Balzani, D.; Heinlein, A.; Klawonn, A.; Rheinbach, O.; Schröder, Jörg:
Comparison of arterial wall models in fluid–structure interaction simulations
In: Computational Mechanics, Vol. 72 (2023), No. 5, pp. 949 - 965
2023article/chapter in journalOA Hybrid
Civil EngineeringFaculty of Engineering » Bauwissenschaften » Bauingenieurwesen » Mechanik
Related: 1 publication(s)
Title in English:
Comparison of arterial wall models in fluid–structure interaction simulations
Author:
Balzani, D.UDE
LSF ID
14642
ORCID
0000-0002-1422-4262ORCID iD
Other
connected with university
;
Heinlein, A.
Other
corresponding author
;
Klawonn, A.UDE
GND
114308489
LSF ID
5339
ORCID
0000-0003-0548-4350ORCID iD
ORCID
0000-0003-4765-7387ORCID iD
Other
connected with university
;
Rheinbach, O.UDE
LSF ID
5604
ORCID
0000-0002-9310-8533ORCID iD
Other
connected with university
;
Schröder, JörgUDE
GND
118119036
LSF ID
10676
ORCID
0000-0001-7960-9553ORCID iD
Other
connected with university
Year of publication:
2023
Open Access?:
OA Hybrid
Web of Science ID
Scopus ID
Language of text:
English

Abstract in English:

Monolithic fluid–structure interaction (FSI) of blood flow with arterial walls is considered, making use of sophisticated nonlinear wall models. These incorporate the effects of almost incompressibility as well as of the anisotropy caused by embedded collagen fibers. In the literature, relatively simple structural models such as Neo-Hooke are often considered for FSI with arterial walls. Such models lack, both, anisotropy and incompressibility. In this paper, numerical simulations of idealized heart beats in a curved benchmark geometry, using simple and sophisticated arterial wall models, are compared: we consider three different almost incompressible, anisotropic arterial wall models as a reference and, for comparison, a simple, isotropic Neo-Hooke model using four different parameter sets. The simulations show significant quantitative and qualitative differences in the stresses and displacements as well as the lumen cross sections. For the Neo-Hooke models, a significantly larger amplitude in the in- and outflow areas during the heart beat is observed, presumably due to the lack of fiber stiffening. For completeness, we also consider a linear elastic wall using 16 different parameter sets. However, using our benchmark setup, we were not successful in achieving good agreement with our nonlinear reference calculation.