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Structured tree outflow condition for blood flow in larger systemic arteries

American Journal of Physiology-Heart and Circulatory Physiology · 1999 · Vol. 276(1) · pp. H257–H268
Mette S. Olufsen

Abstract

A central problem in modeling blood flow and pressure in the larger systemic arteries is determining a physiologically based boundary condition so that the arterial tree can be truncated after a few generations. We have used a structured tree attached to the terminal branches of the truncated arterial tree in which the root impedance is estimated using a semianalytical approach based on a linearization of the viscous axisymmetric Navier-Stokes equations. This provides a dynamic boundary condition that maintains the phase lag between blood flow and pressure as well as the high-frequency oscillations present in the impedance spectra. Furthermore, it accommodates the wave propagation effects for the entire systemic arterial tree. The result is a model that is physiologically adequate as well as computationally feasible. For validation, we have compared the structured tree model with a pure resistance and a windkessel model as well as with measured data.

Cardiovascular Health and Disease PreventionCardiovascular Function and Risk FactorsHemodynamic Monitoring and TherapyArterial treeTree (set theory)OutflowBlood flowMechanicsFlow (mathematics)MathematicsLinearizationBoundary value problemMathematical analysis

MeSH terms

ArteriesBlood PressureHumansModels, CardiovascularPulsatile FlowRegional Blood FlowVascular Resistance
Citations
435
FWCI
1.99
field-weighted impact
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48
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87%
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Cited by
Validation of a one-dimensional model of the systemic arterial tree
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References
Blood Flow in Arteries
The American Journal of the Medical Sciences · 1963 · 1,569 citations
Textbook of Medical Physiology
Annals of Internal Medicine · 1966 · 9,816 citations
Analog studies of the human systemic arterial tree
Journal of Biomechanics · 1969 · 678 citations
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