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Por favor, use este identificador para citar o enlazar este ítem: https://hdl.handle.net/20.500.12008/41536 Cómo citar
Título: A simulation based approach for shear wave attenuation quantification in transverse isotropic tissues: preliminary results
Autor: Budelli, Eliana
Brum, Javier
Lema, Patricia
Negreira, Carlos
Tipo: Póster
Palabras clave: Diffraction correction, Shear wave attenuation, Transverse isotropic tissue
Fecha de publicación: 2022
Resumen: Shear wave attenuation should be corrected by diffraction effects induced by the shear wave source when estimating mechanical properties of tissue. In this work we address this problem to provide a full mechanical characterization of transverse isotropic tissue. To this end, experimental measurements were combined with numerical simulations. Simulation was conducted under the assumption of a purely elastic TIT. Under these conditions the SWA can be attributed completely to diffraction effects. Results of the simulation were used to correct experimental measurements. The validity of this approach was tested numerically and experimentally showing good results. Applications in sports medicine are envisaged.
Editorial: IEEE
EN: IEEE International Ultrasonics Symposium, 10-13 October, 2022, Venice - Italy
Financiadores: ANII: FMV_1_2019_1_155527
Citación: Budelli, E, Brum, J, Lema, P [y otro autor]. "A simulation based approach for shear wave attenuation quantification in transverse isotropic tissues: preliminary results". IEEE International Ultrasonics Symposium. [en línea] 10-13 October, 2022, Venice - Italy. 1 h.
Licencia: Licencia Creative Commons Atribución - No Comercial - Compartir Igual (CC - By-NC-SA 4.0)
Aparece en las colecciones: Publicaciones académicas y científicas - Facultad de Ciencias

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