DocumentCode :
1370843
Title :
Membrane hydrophone phase characteristics through nonlinear acoustics measurements
Author :
Bloomfield, Philip E. ; Gandhi, Gaurav ; Lewin, Peter A.
Author_Institution :
Sch. of Biomed. Eng., Sci. & Health Syst., Drexel Univ., Philadelphia, PA, USA
Volume :
58
Issue :
11
fYear :
2011
fDate :
11/1/2011 12:00:00 AM
Firstpage :
2418
Lastpage :
2437
Abstract :
This work considers the need for both the amplitude and phase to fully characterize polyvinylidene fluoride (PVDF) membrane hydrophones and presents a comprehensive discussion of the nonlinear acoustic measurements utilized to extract the phase information and the experimental results taken with two widely used PVDF membrane hydrophones up to 100 MHz. A semi-empirical computer model utilized the hyperbolic propagation operator to predict the nonlinear pressure field and provide the complex frequency response of the corresponding source transducer. The PVDF hydrophone phase characteristics, which were obtained directly from the difference between the computer-modeled nonlinear field simulation and the corresponding measured harmonic frequency phase values, agree to within 10% with the phase predictions obtained from receive-transfer-function simulations based on software modeling of the membrane´s physical properties. Cable loading effects and membrane hydrophone resonances were distinguished and identified through a series of impedance measurements and receive transfer function simulations on the hydrophones including their hard-wired coaxial cables. The results obtained indicate that the PVDF membrane hydrophone´s phase versus frequency plot exhibits oscillations about a monotonically decreasing line. The maxima and minima inflection point slopes occur at the membrane thickness resonances and antiresonances, respectively. A cable resonance was seen at 100 MHz for the hydrophone with a 1-m cable attached, but not seen for the hydrophone with a shorter 0.65-m cable.
Keywords :
acoustic intensity measurement; acoustic resonance; frequency response; hydrophones; hyperbolic equations; membranes; nonlinear acoustics; antiresonances; cable loading effects; computer-modeled nonlinear field simulation; frequency 100 MHz; frequency response; hyperbolic propagation; nonlinear acoustic measurements; nonlinear pressure field; phase information; physical properties; polyvinylidene fluoride membrane hydrophones; receive-transfer-function simulations; semiempirical computer model; size 1 m; Acoustic measurements; Acoustics; Frequency measurement; Harmonic analysis; Phase measurement; Sonar equipment; Voltage measurement; Acoustics; Algorithms; Computer Simulation; Membranes, Artificial; Models, Theoretical; Nonlinear Dynamics; Scattering, Radiation; Water;
fLanguage :
English
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-3010
Type :
jour
DOI :
10.1109/TUFFC.2011.2099
Filename :
6071060
Link To Document :
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