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心动周期中左心室粘弹性的有限元分析

Finite element analysis of left ventricle during cardiac cycles in viscoelasticity.

作者信息

Shen Jing Jin, Xu Feng Yu, Yang Wen An

机构信息

School of Automation, Nanjing University of Posts and Telecommunications Nanjing, Jiangsu 210023, China.

School of Automation, Nanjing University of Posts and Telecommunications Nanjing, Jiangsu 210023, China.

出版信息

Comput Biol Med. 2016 Aug 1;75:63-73. doi: 10.1016/j.compbiomed.2016.05.012. Epub 2016 May 24.

Abstract

To investigate the effect of myocardial viscoeslasticity on heart function, this paper presents a finite element model based on a hyper-viscoelastic model for the passive myocardium and Hill's three-element model for the active contraction. The hyper-viscoelastic model considers the myocardium microstructure, while the active model is phenomenologically based on the combination of Hill's equation for the steady tetanized contraction and the specific time-length-force property of the myocardial muscle. To validate the finite element model, the end-diastole strains and the end-systole strain predicted by the model are compared with the experimental values in the literature. It is found that the proposed model not only can estimate well the pumping function of the heart, but also predicts the transverse shear strains. The finite element model is also applied to analyze the influence of viscoelasticity on the residual stresses in the myocardium.

摘要

为研究心肌粘弹性对心脏功能的影响,本文提出了一种有限元模型,该模型基于被动心肌的超粘弹性模型和主动收缩的希尔三元件模型。超粘弹性模型考虑了心肌微观结构,而主动模型在现象学上基于希尔稳态强直收缩方程与心肌特定时间-长度-力特性的结合。为验证有限元模型,将模型预测的舒张末期应变和收缩末期应变与文献中的实验值进行比较。结果发现,所提出的模型不仅能够很好地估计心脏的泵血功能,还能预测横向剪切应变。该有限元模型还被用于分析粘弹性对心肌残余应力的影响。

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