Modeling blood flow in networks of viscoelastic vessels with the 1-D augmented fluid-structure interaction system
Francesco Piccioli, Giulia Bertaglia, Alessandro Valiani, Valerio, Caleffi

TL;DR
This paper develops a 1-D augmented fluid-structure interaction model incorporating viscoelastic vessel walls using the Standard Linear Solid Model, demonstrating accurate, energy-conserving simulations of blood flow in complex vascular networks.
Contribution
It introduces a novel boundary condition implementation for viscoelastic vessels in large circulatory systems using hyperbolic models and Riemann problems.
Findings
Model accurately captures viscoelastic effects in blood flow.
Second-order accuracy of the numerical scheme is confirmed.
High sensitivity of flow dynamics to viscoelastic parameters.
Abstract
A noteworthy aspect in blood flow modeling is the definition of the mechanical interaction between the fluid flow and the biological structure that contains it, namely the vessel wall. It has been demonstrated that the addition of a viscous contribution to the mechanical characterization of vessels brings positive results when compared to in-vivo measurements. In this context, the numerical implementation of boundary conditions able to keep memory of the viscoelastic contribution of vessel walls assumes an important role, especially when dealing with large circulatory systems. In this work, viscoelasticity is taken into account in entire networks via the Standard Linear Solid Model. The implementation of the viscoelastic contribution at boundaries (inlet, outlet and junctions), is carried out considering the hyperbolic nature of the mathematical model. A non-linear system is established…
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Taxonomy
TopicsCardiovascular Health and Disease Prevention · Coronary Interventions and Diagnostics · Blood properties and coagulation
