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双轴测试的人体心肌中剪切变形和相应应力的量化

Quantification of Shear Deformations and Corresponding Stresses in the Biaxially Tested Human Myocardium.

作者信息

Sommer Gerhard, Haspinger Daniel Ch, Andrä Michaela, Sacherer Michael, Viertler Christian, Regitnig Peter, Holzapfel Gerhard A

机构信息

Institute of Biomechanics, Graz University of Technology, Kronesgasse 5/I, 8010, Graz, Austria.

Division of Cardiac, Thoracic and Vascular Surgery, Klinikum Klagenfurt am Wörthersee, Klagenfurt, Austria.

出版信息

Ann Biomed Eng. 2015 Oct;43(10):2334-48. doi: 10.1007/s10439-015-1281-z. Epub 2015 Feb 24.

Abstract

One goal of cardiac research is to perform numerical simulations to describe/reproduce the mechanoelectrical function of the human myocardium in health and disease. Such simulations are based on a complex combination of mathematical models describing the passive mechanical behavior of the myocardium and its electrophysiology, i.e., the activation of cardiac muscle cells. The problem in developing adequate constitutive models is the shortage of experimental data suitable for detailed parameter estimation in specific functional forms. A combination of shear and biaxial extension tests with different loading protocols on different specimen orientations is necessary to capture adequately the direction-dependent (orthotropic) response of the myocardium. In most experimental animal studies, where planar biaxial extension tests on the myocardium have been conducted, the generated shear stresses were neither considered nor discussed. Hence, in this study a method is presented which allows the quantification of shear deformations and related stresses. It demonstrates an approach for experimenters as to how the generation of these shear stresses can be minimized during mechanical testing. Experimental results on 14 passive human myocardial specimens, obtained from nine human hearts, show the efficiency of this newly developed method. Moreover, the influence of the clamping technique of the specimen, i.e., the load transmission between the testing device and the tissue, on the stress response is determined by testing an isotropic material (Latex). We identified that the force transmission between the testing device and the specimen by means of hooks and cords does not influence the performed experiments. We further showed that in-plane shear stresses definitely exist in biaxially tested human ventricular myocardium, but can be reduced to a minimum by preparing the specimens in an appropriate manner. Moreover, we showed whether shear stresses can be neglected when performing planar biaxial extension tests on fiber-reinforced materials. The used method appears to be robust to quantify normal and shear deformations and corresponding stresses in biaxially tested human myocardium. This method can be applied for the mechanical characterization of any fiber-reinforced material using planar biaxial extension tests.

摘要

心脏研究的一个目标是进行数值模拟,以描述/再现健康和疾病状态下人类心肌的机电功能。此类模拟基于描述心肌被动力学行为及其电生理学(即心肌细胞激活)的数学模型的复杂组合。开发合适的本构模型的问题在于缺乏适用于以特定函数形式进行详细参数估计的实验数据。需要结合不同加载方案在不同标本方向上进行剪切和双轴拉伸试验,以充分捕捉心肌的方向依赖性(正交各向异性)响应。在大多数对心肌进行平面双轴拉伸试验的实验动物研究中,所产生的剪应力既未被考虑也未被讨论。因此,本研究提出了一种方法,该方法能够量化剪切变形和相关应力。它为实验人员展示了一种在机械测试过程中如何将这些剪应力的产生降至最低的方法。对取自九颗人类心脏的14个被动人类心肌标本的实验结果表明了这种新开发方法的有效性。此外,通过测试各向同性材料(乳胶)来确定标本的夹持技术(即测试装置与组织之间的载荷传递)对应力响应的影响。我们确定通过钩子和绳索在测试装置与标本之间的力传递不会影响所进行的实验。我们进一步表明,在双轴测试的人类心室心肌中确实存在面内剪应力,但可以通过以适当方式制备标本将其降至最低。此外,我们展示了在对纤维增强材料进行平面双轴拉伸试验时是否可以忽略剪应力。所使用的方法似乎能够可靠地量化双轴测试的人类心肌中的法向和剪切变形以及相应应力。该方法可应用于使用平面双轴拉伸试验对任何纤维增强材料进行力学表征。

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