This review paper addresses the so called geometric multiscale approach for the numerical simulation of blood flow problems, from its origin (that we can collocate in the second half of ’90s) to our days. By this approach the blood fluid-dynamics in the whole circulatory system is described mathematically by means of heterogeneous problems featuring different degree of detail and different geometric dimension that interact together through appropriate interface coupling conditions. Our review starts with the introduction of the stand-alone problems, namely the 3D fluidstructure interaction problem, its reduced representation by means of 1D models, and the so-called lumped parameters (aka 0D) models, where only the dependence on time survive...
Arterial tree hemodynamics can be simulated by means of several models of different level of complex...
Key Words: Cardiovascular system, fluid-structure interaction, geometrical multiscale modeling, mass...
Arterial tree hemodynamics can be simulated by means of several models of different level of complex...
On the one hand the heterogeneity of the circulatory system requires the use of different models in ...
This work is focused on the development of a geometrical multiscale framework for modelling the huma...
Over the past years, mathematical modelling and numerical simulation play a very important role in t...
International audienceFor the numerical simulation of the circulatory system, geometrical multiscale...
The fluid structure interaction mechanism in vascular dynamics can be described by either 3D or 1D m...
In hemodynamics, local phenomena, such as the perturbation of flow pattern in a specific vascular re...
In this paper we show how numerical solutions of human cardiovascular system may be devised by coupl...
The blood flow in arterial trees in the cardiovascular system can be simulated with the help of diff...
In this paper we present a multiscale model for the analysis of fluid-structure interaction which co...
The blood flow in arterial trees in the cardiovascular system can be simulated with the help of diff...
The aim of this work is the development of a geometrical multiscale framework for the simulation of ...
A geometrical multiscale model for blood flow through an ideal left ventricle and the main arteries ...
Arterial tree hemodynamics can be simulated by means of several models of different level of complex...
Key Words: Cardiovascular system, fluid-structure interaction, geometrical multiscale modeling, mass...
Arterial tree hemodynamics can be simulated by means of several models of different level of complex...
On the one hand the heterogeneity of the circulatory system requires the use of different models in ...
This work is focused on the development of a geometrical multiscale framework for modelling the huma...
Over the past years, mathematical modelling and numerical simulation play a very important role in t...
International audienceFor the numerical simulation of the circulatory system, geometrical multiscale...
The fluid structure interaction mechanism in vascular dynamics can be described by either 3D or 1D m...
In hemodynamics, local phenomena, such as the perturbation of flow pattern in a specific vascular re...
In this paper we show how numerical solutions of human cardiovascular system may be devised by coupl...
The blood flow in arterial trees in the cardiovascular system can be simulated with the help of diff...
In this paper we present a multiscale model for the analysis of fluid-structure interaction which co...
The blood flow in arterial trees in the cardiovascular system can be simulated with the help of diff...
The aim of this work is the development of a geometrical multiscale framework for the simulation of ...
A geometrical multiscale model for blood flow through an ideal left ventricle and the main arteries ...
Arterial tree hemodynamics can be simulated by means of several models of different level of complex...
Key Words: Cardiovascular system, fluid-structure interaction, geometrical multiscale modeling, mass...
Arterial tree hemodynamics can be simulated by means of several models of different level of complex...