首页> 美国卫生研究院文献>Journal of the Royal Society Interface >Connecting fractional anisotropy from medical images with mechanical anisotropy of a hyperviscoelastic fibre-reinforced constitutive model for brain tissue
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Connecting fractional anisotropy from medical images with mechanical anisotropy of a hyperviscoelastic fibre-reinforced constitutive model for brain tissue

机译:将医学图像的分数各向异性与脑组织的高粘弹性纤维增强本构模型的机械各向异性联系起来

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摘要

Brain tissue modelling has been an active area of research for years. Brain matter does not follow the constitutive relations for common materials and loads applied to the brain turn into stresses and strains depending on tissue local morphology. In this work, a hyperviscoelastic fibre-reinforced anisotropic law is used for computational brain injury prediction. Thanks to a fibre-reinforcement dispersion parameter, this formulation accounts for anisotropic features and heterogeneities of the tissue owing to different axon alignment. The novelty of the work is the correlation of the material mechanical anisotropy with fractional anisotropy (FA) from diffusion tensor images. Finite-element (FE) models are used to investigate the influence of the fibre distribution for different loading conditions. In the case of tensile–compressive loads, the comparison between experiments and simulations highlights the validity of the proposed FA–k correlation. Axon alignment affects the deformation predicted by FE models and, when the strain in the axonal direction is large with respect to the maximum principal strain, decreased maximum deformations are detected. It is concluded that the introduction of fibre dispersion information into the constitutive law of brain tissue affects the biofidelity of the simulations.
机译:多年来,脑组织建模一直是研究的活跃领域。脑部物质不遵循常见材料的本构关系,施加到脑部的负荷取决于组织的局部形态而转变为压力和劳损。在这项工作中,高粘弹性纤维增强的各向异性定律被用于计算脑损伤的预测。由于纤维增强的分散参数,该配方考虑了由于轴突排列不同而引起的各向异性特征和组织异质性。这项工作的新颖之处在于材料机械各向异性与扩散张量图像中的分数各向异性(FA)的相关性。有限元(FE)模型用于研究不同负载条件下纤维分布的影响。在拉伸压缩载荷的情况下,实验和模拟之间的比较突出了所提出的FA–k相关性的有效性。轴突对齐会影响有限元模型预测的变形,并且当轴突方向的应变相对于最大主应变较大时,会检测到最大变形降低。结论是,将纤维分散信息引入脑组织的本构定律会影响模拟的生物保真度。

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