TY - JOUR
T1 - Fluid-structure interaction modeling of a patient-specific cerebral aneurysm
T2 - Influence of structural modeling
AU - Torii, Ryo
AU - Oshima, Marie
AU - Kobayashi, Toshio
AU - Takagi, Kiyoshi
AU - Tezduyar, Tayfun E.
PY - 2008/12
Y1 - 2008/12
N2 - Fluid-structure interaction (FSI) simulations of a cerebral aneurysm with the linearly elastic and hyper-elastic wall constitutive models are carried out to investigate the influence of the wall-structure model on patient-specific FSI simulations. The maximum displacement computed with the hyper-elastic model is 36% smaller compared to the linearly elastic material model, but the displacement patterns such as the site of local maxima are not sensitive to the wall models. The blood near the apex of an aneurysm is likely to be stagnant, which causes very low wall shear stress and is a factor in rupture by degrading the aneurysmal wall. In this study, however, relatively high flow velocities due to the interaction between the blood flow and aneurysmal wall are seen to be independent of the wall model. The present results indicate that both linearly elastic and hyper-elastic models can be useful to investigate aneurysm FSI.
AB - Fluid-structure interaction (FSI) simulations of a cerebral aneurysm with the linearly elastic and hyper-elastic wall constitutive models are carried out to investigate the influence of the wall-structure model on patient-specific FSI simulations. The maximum displacement computed with the hyper-elastic model is 36% smaller compared to the linearly elastic material model, but the displacement patterns such as the site of local maxima are not sensitive to the wall models. The blood near the apex of an aneurysm is likely to be stagnant, which causes very low wall shear stress and is a factor in rupture by degrading the aneurysmal wall. In this study, however, relatively high flow velocities due to the interaction between the blood flow and aneurysmal wall are seen to be independent of the wall model. The present results indicate that both linearly elastic and hyper-elastic models can be useful to investigate aneurysm FSI.
KW - Cerebral aneurysm
KW - Fluid-structure interaction
KW - Patient-specific modeling
KW - Structural model
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U2 - 10.1007/s00466-008-0325-8
DO - 10.1007/s00466-008-0325-8
M3 - Article
AN - SCOPUS:52549126204
SN - 0178-7675
VL - 43
SP - 151
EP - 159
JO - Computational Mechanics
JF - Computational Mechanics
IS - 1
ER -