Numerical modeling in arterial hemodynamics incorporating fluid-structure interaction and microcirculation

Abstract Background The effects of arterial wall compliance on blood flow have been revealed using fluid-structure interaction in last decades. However, microcirculation is not considered in previous researches. In fact, microcirculation plays a key role in regulating blood flow. Therefore, it is ve...

Full description

Bibliographic Details
Main Authors: Fan He, Lu Hua, Tingting Guo
Format: Article
Language:English
Published: BMC 2021-01-01
Series:Theoretical Biology and Medical Modelling
Subjects:
Online Access:https://doi.org/10.1186/s12976-021-00136-z
id doaj-c249e01cd66a4e5aa201ca2c5edd5202
record_format Article
spelling doaj-c249e01cd66a4e5aa201ca2c5edd52022021-01-24T12:17:00ZengBMCTheoretical Biology and Medical Modelling1742-46822021-01-0118111010.1186/s12976-021-00136-zNumerical modeling in arterial hemodynamics incorporating fluid-structure interaction and microcirculationFan He0Lu Hua1Tingting Guo2Department of Mechanics, School of Science, Beijing University of Civil Engineering and ArchitectureThrombosis Center, National Clinical Research Center for Cardiovascular Diseases, State Key Laboratory of Cardiovascular Disease, Fuwai Hospital, National Center for Cardiovascular Diseases, Chinese Academy of Medical Sciences and Peking Union Medical CollegeThrombosis Center, National Clinical Research Center for Cardiovascular Diseases, State Key Laboratory of Cardiovascular Disease, Fuwai Hospital, National Center for Cardiovascular Diseases, Chinese Academy of Medical Sciences and Peking Union Medical CollegeAbstract Background The effects of arterial wall compliance on blood flow have been revealed using fluid-structure interaction in last decades. However, microcirculation is not considered in previous researches. In fact, microcirculation plays a key role in regulating blood flow. Therefore, it is very necessary to involve microcirculation in arterial hemodynamics. Objective The main purpose of the present study is to investigate how wall compliance affects the flow characteristics and to establish the comparisons of these flow variables with rigid wall when microcirculation is considered. Methods We present numerical modeling in arterial hemodynamics incorporating fluid-structure interaction and microcirculation. A novel outlet boundary condition is employed to prescribe microcirculation in an idealised model. Results The novel finding in this work is that wall compliance under the consideration of microcirculation leads to the increase of wall shear stress in contrast to rigid wall, contrary to the traditional result that wall compliance makes wall shear stress decrease when a constant or time dependent pressure is specified at an outlet. Conclusions This work provides the valuable study of hemodynamics under physiological and realistic boundary conditions and proves that wall compliance may have a positive impact on wall shear stress based on this model. This methodology in this paper could be used in real model simulations.https://doi.org/10.1186/s12976-021-00136-zFluid-structure interactionMicrocirculationHemodynamicsOutlet boundary conditionNumerical modeling
collection DOAJ
language English
format Article
sources DOAJ
author Fan He
Lu Hua
Tingting Guo
spellingShingle Fan He
Lu Hua
Tingting Guo
Numerical modeling in arterial hemodynamics incorporating fluid-structure interaction and microcirculation
Theoretical Biology and Medical Modelling
Fluid-structure interaction
Microcirculation
Hemodynamics
Outlet boundary condition
Numerical modeling
author_facet Fan He
Lu Hua
Tingting Guo
author_sort Fan He
title Numerical modeling in arterial hemodynamics incorporating fluid-structure interaction and microcirculation
title_short Numerical modeling in arterial hemodynamics incorporating fluid-structure interaction and microcirculation
title_full Numerical modeling in arterial hemodynamics incorporating fluid-structure interaction and microcirculation
title_fullStr Numerical modeling in arterial hemodynamics incorporating fluid-structure interaction and microcirculation
title_full_unstemmed Numerical modeling in arterial hemodynamics incorporating fluid-structure interaction and microcirculation
title_sort numerical modeling in arterial hemodynamics incorporating fluid-structure interaction and microcirculation
publisher BMC
series Theoretical Biology and Medical Modelling
issn 1742-4682
publishDate 2021-01-01
description Abstract Background The effects of arterial wall compliance on blood flow have been revealed using fluid-structure interaction in last decades. However, microcirculation is not considered in previous researches. In fact, microcirculation plays a key role in regulating blood flow. Therefore, it is very necessary to involve microcirculation in arterial hemodynamics. Objective The main purpose of the present study is to investigate how wall compliance affects the flow characteristics and to establish the comparisons of these flow variables with rigid wall when microcirculation is considered. Methods We present numerical modeling in arterial hemodynamics incorporating fluid-structure interaction and microcirculation. A novel outlet boundary condition is employed to prescribe microcirculation in an idealised model. Results The novel finding in this work is that wall compliance under the consideration of microcirculation leads to the increase of wall shear stress in contrast to rigid wall, contrary to the traditional result that wall compliance makes wall shear stress decrease when a constant or time dependent pressure is specified at an outlet. Conclusions This work provides the valuable study of hemodynamics under physiological and realistic boundary conditions and proves that wall compliance may have a positive impact on wall shear stress based on this model. This methodology in this paper could be used in real model simulations.
topic Fluid-structure interaction
Microcirculation
Hemodynamics
Outlet boundary condition
Numerical modeling
url https://doi.org/10.1186/s12976-021-00136-z
work_keys_str_mv AT fanhe numericalmodelinginarterialhemodynamicsincorporatingfluidstructureinteractionandmicrocirculation
AT luhua numericalmodelinginarterialhemodynamicsincorporatingfluidstructureinteractionandmicrocirculation
AT tingtingguo numericalmodelinginarterialhemodynamicsincorporatingfluidstructureinteractionandmicrocirculation
_version_ 1724326106429915136