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Relationship between structural modeling and hyperelastic material behavior: application to CNS white matter

机译:结构建模与超弹性材料行为之间的关系:在中枢神经系统白质中的应用

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Recent measurements of the material properties of brain tissue allow an examination of the underlying microstructural basis in both physiological and pathophysiological conditions. The purpose of this study is to develop a mathematical relationship between microstructurally based models of the central nervous system (CNS) white matter and equivalent hyperelastic material models. For simplicity, time dependent material behavior is not included in this formulation. The microstructural representation is used to formulate structural property relationships for highly oriented white matter, and is mathematically compared to one isotropic and two anisotropic hyperelastic formulations. For the anisotropic characterizations, the population of axons in the white matter is assumed to align along one preferred direction of the material, yielding a transversely isotropic formulation. Relatively simple strain–energy functions incorporating material anisotropy provide sufficient flexibility to model the nonlinear behavior predicted from structurally based models, although the tangential stiffness of the hyperelastic approaches does not follow completely the behavior of the structurally based formulations. This analysis is an initial step towards linking microstructural aspects of the tissue to material models commonly used for large deformations, and may be an important step in relating predicted tissue deformation to the deformation and stress of cellular and subcellular structures.
机译:对脑组织材料特性的最新测量结果允许在生理和病理生理条件下检查潜在的微观结构基础。这项研究的目的是建立基于微结构的中枢神经系统(CNS)白质模型和等效的超弹性材料模型之间的数学关系。为简单起见,该配方中不包括随时间变化的材料性能。微观结构表示用于制定高度取向的白质的结构特性关系,并在数学上与一种各向同性和两种各向异性的超弹性公式进行比较。对于各向异性表征,假定白质中的轴突总体沿材料的一种优选方向排列,从而产生横向各向同性的配方。尽管超弹性方法的切向刚度并未完全遵循结构公式的行为,但相对简单的包含材料各向异性的应变能函数提供了足够的灵活性来建模基于结构模型的非线性行为。该分析是将组织的微结构方面与通常用于大变形的材料模型联系起来的第一步,并且可能是将预测的组织变形与细胞和亚细胞结构的变形和应力相关联的重要步骤。

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