DocumentCode :
393061
Title :
Quasi-linear sound propagation in the presence of cavitation bubbles for predicting HIFU biological lesions
Author :
Pichardo, Samuel ; Angel, Yves C. ; Curiel, Laura ; Chavrier, Francoise ; Cathignol, Dominique ; Chapelon, Jean-Yves
Author_Institution :
Inst. Nat. de la Sante et de la Recherche Med., Lyon, France
Volume :
2
fYear :
2002
fDate :
8-11 Oct. 2002
Firstpage :
1993
Abstract :
It is now accepted that High Intensity Focused Ultrasound (HIFU) lesion formation is the result of a complex process that involves interaction between acoustical thermal effects and cavitation phenomena of micro-bubbles within biological tissue. In the present study, a sound propagation model that takes into account the cumulative effects of nonlinearity, diffraction and absorption in the presence of cavitation bubbles is analytically established. The model is based on a modified expression of the parabolic KZK equation where bubble dynamics is included. Then, this modified expression and the volume version of the Rayleigh-Plesset equation am written in the special case of quasi-linear wave motions. Finally, the equation system is solved by representing the source emanating from the focused transducer as a superposition of Gaussian beams. In this context, results are presented for the pressure field generated by the fundamental and second harmonics when the source is an axisymmetric transducer and the biological tissue is separated from the transducer by water. Good agreement is found between the pressure field calculations and measurements obtained with a needle hydrophone for the case of a water-only volume and a 3.0 MHz: transducer focused at 40 mm.
Keywords :
biomedical measurement; biomedical transducers; biomedical ultrasonics; bubbles; cavitation; ultrasonic measurement; ultrasonic transducers; 3.0 MHz; 40 mm; Gaussian beams; Rayleigh-Plesset equation; absorption; acoustical thermal effects; axisymmetric transducer; biological tissue; cavitation bubbles; cavitation phenomena; diffraction; focused transducer; fundamental harmonics; high intensity focused ultrasound; microbubbles; needle hydrophone; nonlinearity; parabolic KZK equation; predicting HIFU biological lesions; pressure field; quasi-linear sound propagation; quasilinear wave motions; second harmonics; Absorption; Acoustic diffraction; Acoustic propagation; Biological system modeling; Biological tissues; Lesions; Nonlinear dynamical systems; Nonlinear equations; Transducers; Ultrasonic imaging;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Ultrasonics Symposium, 2002. Proceedings. 2002 IEEE
ISSN :
1051-0117
Print_ISBN :
0-7803-7582-3
Type :
conf
DOI :
10.1109/ULTSYM.2002.1192692
Filename :
1192692
Link To Document :
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