Title :
A novel acoustic design for dual frequency transducers resulting in separate bandpass for color flow mapping (CFM)
Author :
De Fraguier, Sixte ; Gelly, Jean-Francois ; Wolnerman, Léon ; Lannuzel, Olivier
Author_Institution :
Thomson-Sintra AS, Valbonne, France
Abstract :
Current transducers used in medical ultrasound imaging generally use a single bandpass for both echo-amplitude imaging and color flow mapping (CFM). A novel acoustic design is presented here which provides an additional bandpass at half the frequency of the image bandpass within the same acoustic device, making it possible to improve significantly the Doppler sensitivity and range. An advanced finite element method is used to analyze the behavior of this new multilayer acoustic structure. Several devices have been realized at 500 kHz for sonar application and at 5 MHz for medical application. The transducer realized for medical application features a narrow band (21% relative bandwidth) for Doppler at 2.4 MHz and a broad band (36% relative bandwidth) for echo-amplitude imaging at 4.6 MHz. Experimental results show a good agreement with finite element computation and demonstrate the advantage of this new acoustic design over conventional transducers
Keywords :
acoustic imaging; biomedical ultrasonics; finite element analysis; piezoelectric transducers; sonar; ultrasonic transducers; 2.4 MHz; 4.6 MHz; 5 MHz; 500 kHz; Doppler sensitivity; acoustic design; broad band; color flow mapping; dual frequency transducers; echo-amplitude imaging; finite element method; image bandpass; medical ultrasound imaging; multilayer acoustic structure; narrow band; piezoelectric transducers; range; separate bandpass; sonar application; Acoustic devices; Acoustic imaging; Acoustic transducers; Biomedical acoustics; Biomedical transducers; Finite element methods; Frequency; Medical services; Ultrasonic imaging; Ultrasonic transducers;
Conference_Titel :
Ultrasonics Symposium, 1990. Proceedings., IEEE 1990
Conference_Location :
Honolulu, HI
DOI :
10.1109/ULTSYM.1990.171475