Sensitivity measurements of piezoelectric polymer hydrophones from 0.2-2 MHz using a broadband-pulse technique

被引:39
作者
Harris, GR [1 ]
Gammell, PM [1 ]
机构
[1] US FDA, Ctr Devices & Radiol Hlth, Rockville, MD 20850 USA
关键词
D O I
10.1121/1.426263
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
It is widely recognized that the sensitivity of hydrophones used to measure medical diagnostic ultrasound fields should be uniform over several octaves above the center frequency (i.e., above the mean of the upper and lower -3 dB frequencies in the transmitted acoustic-pressure spectrum). However. a bandwidth extending to at least ten times below the diagnostic pulse-center frequency is needed for accurate (error approximate to 5%) measurement of the peak rarefactional pressure. Since at present it is not common for manufacturers of medical-use hydrophones to provide sensitivity information below 1-2 MHz, a study was undertaken to determine these low-frequency sensitivities. The technique uses broadband, plane-wave pressure pulses generated by electrical short-pulse excitation of a thick piezoelectric ceramic disk. The hydrophone response is calculated from measurements of the source transducer and hydrophone-voltage waveforms. The frequency responses of both needle-type and spot-poled membrane polymer hydrophones were measured using this technique. The spot-poled membrane hydrophones had -3-dB bandwidths extending below 0.2 MHz, the lower limit for the calibration technique. The needle-type hydrophones studied, however, all exhibited a response roll-off of greater than 3 dB in the frequency range studied. Therefore, given the above bandwidth criterion as a function of diagnostic pulse-center frequency, the sensitivity to at least 0.2 MHz should be established for diagnostic-use hydrophones, because a uniform response below I MHz cannot be assumed. [S0001-4966(99)01002-4].
引用
收藏
页码:725 / 731
页数:7
相关论文
共 14 条
[1]   THEORETICAL AND EXPERIMENTAL-STUDY OF THE CONTRIBUTION OF RADIAL MODES TO THE PULSED ULTRASONIC-FIELD RADIATED BY A THICK PIEZOELECTRIC DISK [J].
BABOUX, JC ;
LAKESTANI, F ;
PERDRIX, M .
JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA, 1984, 75 (06) :1722-1731
[2]  
BABOUX JC, 1988, P 1988 IEEE ULTR S, P857
[3]  
BURDIC WS, 1984, UNDERWATER ACOUSTIC, P77
[4]   FREQUENCY-RESPONSE OF PVDF NEEDLE-TYPE HYDROPHONES [J].
FAY, B ;
LUDWIG, G ;
LANKJAER, C ;
LEWIN, PA .
ULTRASOUND IN MEDICINE AND BIOLOGY, 1994, 20 (04) :361-366
[5]   The response of transiently excited thick transducers at low frequencies [J].
Harris, GR ;
Myers, MR ;
Gammell, PM .
JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA, 1996, 100 (05) :3115-3120
[6]   Are current hydrophone low frequency response standards acceptable for measuring mechanical/cavitation indices? [J].
Harris, GR .
ULTRASONICS, 1996, 34 (06) :649-654
[7]   AN ANALYSIS OF PULSED ULTRASONIC FIELDS AS MEASURED BY PVDF SPOT-POLED MEMBRANE HYDROPHONES [J].
HARRIS, GR ;
CAROME, EF ;
DARDY, HD .
IEEE TRANSACTIONS ON SONICS AND ULTRASONICS, 1983, 30 (05) :295-303
[8]   PIEZOELECTRIC TRANSDUCER MATERIALS [J].
JAFFE, H ;
BERLINCOURT, DA .
PROCEEDINGS OF THE INSTITUTE OF ELECTRICAL AND ELECTRONICS ENGINEERS, 1965, 53 (10) :1372-+
[10]   STUDY OF SURFACE ELASTIC-WAVE INDUCED ON BACKING MATERIAL AND DIFFRACTED-FIELD OF A PIEZOELECTRIC POLYMER FILM HYDROPHONE [J].
NAKAMURA, Y ;
OTANI, T .
JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA, 1993, 94 (03) :1191-1199