期刊文献+

Mechanics of formation and rupture of human aneurysm 被引量:1

Mechanics of formation and rupture of human aneurysm
下载PDF
导出
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. 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.
出处 《Applied Mathematics and Mechanics(English Edition)》 SCIE EI 2010年第5期593-604,共12页 应用数学和力学(英文版)
基金 Project supported by the National Natural Science Foundation of China (Nos.10772104 and 10872045) the Innovation Project of the Shanghai Municipal Education Commission (No.09YZ12) the Shanghai Leading Academic Discipline Project (No.S30106)
关键词 arterial wall with collagen fibers formation and rupture of aneurysm residual stress instability theory of structure strength theory of material arterial wall with collagen fibers, formation and rupture of aneurysm, residual stress, instability theory of structure, strength theory of material
  • 相关文献

参考文献24

  • 1Humphrey,J.D.Cardiovascular Solid Mechanics,Cells,Tissues and Organs,Springer-Verlag,New York (2002).
  • 2Vorp,D.A.Biomechanics of abdominal aortic aneurysra.Journal of Biomechanics 40(9),1887-1902 (2007).
  • 3Volokh,K.Y.and Vorp,D.A.A model of growth and rupture of abdominal aortic aneurysm.Journal of Biomechanics 41(5),1015-1021 (2008).
  • 4Humphrey,J.D.Continuum biomechanics of soft biological tissues.Proceedings of the Royal Society A:Mathematical,Physical and Engineering Sciences 459(1),3-46 (2003).
  • 5Watton,P.N.,Hill,N.A.,and Heft,M.A mathematical model for the growth of abdominal aortic aneurysm.Biomechanics and Modeling in Meehanobiology 3(2),98-113 (2004).
  • 6Humphrey,J.D.Intracranial saccular aneurysms.Biomechanics of Soft Tissue in Cardiovascular Systems,Springer Wien,New York (2003).
  • 7David,G.and Humphrey,J.D.Further evidence for the dynamic stability of intracranial saccular aneurysms.Journal of Biomechanics 36(7),1043-1150 (2003).
  • 8Humphrey,J.D.and Canham,P.B.Structure,mechanical properties,and mechanics of intracranial saccular aneurysms.Journal of Elasticity 61(1-3),49-81 (2000).
  • 9Kroon,M.and Holzapfel,G.A.Estimation of the distributions of anisotropic,elastic properties and wall stresses of saccular cerebral aneurysms by inverse analysis.Proceedings of the Royal Society A:Mathematical,Physical and Engineering Sciences 464(6),807-825 (2008).
  • 10Holzapfel,G.A.,Gasser,T.C.,and Stadler,M.A structural model for the viscoelastic behavior of arterial walls:continuum formulations and finite element analysis.European Journal of Mechanics A/Solids 21(3),441-463 (2002).

同被引文献5

  • 1袁学刚.关于超弹性材料球体中空穴分岔问题的研究(Ⅰ)[J].烟台大学学报(自然科学与工程版),2005,18(2):79-90. 被引量:5
  • 2FU Y B, OGDEN R W. Nonlinear Elasticity: Theory and Applications [ M ]. London Math. Society Lecture Note Series 2001.
  • 3POLIGNONE D A, HORGAN C O. Cavitation for incom- pressible anisotropic nonlinearly elastic spheres [ J ].Journal of Elasticity, 1993, 33 ( 1 ) : 27 - 65.
  • 4YUAN Xuegang, ZHU Zhengyou, CHENG Changjun. Study on cavitated bifurcation problem for spheres com- posed of hyper - elastic materials [ J ]. Journal of Engi- neering Mathematics, 2005, 51 ( 1 ) : 15 - 34.
  • 5NIU Datian, ZHANG You, YUAN Xuegang, et al. Ana- lytic Solutions of Parametric Type and Numerical Simula- tions of a Class of Nonlinear Ordinary Differential Equa- tions [J]. Applied Mathematical Sciences, 2010, 4 (30) : 1451 - 1455.

引证文献1

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部