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Wall stress and strain analysis using a three-dimensional thick-wall model with fluid-structure interactions for blood flow in carotid arteries with stenoses

机译:使用带有流体结构相互作用的三维厚壁模型对狭窄的颈动脉血流进行壁应力和应变分析

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Wall mechanics and fluid-structure interactions play important roles in artery collapse and plaque cap rupture, which leads directly to heart attack and stroke. A three-dimensional thick-wall model with fluid-structure interactions was introduced and solved using ADINA to investigate the wall stress and strain distributions and flow properties of blood flow in carotid arteries with symmetric and asymmetric stenoses. The Navier-Stokes equations were used as the governing equations for the fluid. The tube wall was assumed to be hyperelastic, homogeneous, isotropic and incompressible. The Ogden material model was used for the tube wall. Experimental data for a silicone tube with a 78 stenosis by diameter was used to derive the stress-strain relationship for the material. Results obtained indicate that severe stenosis causes considerable compressive stress in the tube wall which may be related to plaque cap rupture. Stenosis severity and asymmetry have considerable influence on wall stress and strain distributions. Three-dimensional wall deformation, flow pressure, velocity and shear stress fields were investigated.
机译:壁力学和流固耦合在动脉塌陷和斑块破裂中起重要作用,直接导致心脏病发作和中风。引入并利用ADINA求解具有流体-结构相互作用的三维厚壁模型,以研究具有对称和不对称狭窄的颈动脉的壁应力和应变分布以及血流的流动特性。 Navier-Stokes方程用作流体的控制方程。假定管壁为超弹性,均匀,各向同性且不可压缩。管壁使用Ogden材料模型。直径为78狭窄的硅胶管的实验数据用于推导材料的应力-应变关系。获得的结果表明,严重的狭窄会在管壁中引起相当大的压应力,这可能与斑块帽破裂有关。狭窄的严重程度和不对称性对壁应力和应变分布有很大影响。研究了三维壁变形,流动压力,速度和切应力场。

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