DocumentCode :
1433700
Title :
Forward problem study of an effective medium model for ultrasound blood characterization
Author :
Franceschini, E. ; Metzger, B. ; Cloutier, G.
Author_Institution :
Lab. de Mec. et d´Acoust. (LMA), Aix-Marseille Univ., Marseille, France
Volume :
58
Issue :
12
fYear :
2011
fDate :
12/1/2011 12:00:00 AM
Firstpage :
2668
Lastpage :
2679
Abstract :
The structure factor model (SFM) is a scattering model developed to simulate the backscattering coefficient (BSC) of aggregated red blood cells (RBCs). However, the SFM can hardly be implemented to estimate the structural aggregate parameters in the framework of an inverse problem formulation. A scattering model called the effective medium theory combined with the SFM (EMTSFM) is thus proposed to approximate the SFM. The EMTSFM assumes that aggregates of RBCs can be treated as individual homogeneous scatterers, which have effective properties determined by the acoustical characteristics and concentration of RBCs within aggregates. The EMTSFM parameterizes the BSC by three indices: the aggregate radius, the concentration of RBCs with- in aggregates (the aggregate compactness), and the systemic hematocrit. The goodness of fit of the EMTSFM approximation in comparison with the SFM was then examined. Based on a 2-D study, the EMTSFM was found to approximate the SFM with relative errors less than 30% for a product of the wavenumber times the mean aggregate radius krΛκ <; 1.32. The main contribution of this work is the parameterization of the BSC with the RBC aggregate compactness, which is of relevance in clinical hemorheology because it reflects the binding energy between RBCs.
Keywords :
backscatter; binding energy; biomedical ultrasonics; cellular biophysics; haemorheology; inverse problems; ultrasonic scattering; EMTSFM; RBC; acoustical characteristics; aggregated red blood cells; backscattering coefficient; binding energy; clinical hemorheology; effective medium model; effective medium theory; forward problem study; inverse problem formulation; scattering model; structure factor model; systemic hematocrit; ultrasound blood characterization; Aggregates; Approximation methods; Backscatter; Blood; Computational modeling; Scattering; Ultrasonic imaging; Animals; Blood; Computer Simulation; Erythrocyte Aggregation; Erythrocytes; Humans; Image Interpretation, Computer-Assisted; Models, Cardiovascular;
fLanguage :
English
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-3010
Type :
jour
DOI :
10.1109/TUFFC.2011.2129
Filename :
6141157
Link To Document :
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