Cargando…

The Comparison of Different Constitutive Laws and Fiber Architectures for the Aortic Valve on Fluid–Structure Interaction Simulation

Built on the hybrid immersed boundary/finite element (IB/FE) method, fluid–structure interaction (FSI) simulations of aortic valve (AV) dynamics are performed with three different constitutive laws and two different fiber architectures for the AV leaflets. An idealized AV model is used and mounted i...

Descripción completa

Detalles Bibliográficos
Autores principales: Cai, Li, Zhang, Ruihang, Li, Yiqiang, Zhu, Guangyu, Ma, Xingshuang, Wang, Yongheng, Luo, Xiaoyu, Gao, Hao
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8266211/
https://www.ncbi.nlm.nih.gov/pubmed/34248670
http://dx.doi.org/10.3389/fphys.2021.682893
_version_ 1783719896633311232
author Cai, Li
Zhang, Ruihang
Li, Yiqiang
Zhu, Guangyu
Ma, Xingshuang
Wang, Yongheng
Luo, Xiaoyu
Gao, Hao
author_facet Cai, Li
Zhang, Ruihang
Li, Yiqiang
Zhu, Guangyu
Ma, Xingshuang
Wang, Yongheng
Luo, Xiaoyu
Gao, Hao
author_sort Cai, Li
collection PubMed
description Built on the hybrid immersed boundary/finite element (IB/FE) method, fluid–structure interaction (FSI) simulations of aortic valve (AV) dynamics are performed with three different constitutive laws and two different fiber architectures for the AV leaflets. An idealized AV model is used and mounted in a straight tube, and a three-element Windkessel model is further attached to the aorta. After obtaining ex vivo biaxial tensile testing of porcine AV leaflets, we first determine the constitutive parameters of the selected three constitutive laws by matching the analytical stretch–stress relations derived from constitutive laws to the experimentally measured data. Both the average error and relevant R-squared value reveal that the anisotropic non-linear constitutive law with exponential terms for both the fiber and cross-fiber directions could be more suitable for characterizing the mechanical behaviors of the AV leaflets. We then thoroughly compare the simulation results from both structural mechanics and hemodynamics. Compared to the other two constitutive laws, the anisotropic non-linear constitutive law with exponential terms for both the fiber and cross-fiber directions shows the larger leaflet displacements at the opened state, the largest forward jet flow, the smaller regurgitant flow. We further analyze hemodynamic parameters of the six different cases, including the regurgitant fraction, the mean transvalvular pressure gradient, the effective orifice area, and the energy loss of the left ventricle. We find that the fiber architecture with body-fitted orientation shows better dynamic behaviors in the leaflets, especially with the constitutive law using exponential terms for both the fiber and cross-fiber directions. In conclusion, both constitutive laws and fiber architectures can affect AV dynamics. Our results further suggest that the strain energy function with exponential terms for both the fiber and cross-fiber directions could be more suitable for describing the AV leaflet mechanical behaviors. Future experimental studies are needed to identify competent constitutive laws for the AV leaflets and their associated fiber orientations with controlled experiments. Although limitations exist in the present AV model, our results provide important information for selecting appropriate constitutive laws and fiber architectures when modeling AV dynamics.
format Online
Article
Text
id pubmed-8266211
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher Frontiers Media S.A.
record_format MEDLINE/PubMed
spelling pubmed-82662112021-07-09 The Comparison of Different Constitutive Laws and Fiber Architectures for the Aortic Valve on Fluid–Structure Interaction Simulation Cai, Li Zhang, Ruihang Li, Yiqiang Zhu, Guangyu Ma, Xingshuang Wang, Yongheng Luo, Xiaoyu Gao, Hao Front Physiol Physiology Built on the hybrid immersed boundary/finite element (IB/FE) method, fluid–structure interaction (FSI) simulations of aortic valve (AV) dynamics are performed with three different constitutive laws and two different fiber architectures for the AV leaflets. An idealized AV model is used and mounted in a straight tube, and a three-element Windkessel model is further attached to the aorta. After obtaining ex vivo biaxial tensile testing of porcine AV leaflets, we first determine the constitutive parameters of the selected three constitutive laws by matching the analytical stretch–stress relations derived from constitutive laws to the experimentally measured data. Both the average error and relevant R-squared value reveal that the anisotropic non-linear constitutive law with exponential terms for both the fiber and cross-fiber directions could be more suitable for characterizing the mechanical behaviors of the AV leaflets. We then thoroughly compare the simulation results from both structural mechanics and hemodynamics. Compared to the other two constitutive laws, the anisotropic non-linear constitutive law with exponential terms for both the fiber and cross-fiber directions shows the larger leaflet displacements at the opened state, the largest forward jet flow, the smaller regurgitant flow. We further analyze hemodynamic parameters of the six different cases, including the regurgitant fraction, the mean transvalvular pressure gradient, the effective orifice area, and the energy loss of the left ventricle. We find that the fiber architecture with body-fitted orientation shows better dynamic behaviors in the leaflets, especially with the constitutive law using exponential terms for both the fiber and cross-fiber directions. In conclusion, both constitutive laws and fiber architectures can affect AV dynamics. Our results further suggest that the strain energy function with exponential terms for both the fiber and cross-fiber directions could be more suitable for describing the AV leaflet mechanical behaviors. Future experimental studies are needed to identify competent constitutive laws for the AV leaflets and their associated fiber orientations with controlled experiments. Although limitations exist in the present AV model, our results provide important information for selecting appropriate constitutive laws and fiber architectures when modeling AV dynamics. Frontiers Media S.A. 2021-06-24 /pmc/articles/PMC8266211/ /pubmed/34248670 http://dx.doi.org/10.3389/fphys.2021.682893 Text en Copyright © 2021 Cai, Zhang, Li, Zhu, Ma, Wang, Luo and Gao. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Physiology
Cai, Li
Zhang, Ruihang
Li, Yiqiang
Zhu, Guangyu
Ma, Xingshuang
Wang, Yongheng
Luo, Xiaoyu
Gao, Hao
The Comparison of Different Constitutive Laws and Fiber Architectures for the Aortic Valve on Fluid–Structure Interaction Simulation
title The Comparison of Different Constitutive Laws and Fiber Architectures for the Aortic Valve on Fluid–Structure Interaction Simulation
title_full The Comparison of Different Constitutive Laws and Fiber Architectures for the Aortic Valve on Fluid–Structure Interaction Simulation
title_fullStr The Comparison of Different Constitutive Laws and Fiber Architectures for the Aortic Valve on Fluid–Structure Interaction Simulation
title_full_unstemmed The Comparison of Different Constitutive Laws and Fiber Architectures for the Aortic Valve on Fluid–Structure Interaction Simulation
title_short The Comparison of Different Constitutive Laws and Fiber Architectures for the Aortic Valve on Fluid–Structure Interaction Simulation
title_sort comparison of different constitutive laws and fiber architectures for the aortic valve on fluid–structure interaction simulation
topic Physiology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8266211/
https://www.ncbi.nlm.nih.gov/pubmed/34248670
http://dx.doi.org/10.3389/fphys.2021.682893
work_keys_str_mv AT caili thecomparisonofdifferentconstitutivelawsandfiberarchitecturesfortheaorticvalveonfluidstructureinteractionsimulation
AT zhangruihang thecomparisonofdifferentconstitutivelawsandfiberarchitecturesfortheaorticvalveonfluidstructureinteractionsimulation
AT liyiqiang thecomparisonofdifferentconstitutivelawsandfiberarchitecturesfortheaorticvalveonfluidstructureinteractionsimulation
AT zhuguangyu thecomparisonofdifferentconstitutivelawsandfiberarchitecturesfortheaorticvalveonfluidstructureinteractionsimulation
AT maxingshuang thecomparisonofdifferentconstitutivelawsandfiberarchitecturesfortheaorticvalveonfluidstructureinteractionsimulation
AT wangyongheng thecomparisonofdifferentconstitutivelawsandfiberarchitecturesfortheaorticvalveonfluidstructureinteractionsimulation
AT luoxiaoyu thecomparisonofdifferentconstitutivelawsandfiberarchitecturesfortheaorticvalveonfluidstructureinteractionsimulation
AT gaohao thecomparisonofdifferentconstitutivelawsandfiberarchitecturesfortheaorticvalveonfluidstructureinteractionsimulation
AT caili comparisonofdifferentconstitutivelawsandfiberarchitecturesfortheaorticvalveonfluidstructureinteractionsimulation
AT zhangruihang comparisonofdifferentconstitutivelawsandfiberarchitecturesfortheaorticvalveonfluidstructureinteractionsimulation
AT liyiqiang comparisonofdifferentconstitutivelawsandfiberarchitecturesfortheaorticvalveonfluidstructureinteractionsimulation
AT zhuguangyu comparisonofdifferentconstitutivelawsandfiberarchitecturesfortheaorticvalveonfluidstructureinteractionsimulation
AT maxingshuang comparisonofdifferentconstitutivelawsandfiberarchitecturesfortheaorticvalveonfluidstructureinteractionsimulation
AT wangyongheng comparisonofdifferentconstitutivelawsandfiberarchitecturesfortheaorticvalveonfluidstructureinteractionsimulation
AT luoxiaoyu comparisonofdifferentconstitutivelawsandfiberarchitecturesfortheaorticvalveonfluidstructureinteractionsimulation
AT gaohao comparisonofdifferentconstitutivelawsandfiberarchitecturesfortheaorticvalveonfluidstructureinteractionsimulation