A computational method of reduced complexity is developed for simulating vascular hemodynamics by combination of one-dimensional (1D) wave propagation models for the blood vessels with zero-dimensional (0D) lumped models for the microcirculation. Despite the reduced dimension, current algorithms used to solve the model equations and simulate pressure and flow are rather complex, thereby limiting acceptance in the medical field. This complexity mainly arises from the methods used to combine the 1D and the 0D model equations. In this paper a numerical method is presented that no longer requires additional coupling methods and enables random combinations of 1D and 0D models using pressure as only state variable. The method is applied to a vasc...
Abstract. Several lumped parameter, or zero-dimensional (0-D), models of the micro-circulation are c...
Abstract. Blood dynamics in cardiovascular system involve length scales in vastly different ranges, ...
A reduced-order model for an efficient analysis of cardiovascular hemodynamics problems using multis...
A computational method of reduced complexity is developed for simulating vascular hemodynamics by co...
A computational method of reduced complexity is developed for simulating vascular hemodynamics by co...
This work was also published as a Rice University thesis/dissertation: http://hdl.handle.net/1911/96...
A benchmark study by Boileau et al tested 6 commonly used numerical schemes for 1D wave propagation,...
Mathematical modeling at the level of the full cardiovascular system requires the numerical ap-proxi...
One-dimensional (1D) modeling is a powerful tool for studying haemodynamics; however, a comprehensiv...
Thesis (MIng (Mechanical Engineering))--North-West University, Potchefstroom Campus, 2012.The purpos...
The blood flow in arterial trees in the cardiovascular system can be simulated with the help of diff...
A mathematical model of blood flow through an arterial vessel is presented and the wave propagation ...
The blood flow in arterial trees in the cardiovascular system can be simulated with the help of diff...
The purpose of this thesis is to develop a non-linear, one-dimensional (1-D) model of pulse wave pro...
A dierential model of blood ow through an arterial vessel is presented. It consists of a one-dimensi...
Abstract. Several lumped parameter, or zero-dimensional (0-D), models of the micro-circulation are c...
Abstract. Blood dynamics in cardiovascular system involve length scales in vastly different ranges, ...
A reduced-order model for an efficient analysis of cardiovascular hemodynamics problems using multis...
A computational method of reduced complexity is developed for simulating vascular hemodynamics by co...
A computational method of reduced complexity is developed for simulating vascular hemodynamics by co...
This work was also published as a Rice University thesis/dissertation: http://hdl.handle.net/1911/96...
A benchmark study by Boileau et al tested 6 commonly used numerical schemes for 1D wave propagation,...
Mathematical modeling at the level of the full cardiovascular system requires the numerical ap-proxi...
One-dimensional (1D) modeling is a powerful tool for studying haemodynamics; however, a comprehensiv...
Thesis (MIng (Mechanical Engineering))--North-West University, Potchefstroom Campus, 2012.The purpos...
The blood flow in arterial trees in the cardiovascular system can be simulated with the help of diff...
A mathematical model of blood flow through an arterial vessel is presented and the wave propagation ...
The blood flow in arterial trees in the cardiovascular system can be simulated with the help of diff...
The purpose of this thesis is to develop a non-linear, one-dimensional (1-D) model of pulse wave pro...
A dierential model of blood ow through an arterial vessel is presented. It consists of a one-dimensi...
Abstract. Several lumped parameter, or zero-dimensional (0-D), models of the micro-circulation are c...
Abstract. Blood dynamics in cardiovascular system involve length scales in vastly different ranges, ...
A reduced-order model for an efficient analysis of cardiovascular hemodynamics problems using multis...