DocumentCode
2472294
Title
7D-3 Simulation of the Influence of Hydrophones Used for the Characterization of Pressure Field Distribution in Low frequency, High Power Ultrasonic Reactor Vessels
Author
Harvey, G. ; Gachagan, A. ; O´Leary, R.L.
Author_Institution
Univ. of Strathclyde, Glasgow
fYear
2007
fDate
28-31 Oct. 2007
Firstpage
589
Lastpage
592
Abstract
This paper describes the use of a finite element (FE) modeling approach to investigate the influence of different hydrophone designs in laboratory scale reactor vessels. In addition to conventional PVDF membrane and piezoceramic hydrophone, the performance of a conceptual array hydrophone, comprising a 2D matrix of PVDF array elements, will be simulated. The FE modeling concentrates on two issues: the disturbance to the field through the introduction of each hydrophone configuration; and their suitability and response to measuring non-linear effects. To simplify the model the ultrasonic transducer is not directly represented. Here, a pressure loading function is used as the excitation technique, with a sawtooth waveform applied for the simulation of the non-linear detection capability of each hydrophone configuration. The results from the simulation programme demonstrate that the dynamics of the reactor vessel are critical to optimize the performance of the ultrasonic system. In addition, the introduction of a hydrophone alters the wave propagation, and hence the field distribution beyond a given probe location. Nevertheless, the spatial pressure distribution at the active area remains reasonably accurate if within the useable bandwidth of the device. Accordingly, the broadband nature of the membrane device is suited to operation in both the linear and non-linear regimes, with the PVDF array membrane device offering a fast, convenient measurement of the pressure field distribution for industrial applications.
Keywords
finite element analysis; hydrophones; nonlinear acoustics; piezoceramics; ultrasonic transducers; PVDF array membrane device; finite element modeling; piezoceramic hydrophone; pressure field distribution; ultrasonic reactor vessels; ultrasonic transducer; Biomembranes; Finite element methods; Frequency; Inductors; Laboratories; Nonlinear dynamical systems; Piezoelectric materials; Sonar equipment; Ultrasonic transducers; Ultrasonic variables measurement;
fLanguage
English
Publisher
ieee
Conference_Titel
Ultrasonics Symposium, 2007. IEEE
Conference_Location
New York, NY
ISSN
1051-0117
Print_ISBN
978-1-4244-1384-3
Electronic_ISBN
1051-0117
Type
conf
DOI
10.1109/ULTSYM.2007.153
Filename
4409726
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