Title :
Shear wave elastography: modeling of the shear wave propagation in heterogeneous tissue by pseudospectral method
Author :
Callé, Samuel ; Remenieras, Jean-Pierre ; Hachemi, Melouka Elkateb ; Patat, Frédéric
Author_Institution :
Faculte de medecine, LUSSI/GIP Ultrasons FRE CNRS 2448, Tours, France
Abstract :
Shear wave elastography is a promising approach to characterize mechanical properties of soft tissue. By using radiation pressure, it is possible to create deeply localized stress in biological tissue which generates shear waves. We have developed a numerical technique, based on a pseudospectral (PS) method, which solves the wave equation with a source term in an isotropic solid. Perfectly matched layers (PML) are used on the boundaries of the numerical grid to avoid reflections. Moreover, the temporal evolution is done with an Adams-Bashforth method. In the case of a point source in a homogeneous elastic medium, numerical results are favorably compared (directivity patterns, displacement shape, ...) with analytical results computed with the elastodynamic Green´s function. The shear wave propagation has then been simulated in a 2D plane comprising a small inclusion with a shear elasticity coefficient different from the surrounding tissue. The shear wavefront deformation, as well as the diffraction and reflection of the shear wave, can be calculated and analyzed.
Keywords :
Green´s function methods; biomedical ultrasonics; elastodynamics; shear deformation; ultrasonic diffraction; ultrasonic reflection; ultrasonic waves; wave equations; Adams-Bashforth method; biological tissue localized stress; elastodynamic Green´s function; heterogeneous tissue; homogeneous elastic medium; inclusion shear elasticity coefficient; perfectly matched layers; pseudospectral method; radiation pressure induced stress; shear wave diffraction; shear wave elasticity imaging; shear wave elastography; shear wave propagation; shear wave reflection; shear wavefront deformation; soft tissue mechanical properties; supersonic shear imaging; wave equation; Biological system modeling; Biological tissues; Evolution (biology); Mechanical factors; Partial differential equations; Perfectly matched layers; Reflection; Shape; Solids; Stress;
Conference_Titel :
Ultrasonics Symposium, 2004 IEEE
Print_ISBN :
0-7803-8412-1
DOI :
10.1109/ULTSYM.2004.1417659