Title :
Anisotropy of ultrasonic backscatter by blood in shear flow: Monte Carlo simulations
Author :
Savéry, David ; Cloutier, Guy
Author_Institution :
Res. Center, Montreal Univ., Que., Canada
Abstract :
The relation between the heterogeneous microstructure of biological tissues and their measurable scattering properties is still poorly understood. In particular, physical explanation of blood hyperechogenicity when submitted to low shear forces appears incomplete. To quantify the contribution of erythrocyte aggregation to this phenomenon, Monte Carlo 2D simulations of the red cell spatial pattern are performed. The backscattering coefficient of blood at 5 and 40 MHz is estimated for two orthogonal insonification angles, as a function of effective adhesive energy Vagg and anisotropy index a. Isotropic aggregation resulted in an enhanced backscatter at 5 MHz (+7 dB) but had a minor effect at 40 MHz. Addition of spatial anisotropy essentially diminished the backscatter at 5 MHz, independently on the angle, whereas at 40 MHz, the perpendicular backscatter largely exceeded the parallel backscatter (+6 dB). This showed that anisotropy present in the spatial microscopic pattern can be detected in the high frequency scattering regime, while low frequency backscatter is more affected by larger geometrical features as the aggregate size.
Keywords :
Monte Carlo methods; aggregation; backscatter; bioacoustics; biomedical ultrasonics; cell motility; haemorheology; shear flow; ultrasonic scattering; 40 MHz; 5 MHz; Monte Carlo 2D simulations; aggregate size; anisotropy index; backscattering coefficient; biological tissues; blood; blood hyperechogenicity; cardiovascular diseases; effective adhesive energy; enhanced backscatter; erythrocyte aggregation; hemorheology; heterogeneous microstructure; high frequency scattering regime; isotropic aggregation; larger geometrical features; low frequency backscatter; low shear forces; orthogonal insonification angles; parallel backscatter; perpendicular backscatter; red cell spatial pattern; scattering properties; shear flow; spatial anisotropy; spatial microscopic pattern; ultrasonic backscatter anisotropy; Anisotropic magnetoresistance; Backscatter; Biological system modeling; Biological tissues; Blood; Frequency; Microstructure; Monte Carlo methods; Scattering; Ultrasonic variables measurement;
Conference_Titel :
Ultrasonics Symposium, 2002. Proceedings. 2002 IEEE
Print_ISBN :
0-7803-7582-3
DOI :
10.1109/ULTSYM.2002.1192582