DocumentCode
1358508
Title
Modeling and analysis of ultrasound backscattering by spherical aggregates and rouleaux of red blood cells
Author
Teh, Beng-Ghee ; Cloutier, Guy
Author_Institution
Cypress Semicond., San Jose, CA, USA
Volume
47
Issue
4
fYear
2000
fDate
7/1/2000 12:00:00 AM
Firstpage
1025
Lastpage
1035
Abstract
The present study concerns the modeling and analysis of ultrasound backscattering by red blood cell (RBC) aggregates, which under pathological conditions play a significant role in the rheology of blood within human vessels. A theoretical model based on the convolution between a tissue matrix and a point spread function, representing, respectively, the RBC aggregates and the characteristics of the ultrasound system, was used to examine the influence of the scatterer shape and size on the backscattered power. Both scatterers in the form of clumps of RBC aggregates and rouleaux were modeled. For all simulations, the hematocrit was kept constant at 10%, the ultrasound frequency was 10 MHz, the insonification angle was varied from 0 to 90/spl deg/, and the scatterer size (diameter for clumps and length for rouleaux) ranged from 4 /spl mu/m to 120 /spl mu/m. Under Rayleigh scattering by assuming a Poisson distribution of scatterers in space, the ultrasound backscattered power increased linearly with the particle volume. For non-Rayleigh scatterers, the intensity of the echoes diminished as the scatterer volume increased, with the exception of rouleaux at an angle of 90/spl deg/. As expected, the backscattered power was angularly dependent for anisotropic particles (rouleaux). The ultrasound backscattered power did not always increase with the size of the aggregates, especially when they were no longer Rayleigh scatterers. In the case of rouleaux, the anisotropy of the backscattered power is emphasized in the non-Rayleigh region.
Keywords
aggregation; backscatter; bioacoustics; blood; cellular biophysics; physiological models; ultrasonic scattering; 10 MHz; 4 to 120 mum; Poisson distributed scatterers; Rayleigh scattering; blood rheology; erythrocytes; hematocrit; particle volume; pathological conditions; point spread function; red blood cells; rouleaux; scatterer shape; spherical aggregates; theoretical model; tissue matrix; ultrasound backscattering; Aggregates; Anisotropic magnetoresistance; Backscatter; Particle scattering; Pathology; Power system modeling; Rayleigh scattering; Red blood cells; Rheology; Ultrasonic imaging;
fLanguage
English
Journal_Title
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher
ieee
ISSN
0885-3010
Type
jour
DOI
10.1109/58.852086
Filename
852086
Link To Document