DocumentCode :
2691775
Title :
Modeling three-dimensional nonlinear acoustic wave fields in media with spatially varying coefficient of nonlinearity, attenuation and speed of sound
Author :
Demi, Libertario ; Verweij, M.D. ; van Dongen, K.W.A.
Author_Institution :
Lab. of Biomed. Diagnostics, Eindhoven Univ. of Technol., Eindhoven, Netherlands
fYear :
2012
fDate :
7-10 Oct. 2012
Firstpage :
519
Lastpage :
522
Abstract :
Numerical methods capable of modeling nonlinear pressure wave fields propagating through inhomogeneous biomedical tissue are essential for the design and optimization of ultrasound transducers or devices. The Iterative Nonlinear Contrast Source (INCS) method is an accurate method for modeling three-dimensional nonlinear acoustic wave fields. Originally it was capable of modeling nonlinear wave fields in homogeneous lossy tissue. Recently, it has been extended to deal with spatially varying coefficient of nonlinearity and attenuation. The method recasts a generalized form of the Westervelt equation into an integral equation which was originally solved using a Neumann scheme. This scheme allows to model moderate losses and nonlinearity. Problems with the convergence may occur for realistic speed of sound contrast. Here, we present a different solution method which makes it possible to treat, besides spatially varying coefficient of nonlinearity and attenuation, also realistic speed of sound contrasts. The nonlinear integral equation is solved using a steepest descent scheme. The method has been used to compute the three-dimensional nonlinear pressure wave field generated by a 40 element linear array and propagating through a medium with spatially varying coefficient of nonlinearity, attenuation and speed of sound. Simulations have been performed up to the 5th harmonic component.
Keywords :
acoustic wave propagation; biological tissues; biomedical ultrasonics; gradient methods; integral equations; nonlinear acoustics; ultrasonic transducers; INCS method; Neumann scheme; Westervelt equation; harmonic component; homogeneous lossy tissue; inhomogeneous biomedical tissue; integral equation; iterative nonlinear contrast source method; linear array propagation; nonlinear integral equation; nonlinear pressure wave field propagation modeling; numerical methods; optimization; sound contrast speed; sound speed; spatially varying attenuation coefficient; spatially varying nonlinearity coefficient; steepest descent scheme; three-dimensional nonlinear acoustic wave field modeling; ultrasound devices; ultrasound transducers; Attenuation; Harmonic analysis; Mathematical model; Media; Nonlinear acoustics; Ultrasonic imaging;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Ultrasonics Symposium (IUS), 2012 IEEE International
Conference_Location :
Dresden
ISSN :
1948-5719
Print_ISBN :
978-1-4673-4561-3
Type :
conf
DOI :
10.1109/ULTSYM.2012.0129
Filename :
6562250
Link To Document :
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