Impulse Response of Piezoelectric Transducer by Multiresolution Analysis of Energy Modes

2007 ◽  
Vol 46 (7B) ◽  
pp. 4474-4478 ◽  
Author(s):  
Michio Ohki
Proceedings ◽  
2018 ◽  
Vol 4 (1) ◽  
pp. 53
Author(s):  
Jorge Otero ◽  
Ivan Felis

The impulse response of a piezoelectric transducer can be calculated using the electrical equivalent circuit model with the Manson method for bandwidth transducers. Nevertheless, these approaches are not sufficiently precise because the importance of the homogeneous structure medium where the transducer emits the signal in part determines the bandwidth in which it acts due to the medium interactions with the environment. This paper describes preliminary research results on piezoelectric impulse response measurements in a small space, making use of the procedure presented by Angelo Farina for transducers emitting in reverberant spaces. Combining the basics of the exponential sine sweep (ESS) method, techniques of arrival detection, and signal processing it is possible to obtain the impulse response in a piezoelectric transducer emitting in a homogeneous medium.


1995 ◽  
Vol 28 (13) ◽  
pp. 473-478
Author(s):  
Zi-Jiang Yang ◽  
Setsuo Sagara ◽  
Teruo Tsuji

2015 ◽  
Vol 40 (1) ◽  
pp. 3-10
Author(s):  
Mohamed G.S. Ali ◽  
Nour Z. Elsayed ◽  
Ebtsam A. Eid

Abstract In this work, an approach to the design of broadband thickness-mode piezoelectric transducer is pre- sented. In this approach, simulation of discrete time model of the impulse response of matched and backed piezoelectric transducer is used to design high sensitivity, broad bandwidth, and short-duration impulse response transducers. The effect of matching the performance of transmitting and receiving air backed PZT-5A transducer working into water load is studied. The optimum acoustical characteristics of the quarter wavelength matching layers are determined by a compromise between sensitivity and pulse duration. The thickness of bonding layers is smaller than that of the quarter wavelength matching layers so that they do not change the resonance peak significantly. Our calculations show that the −3 dB air backed transducer bandwidth can be improved considerably by using quarter wavelength matching layers. The computer model developed in this work to predict the behavior of multilayer structures driven by a transient waveform agrees well with measured results. Furthermore, the advantage of this this model over other approaches is that the time signal for optimum set of matching layers can be predicted rapidly


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