DocumentCode :
111681
Title :
Experimental Investigation of the Influence of the Aortic Stiffness on Hemodynamics in the Ascending Aorta
Author :
Gulan, Utku ; Luthi, Beat ; Holzner, Markus ; Liberzon, Alex ; Tsinober, Arkady ; Kinzelbach, Wolfgang
Author_Institution :
Inst. of Environ. Eng., ETH Zurich, Zurich, Switzerland
Volume :
18
Issue :
6
fYear :
2014
fDate :
Nov. 2014
Firstpage :
1775
Lastpage :
1780
Abstract :
A three-dimensional (3-D) pulsatile aortic flow in a human ascending aorta is studied to investigate the effect of the aortic stiffness on the flow field and turbulent fluctuating velocities in the ascending aorta. A nonintrusive optical measurement technique, 3-D particle tracking velocimetry (3D-PTV), has been applied to anatomically accurate phantoms under clinically realistic conditions. A compliant silicon phantom was used to mimic the healthy aorta, and a rigid model was used to imitate the pathological case that appears in aortas for example as a result of aging. The realistic models are transparent which allows optical access to the investigation domain, and the index of refraction was matched to avoid optical distortions. Our results revealed that the aortic stiffness leads to an increase in systolic velocity and a decrease in the Windkessel effect, which is associated with the diastolic blood pressure. Furthermore, we found that the turbulent kinetic energy is about an order of magnitude higher for the rigid aorta, that is, an increase in aortic stiffness increases the magnitude of turbulent fluctuating velocities. The spatial distribution of the flow velocity showed that the flow is more organized and coherent spiraling patterns develop for the compliant aorta which helps to dampen the influence of disturbed flow. Finally, we observed higher Lagrangian acceleration and hence higher instantaneous forces acting on blood particles in the stiff case which implies that aging and hence arterial stiffening provokes distinctive alterations in blood flow, and these alterations may cause pathological symptoms in the cardiovascular system.
Keywords :
biomechanics; blood flow measurement; blood pressure measurement; blood vessels; cardiovascular system; geriatrics; optical distortion; pattern formation; phantoms; physiological models; refractive index; turbulence; 3-D particle tracking velocimetry; 3D-PTV; Lagrangian acceleration; Windkessel effect; aging; aortic stiffness; arterial stiffening; blood flow; blood particles; cardiovascular system; clinically realistic conditions; coherent spiraling patterns; compliant aorta; compliant silicon phantom; diastolic blood pressure; disturbed flow; flow field; flow velocity; hemodynamics; human ascending aorta; instantaneous forces; investigation domain; nonintrusive optical measurement technique; optical access; optical distortions; pathological case; pathological symptoms; realistic models; refraction index; rigid aorta; rigid model; spatial distribution; systolic velocity; three-dimensional pulsatile aortic flow; turbulent fluctuating velocity magnitude; turbulent kinetic energy; Aging; Arteries; Blood flow; Hemodynamics; Kinetic energy; Particle tracking; Aortic flow; Lagrangian flow field; Windkessel effect; aortic stiffness; ascending aorta; three-dimensional particle tracking velocimetry (3D-PTV);
fLanguage :
English
Journal_Title :
Biomedical and Health Informatics, IEEE Journal of
Publisher :
ieee
ISSN :
2168-2194
Type :
jour
DOI :
10.1109/JBHI.2014.2322934
Filename :
6813616
Link To Document :
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