Title :
Calibration of a focusing transducer and miniature hydrophone as well as acoustic power measurement based on free-field reciprocity in a spherically focused wave field
Author :
Shou, Wende ; Duan, Shimei ; He, Peizhong ; Xia, Rongmin ; Dechu Qiari
Author_Institution :
Dept. of Biomedical Eng., Shanghai Jiao Tong Univ.
fDate :
3/1/2006 12:00:00 AM
Abstract :
The free-field transmitting voltage response at the pressure focus of a spherically focusing transducer was defined and calibrated based on the reciprocity theorem of a free-field spherically focused acoustic wave. The acoustic power, the radiation conductance, and the pressure at the pressure focus were derived and measured accordingly from the transmitting current response on the imaginary mirror symmetric spherical surface of the radiating surface. A miniature hydrophone was calibrated by the self-reciprocity of the spherically focusing source. Comparison results show that the measured acoustic power deviation between the reciprocity method and the radiation force balance method are within plusmn5% for two air-backed focusing transducers at 1.53 MHz and 5.27 MHz. respectively, arid the maximum deviation of a hydrophone calibration between the new method and the free-field plane wave reciprocity method is within 1.4 dB in the frequency range from 1 MHz to 2 MHz in experiments
Keywords :
acoustic intensity measurement; biomedical ultrasonics; calibration; hydrophones; ultrasonic transducers; 1 to 2 MHz; 5.27 MHz; acoustic power; acoustic power measurement; air-backed focusing transducers; calibration; free-field plane wave reciprocity method; free-field reciprocity theorem; free-field spherically focused acoustic wave; free-field transmitting voltage response; imaginary mirror symmetric spherical surface; miniature hydrophone; pressure focus; radiation conductance; radiation force balance method; self-reciprocity; spherically focusing transducer; transmitting current response; Acoustic measurements; Acoustic transducers; Acoustic waves; Calibration; Current measurement; Force measurement; Power measurement; Sonar equipment; Surface acoustic waves; Voltage;
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
DOI :
10.1109/TUFFC.2006.1610564