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An experimental study on the mechanical properties of rat brain tissue using different stress-strain definitions

机译:不同应力-应变定义对大鼠脑组织力学性能的实验研究

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摘要

There are different stress-strain definitions to measure the mechanical properties of the brain tissue. However, there is no agreement as to which stress-strain definition should be employed to measure the mechanical properties of the brain tissue at both the longitudinal and circumferential directions. It is worth knowing that an optimize stress-strain definition of the brain tissue at different loading directions may have implications for neu-ronavigation and surgery simulation through haptic devices. This study is aimed to conduct a comparative study on different results are given by the various definitions of stress-strain and to recommend a specific definition when testing brain tissues. Prepared cylindrical samples are excised from the parietal lobes of rats' brains and experimentally tested by applying load on both the longitudinal and circumferential directions. Three stress definitions (second Piola-Kichhoff stress, engineering stress, and true stress) and four strain definitions (Almansi-Hamel strain, Green-St. Venant strain, engineering strain, and true strain) are used to determine the elastic modulus, maximum stress and strain. The highest non-linear stress-strain relation is observed for the Almansi-Hamel strain definition and it may overestimate the elastic modulus at different stress definitions at both the longitudinal and circumferential directions. The Green-St. Venant strain definition fails to address the non-linear stress-strain relation using different definitions of stress and triggers an underestimation of the elastic modulus. The results suggest the application of the true stress-true strain definition for characterization of the brain tissues mechanics since it gives more accurate measurements of the tissue's response using the instantaneous values.
机译:有不同的应力应变定义来测量脑组织的机械性能。但是,关于应采用哪种应力应变定义来测量脑组织在纵向和圆周方向上的机械性能,均未达成共识。值得一提的是,在不同的加载方向上优化脑组织的应力应变定义可能对通过触觉设备进行神经元导航和手术模拟产生影响。这项研究旨在对应力应变的各种定义给出的不同结果进行比较研究,并在测试脑组织时建议一个具体的定义。从大鼠大脑的顶叶切下制备的圆柱状样品,并通过在纵向和圆周方向上施加载荷进行实验测试。使用三个应力定义(第二个Piola-Kichhoff应力,工程应力和真实应力)和四个应变定义(Almansi-Hamel应变,Green-St。Venant应变,工程应变和真实应变)确定最大弹性模量压力和压力。对于Almansi-Hamel应变定义,观察到了最高的非线性应力-应变关系,它可能高估了纵向和圆周方向上不同应力定义下的弹性模量。绿色圣。 Venant应变定义无法使用不同的应力定义来解决非线性应力-应变关系,并触发了弹性模量的低估。结果表明,使用真实应力-真实应变定义来表征脑组织力学,因为它使用瞬时值可以更准确地测量组织的响应。

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  • 来源
    《Journal of materials science》 |2014年第7期|1623-1630|共8页
  • 作者单位

    School of Mechanical Engineering, Iran University of Science and Technology, 16887 Tehran, Iran,Tissue Engineering and Biological Systems Research Laboratory, School of Mechanical Engineering, Iran University of Science and Technology, 16887 Tehran, Iran;

    School of Mechanical Engineering, Iran University of Science and Technology, 16887 Tehran, Iran,Tissue Engineering and Biological Systems Research Laboratory, School of Mechanical Engineering, Iran University of Science and Technology, 16887 Tehran, Iran;

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