We consider the coupling between three-dimensional (D) and one-dimensional (D) fluid-structure interaction (FSI) models describing blood flow inside compliant vessels. The D model is a hyperbolic system of partial differential equations. The D model consists of the Navier-Stokes equations for incompressible newtonian fluids coupled with a model for the vessel wall dynamics. A non standard formulation for the Navier-Stokes equations is adopted to have suitable boundary conditions for the coupling of the models. With this we derive an energy estimate for the fully D-D FSI coupling. We consider several possible models for the mechanics of the vessel wall in the D problem and show how the D-D coupling depends on them. Several comparative numerical tests illustrating the coupling are presented.
@article{M2AN_2007__41_4_743_0, author = {Formaggia, Luca and Moura, Alexandra and Nobile, Fabio}, title = {On the stability of the coupling of 3D and 1D fluid-structure interaction models for blood flow simulations}, journal = {ESAIM: Mathematical Modelling and Numerical Analysis - Mod\'elisation Math\'ematique et Analyse Num\'erique}, volume = {41}, year = {2007}, pages = {743-769}, doi = {10.1051/m2an:2007039}, mrnumber = {2362913}, zbl = {1139.92009}, language = {en}, url = {http://dml.mathdoc.fr/item/M2AN_2007__41_4_743_0} }
Formaggia, Luca; Moura, Alexandra; Nobile, Fabio. On the stability of the coupling of 3D and 1D fluid-structure interaction models for blood flow simulations. ESAIM: Mathematical Modelling and Numerical Analysis - Modélisation Mathématique et Analyse Numérique, Tome 41 (2007) pp. 743-769. doi : 10.1051/m2an:2007039. http://gdmltest.u-ga.fr/item/M2AN_2007__41_4_743_0/
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