Schmid H, O'Callaghan P, Nash M P, Lin W, LeGrice I J, Smaill B H, Young A A, Hunter P J
Bioengineering Institute, University of Auckland, Auckland, New Zealand.
Biomech Model Mechanobiol. 2008 Jun;7(3):161-73. doi: 10.1007/s10237-007-0083-0. Epub 2007 May 9.
The passive material properties of myocardium play a major role in diastolic performance of the heart. In particular, the shear behaviour is thought to play an important mechanical role due to the laminar architecture of myocardium. We have previously compared a number of myocardial constitutive relations with the aim to extract their suitability for inverse material parameter estimation. The previous study assumed a homogeneous deformation. In the present study we relaxed the homogeneous assumption by implementing these laws into a finite element environment in order to obtain more realistic measures for the suitability of these laws in both their ability to fit a given set of experimental data, as well as their stability in the finite element environment. In particular, we examined five constitutive laws and compare them on the basis of (i) "goodness of fit": how well they fit a set of six shear deformation tests, (ii) "determinability": how well determined the objective function is at the optimal parameter fit, and (iii) "variability": how well determined the material parameters are over the range of experiments. Furthermore, we compared the FE results with those from the previous study.It was found that the same material law as in the previous study, the orthotropic Fung-type "Costa-Law", was the most suitable for inverse material parameter estimation for myocardium in simple shear.
心肌的被动材料特性在心脏舒张功能中起主要作用。特别是,由于心肌的层状结构,剪切行为被认为起着重要的力学作用。我们之前比较了许多心肌本构关系,目的是提取它们对材料参数反向估计的适用性。先前的研究假设为均匀变形。在本研究中,我们通过将这些定律应用于有限元环境来放宽均匀性假设,以便获得更现实的度量,以评估这些定律在拟合给定实验数据集的能力以及在有限元环境中的稳定性方面的适用性。特别是,我们研究了五种本构定律,并基于以下几点对它们进行比较:(i)“拟合优度”:它们对一组六个剪切变形测试的拟合程度如何;(ii)“可确定性”:在最佳参数拟合时目标函数的确定程度如何;(iii)“变异性”:在实验范围内材料参数的确定程度如何。此外,我们将有限元结果与先前研究的结果进行了比较。结果发现,与先前研究中相同的材料定律,即正交各向异性冯氏型“科斯塔定律”,最适合用于简单剪切中心肌材料参数的反向估计。