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Validation of a one-dimensional model of the systemic arterial tree

American Journal of Physiology-Heart and Circulatory Physiology · 2009 · Vol. 297(1) · pp. H208–H222
Philippe ReymondFabrice MerendaFabienne PerrenDaniel A. RüfenachtNikolaos Stergiopulos

Abstract

A distributed model of the human arterial tree including all main systemic arteries coupled to a heart model is developed. The one-dimensional (1-D) form of the momentum and continuity equations is solved numerically to obtain pressures and flows throughout the systemic arterial tree. Intimal shear is modeled using the Witzig-Womersley theory. A nonlinear viscoelastic constitutive law for the arterial wall is considered. The left ventricle is modeled using the varying elastance model. Distal vessels are terminated with three-element windkessels. Coronaries are modeled assuming a systolic flow impediment proportional to ventricular varying elastance. Arterial dimensions were taken from previous 1-D models and were extended to include a detailed description of cerebral vasculature. Elastic properties were taken from the literature. To validate model predictions, noninvasive measurements of pressure and flow were performed in young volunteers. Flow in large arteries was measured with MRI, cerebral flow with ultrasound Doppler, and pressure with tonometry. The resulting 1-D model is the most complete, because it encompasses all major segments of the arterial tree, accounts for ventricular-vascular interaction, and includes an improved description of shear stress and wall viscoelasticity. Model predictions at different arterial locations compared well with measured flow and pressure waves at the same anatomical points, reflecting the agreement in the general characteristics of the “generic 1-D model” and the “average subject” of our volunteer population. The study constitutes a first validation of the complete 1-D model using human pressure and flow data and supports the applicability of the 1-D model in the human circulation.

Cardiovascular Health and Disease PreventionCardiovascular Function and Risk FactorsCerebrovascular and Carotid Artery DiseasesArterial treeViscoelasticityPopulationFlow (mathematics)MechanicsVentricleMathematicsPhysicsCardiologyMedicine

Funding

  • Centre d'Imagerie BioMédicale
Citations
618
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16.54
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74
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99%
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References
Blood Flow in Arteries
The American Journal of the Medical Sciences · 1963 · 1,569 citations
Structured tree outflow condition for blood flow in larger systemic arteries
American Journal of Physiology-Heart and Circulatory Physiology · 1999 · 435 citations
Analog studies of the human systemic arterial tree
Journal of Biomechanics · 1969 · 678 citations
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