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首页> 外文期刊>Journal of Engineering and Science in Medical Diagnostics and Therapy >Optimized Load-Independent Hyperelastic Microcharacterization of Human Brain White Matter
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Optimized Load-Independent Hyperelastic Microcharacterization of Human Brain White Matter

机译:优化装入独立超弹性的Microcharacterization人脑白质

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A micromechanical methodology combined with genetic algorithm (GA) as a global optimization method is used to find the material properties of axons and extracellular matrix (ECM) in corpus callosum which is a part of human brain white matter. Studies have shown that axons are highly oriented in the ECM which enables us to approximate brain white matter as a unidirectional fibrous composite model. Using the one-term Ogden hyperelastic constitutive equations for the constituents and knowing the mechanical response of corpus callosum, GA optimization procedure is used in conjunction with finite element (FE) micromechanical analysis to find optimal material parameters for axon and ECM in three uniaxial loading scenarios of tension, compression, and simple shear. Moreover, by simultaneous fitting to the three loading modes' responses and applying Nelder–Mead simplex optimization method, best-fit parameters are found. The best-fit parameters can be used to approximate the behavior of axons and ECM in different uniaxial loading conditions with the minimum error and hence, can be interpreted as load-independent parameters. Micromechanical simulations by best-fit parameters show maximum stress increase of 2% and 29% for tension and shear and less than 1% reduction for compression mode compared to the case where optimal parameters are used. The findings and the methodology of this study can be employed for constitutive modeling of axonal fibers and its implementation in human head FE model where load-independent parameters are needed for simulating different loading scenarios.
机译:微机械方法结合遗传算法作为一种全局优化法找到的材料属性轴突和细胞外基质(ECM)的语料库胼胝体是人类大脑的一部分白色的事。在ECM使我们面向大脑白质的近似单向纤维复合模型。届奥格登超弹性的本构方程的成分和了解机械响应的胼胝体,GA优化程序一起使用与有限元(FE)微机械分析找到最佳的材料参数对轴突和ECM在三个单轴加载场景的紧张,压缩,和简单的剪切。同时拟合三个加载模式的反应和应用Nelder-Mead单纯形优化方法,最佳参数发现。近似轴突和ECM的行为不同的单轴加载条件最小误差,因此,可以解释为装入独立参数。通过最佳参数模拟显示最大紧张和压力增长了2%和29%剪切和压缩减少不到1%最优模式相比情况使用参数。本研究的方法可以使用的本构模型及其轴突纤维实现在人类头上的有限元模型需要装入独立参数模拟不同的加载场景。

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