首页> 外文期刊>Journal of the mechanical behavior of biomedical materials >Hyperelastic modeling of the human brain tissue: Effects of no-slip boundary condition and compressibility on the uniaxial deformation
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Hyperelastic modeling of the human brain tissue: Effects of no-slip boundary condition and compressibility on the uniaxial deformation

机译:人脑组织的高速造型:无滑动边界条件的影响和对单轴变形的压缩性

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Being extremely soft, brain tissue is among the most challenging materials to be mechanically quantified. Despite recent advances in mechanical testing of ultra-soft matters, there still exists a need for robust procedures to analyze their behavior at large deformation. In this paper, it is shown how failing to taking into account the precise boundary conditions can result in substantial variation from the "assumed" ideal behavior, even for the case of simple loading conditions such as the uniaxial mode. For an accurate analysis, the mathematical modeling is combined with the finite element simulation to interpret the mechanical behavior of the brain tissue based on the comprehensive experiments conducted by Budday et al. (2017). It is demonstrated herein that only an Ogden hyperelastic model with both negative and positive nonlinearity constants can predict the mechanical behavior of the brain tissue in tension and compression, and the tension-compression asymmetry might arise from the difference in compressibility behavior in tension and compression. This hypothesis is utilized for modeling the mechanical behavior of the brain tissue in uniaxial loading condition and exhibits excellent agreement with the experiments. This study also provides a comprehensive explanation for nonlinear analysis of soft matters, in general, and the brain tissue, in particular, with thoroughly describing the concept of hyperelasticity and modeling incompressible or compressible behaviors utilizing the Ogden strain energy function.
机译:非常柔软,脑组织是最具挑战性的材料之一是机械定量的。尽管最近的超软事件的机械测试进展,但仍然需要强大的程序来分析它们在大变形下的行为。在本文中,示出了如何考虑到确切边界条件的错误可能导致从“假设的”理想行为的实质性变化,即使对于诸如单轴模式的简单负载条件的情况。为了准确分析,数学建模与有限元模拟结合,以根据Budday等人进行的综合实验来解释脑组织的力学行为。 (2017)。这里证明了具有阴性和阳性非线性常数的OGEN超弹性模型可以预测脑组织在张力和压缩中的力学行为,并且张力 - 压缩不对称可能出现张力和压缩中的可压缩性行为的差异。该假设用于建模脑组织在单轴负载条件下的力学行为,并与实验表现出优异的一致性。本研究还提供了对软质量的非线性分析的全面解释,通常,脑组织,特别是利用ogden菌株能量函数彻底地描述高弹性和模拟不可压缩或可压缩行为的概念。

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