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使用无负荷几何形状的心脏力学模型中应力和应变计算对被动材料参数的敏感性。

Sensitivity of stress and strain calculations to passive material parameters in cardiac mechanical models using unloaded geometries.

作者信息

Kallhovd S, Sundnes J, Wall S T

机构信息

a University of Bergen , Bergen , Norway.

b Simula Research Laboratory , Lysaker , Norway.

出版信息

Comput Methods Biomech Biomed Engin. 2019 May;22(6):664-675. doi: 10.1080/10255842.2019.1579312. Epub 2019 Mar 1.

Abstract

Cardiac stress (load) and strain (stretch) are widely studied indicators of cardiac function and outcome, but are difficult or impossible to directly measure in relation to the cardiac microstructure. An alternative approach is to estimate these states using computer methods and image-based measurements, but this still requires knowledge of the tissue material properties and the unloaded state, both of which are difficult to determine. In this work, we tested the sensitivity of these two interdependent unknowns (reference geometry and material parameters) on stress and strain calculations in cardiac tissue. Our study used a finite element model of the human ventricle, with a hyperelastic passive material model, and was driven by a cell model mediated active contraction. We evaluated 21 different published parameter sets for the five parameters of the passive material model, and for each set we optimised the corresponding unloaded geometry and contractility parameter to model a single pressure-volume loop. The resulting mechanics were compared, and calculated systolic stresses were largely insensitive to the chosen parameter set when an unloading algorithm was used. Meanwhile, material strain calculations varied substantially depending on the choice of material parameters. These results indicate that determining the correct material and unloaded configuration may be highly important to understand strain driven processes, but less so for calculating stress estimates.

摘要

心脏应力(负荷)和应变(拉伸)是广泛研究的心脏功能和预后指标,但与心脏微观结构相关时难以或无法直接测量。一种替代方法是使用计算机方法和基于图像的测量来估计这些状态,但这仍需要了解组织材料特性和无负荷状态,而这两者都难以确定。在这项工作中,我们测试了这两个相互依赖的未知因素(参考几何形状和材料参数)对心脏组织应力和应变计算的敏感性。我们的研究使用了具有超弹性被动材料模型的人体心室有限元模型,并由细胞模型介导的主动收缩驱动。我们评估了被动材料模型五个参数的21种不同的已发表参数集,对于每组参数,我们优化了相应的无负荷几何形状和收缩性参数以模拟单个压力-容积环。比较了由此产生的力学性能,当使用卸载算法时,计算出的收缩期应力对所选参数集基本不敏感。同时,材料应变计算根据材料参数的选择有很大差异。这些结果表明,确定正确的材料和无负荷构型对于理解应变驱动过程可能非常重要,但对于计算应力估计值则不那么重要。

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