Title :
Simulating ultrasonic pulse echo registration including multiple scattering, attenuation and nonlinearity
Author :
Demi, Libertario ; Alles, Erwin J.
Author_Institution :
Lab. of Biomed. Diagnostics, Eindhoven Univ. of Technol.Eindhoven, Eindhoven, Netherlands
Abstract :
The advantages of nonlinear ultrasound propagation are exploited in an ever increasing number of applications. As a consequence, much research is devoted to the development of numerical methods capable of modeling nonlinear pressure wave fields propagating through (inhomogeneous) biomedical tissue. These tools are essential to design and optimize ultrasound transducers and to investigate novel ultrasound modalities or devices. The iterative nonlinear contrast source (INCS) method is an accurate full-wave method for modeling three-dimensional nonlinear acoustic wave fields propagating through soft biomedical tissue containing arbitrary inhomogeneities in the coefficient of nonlinearity, attenuation and speed of sound. This method is directionally independent and can deal with large three-dimensional domains, measuring hundreds of wavelengths and periods, and scattering. Here, we present the first synthetic harmonic ultrasound images generated with INCS. The images are created using a delay-and-sum aperture focusing scheme. Results show the applicability of the INCS method as a simulator for ultrasound harmonic imaging systems.
Keywords :
bioacoustics; biological tissues; biomedical transducers; biomedical ultrasonics; harmonic generation; image registration; iterative methods; medical image processing; ultrasonic absorption; ultrasonic propagation; ultrasonic scattering; ultrasonic transducers; INCS method; arbitrary inhomogeneities; attenuation coefficient; delay-and-sum aperture focusing scheme; full-wave method; iterative nonlinear contrast source method; multiple attenuation; multiple scattering; nonlinear pressure wave field modeling; nonlinear ultrasound propagation; nonlinearity coefficient; numerical methods; soft biomedical tissue; sound speed; synthetic harmonic ultrasound image generation; three-dimensional domain; three-dimensional nonlinear acoustic wave field modeling; ultrasonic pulse echo registration; ultrasound harmonic imaging systems; ultrasound modalities; ultrasound transducers; Attenuation; Computational modeling; Harmonic analysis; Imaging; Mathematical model; Transducers; Ultrasonic imaging;
Conference_Titel :
Ultrasonics Symposium (IUS), 2013 IEEE International
Conference_Location :
Prague
Print_ISBN :
978-1-4673-5684-8
DOI :
10.1109/ULTSYM.2013.0096