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主动脉瓣叶的机械性能有助于舒张期瓣膜功能。

Aortic valve leaflet mechanical properties facilitate diastolic valve function.

作者信息

Koch T M, Reddy B D, Zilla P, Franz T

机构信息

Department of Mathematics and Applied Mathematics, University of Cape Town, Rondebosch, South Africa.

出版信息

Comput Methods Biomech Biomed Engin. 2010;13(2):225-34. doi: 10.1080/10255840903120160.

Abstract

This work was concerned with the numerical simulation of the behaviour of aortic valves whose material can be modelled as non-linear elastic anisotropic. Linear elastic models for the valve leaflets with parameters used in previous studies were compared with hyperelastic models, incorporating leaflet anisotropy with pronounced stiffness in the circumferential direction through a transverse isotropic model. The parameters for the hyperelastic models were obtained from fits to results of orthogonal uniaxial tensile tests on porcine aortic valve leaflets. The computational results indicated the significant impact of transverse isotropy and hyperelastic effects on leaflet mechanics; in particular, increased coaptation with peak values of stress and strain in the elastic limit. The alignment of maximum principal stresses in all models follows approximately the coarse collagen fibre distribution found in aortic valve leaflets. The non-linear elastic leaflets also demonstrated more evenly distributed stress and strain which appears relevant to long-term scaffold stability and mechanotransduction.

摘要

这项工作涉及对主动脉瓣行为的数值模拟,其材料可被建模为非线性弹性各向异性。将先前研究中使用的具有参数的瓣膜小叶线性弹性模型与超弹性模型进行了比较,超弹性模型通过横向各向同性模型纳入了小叶各向异性,在圆周方向具有明显的刚度。超弹性模型的参数通过对猪主动脉瓣小叶正交单轴拉伸试验结果的拟合获得。计算结果表明横向各向同性和超弹性效应对小叶力学有显著影响;特别是,在弹性极限内,瓣叶贴合增加,应力和应变峰值增大。所有模型中最大主应力的方向大致遵循在主动脉瓣小叶中发现的粗大胶原纤维分布。非线性弹性小叶还表现出更均匀分布的应力和应变,这似乎与长期支架稳定性和机械转导有关。

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