Applied Mathematics and Mechanics (English Edition) ›› 2010, Vol. 31 ›› Issue (5): 593-604.doi: https://doi.org/10.1007/s10483-010-0507-9

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Mechanics of formation and rupture of human aneurysm

任九生1,2 袁学刚3   

  1. 1. Department of Mechanics, Shanghai University, Shanghai 200444, P. R. China;
    2. Shanghai Institute of Applied Mathematics and Mechanics, Shanghai University, Shanghai 200072, P. R. China;
    3. College of Science, Dalian Nationalities University, Dalian 116600, Liaoning Province, P. R. China
  • 收稿日期:2010-01-02 修回日期:2010-04-01 出版日期:2010-05-20 发布日期:2010-05-01

Mechanics of formation and rupture of human aneurysm

REN Jiu-Sheng1,2, YUAN Xua-Gang3   

  1. 1. Department of Mechanics, Shanghai University, Shanghai 200444, P. R. China;
    2. Shanghai Institute of Applied Mathematics and Mechanics, Shanghai University, Shanghai 200072, P. R. China;
    3. College of Science, Dalian Nationalities University, Dalian 116600, Liaoning Province, P. R. China
  • Received:2010-01-02 Revised:2010-04-01 Online:2010-05-20 Published:2010-05-01

摘要: The mechanical response of the human arterial wall under the combined loading of inflation, axial extension, and torsion is examined within the framework of the large deformation hyper-elastic theory. The probability of the aneurysm formation is explained with the instability theory of structure, and the probability of its rupture is explained with the strength theory of material. Taking account of the residual stress and the smooth muscle activities, a two layer thick-walled circular cylindrical tube model with fiber-reinforced composite-based incompressible anisotropic hyper-elastic materials is employed to model the mechanical behavior of the arterial wall. The deformation curves and the stress distributions of the arterial wall are given under normal and abnormal conditions. The results of the deformation and the structure instability analysis show that the model can describe the uniform inflation deformation of the arterial wall under normal conditions, as well as formation and growth of an aneurysm under abnormal conditions such as the decreased stiffness of the elastic and collagen fibers. From the analysis of the stresses and the material strength, the rupture of an aneurysm may also be described by this model if the wall stress is larger than its strength.

关键词: arterial wall with collagen fibers, formation and rupture of aneurysm, residual stress, instability theory of structure, strength theory of material

Abstract: The mechanical response of the human arterial wall under the combined loading of inflation, axial extension, and torsion is examined within the framework of the large deformation hyper-elastic theory. The probability of the aneurysm formation is explained with the instability theory of structure, and the probability of its rupture is explained with the strength theory of material. Taking account of the residual stress and the smooth muscle activities, a two layer thick-walled circular cylindrical tube model with fiber-reinforced composite-based incompressible anisotropic hyper-elastic materials is employed to model the mechanical behavior of the arterial wall. The deformation curves and the stress distributions of the arterial wall are given under normal and abnormal conditions. The results of the deformation and the structure instability analysis show that the model can describe the uniform inflation deformation of the arterial wall under normal conditions, as well as formation and growth of an aneurysm under abnormal conditions such as the decreased stiffness of the elastic and collagen fibers. From the analysis of the stresses and the material strength, the rupture of an aneurysm may also be described by this model if the wall stress is larger than its strength.

Key words: arterial wall with collagen fibers, formation and rupture of aneurysm, residual stress, instability theory of structure, strength theory of material

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