DocumentCode :
186143
Title :
An external tissue support model for the arterial wall based on in vivo data
Author :
Itu, Lucian ; Suciu, Constantin
Author_Institution :
Dept. of Autom. & Inf. Technol., Transilvania Univ. of Brasov, Braşov, Romania
fYear :
2014
fDate :
11-12 June 2014
Firstpage :
1
Lastpage :
5
Abstract :
We introduce a method for modeling external tissue support of human arterial hemodynamics. An effective perivascular pressure is considered and the external tissue support model is bas ed on the separati on of total stiffness into arterial wall stiffness and external tissue stiffness. To perform this separation, first the cross-sectional area values at the hypothetical zero pressure state are computed. Finally, a model with two parallel springs is used to determine the material properties of each component. The parameter values are estimated from in vivo data acquired at end diastole. By employing a reduced-order multiscale blood flow model the method is used to study the global effects of external tissue support on the human arterial circulation. The main conclusions are: pressure pulse increases (especially in the proximal aorta), wave speed increases, backward travelling pressure and flow rate waves arrive earlier, the total arterial compliance decreases, cross-sectional area values decrease and oscillations of flow rate and pressure profiles at distal locations are dampened. The computed hemodynamic quantities of interest can be combined with a growth model to predict patient-specific arterial wall remodeling.
Keywords :
biomechanics; blood vessels; elastic constants; haemodynamics; physiological models; arterial wall stiffness; backward travelling pressure; cross-sectional area values; distal locations; end diastole; external tissue stiffness; external tissue support modeling; flow rate oscillation; flow rate waves; global effects; growth model; human arterial circulation; human arterial hemodynamics; hypothetical zero pressure state; in vivo data; material properties; parallel springs; parameter values; patient-specific arterial wall remodeling; perivascular pressure; pressure profile; pressure pulse; proximal aorta; reduced-order multiscale blood flow model; total arterial compliance; total stiffness; wave speed; Arteries; Biological system modeling; Blood flow; Computational modeling; In vivo; Mathematical model; Solid modeling; arterial wall; external tissue; in vivo; reduced-order blood flow model; wave speed;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Medical Measurements and Applications (MeMeA), 2014 IEEE International Symposium on
Conference_Location :
Lisboa
Print_ISBN :
978-1-4799-2920-7
Type :
conf
DOI :
10.1109/MeMeA.2014.6860049
Filename :
6860049
Link To Document :
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