several numerical examples, where the effects of bonding layer geometric and material characteristics on dispersion relations and damage detection capabilities are discussed. The results highlight the importance of accounting for the adhesive bonding layer in piezoelectric-structure interaction models, especially when the high-frequency dynamic response is of interest.


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