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Biomechanics of brain tissue.

机译:脑组织的生物力学。

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The dynamic behavior of porcine brain tissue, obtained from a series of in vitro observations and experiments, is analyzed and described here with the aid of a large strain, nonlinear, viscoelastic constitutive model. Mixed gray and white matter samples excised from the superior cortex were tested in unconfined uniaxial compression within 15h post mortem. The test sequence consisted of three successive load-unload segments at strain rates of 1, 0.1 and 0.01 s(1), followed by stress relaxation (n=25). The volumetric compliance of the tissue was assessed for a subset of specimens (n=7) using video extensometry techniques. The tissue response exhibited moderate compressibility, substantial nonlinearity, hysteresis, conditioning and rate dependence. A large strain kinematics nonlinear viscoelastic model was developed to account for the essential features of the tissue response over the entire deformation history. The corresponding material parameters were obtained by fitting the model to the measured conditioned response (axial and volumetric) via a numerical optimization scheme. The model successfully captures the observed complexities of the material response in loading, unloading and relaxation over the entire range of strain rates. The accuracy of the model was further verified by comparing model predictions with the tissue response in unconfined compression at higher strain rate (10 s(1)) and with literature data in uniaxial tension. The proposed constitutive framework was also found to be adequate to model the loading response of brain tissue in uniaxial compression over a wider range of strain rates (0.01-3000 s(1)), thereby providing a valuable tool for simulations of dynamic transients (impact, blast/shock wave propagation) leading to traumatic brain injury.
机译:在大范围,非线性,粘弹性本构模型的帮助下,分析和描述了从一系列体外观察和实验获得的猪脑组织的动态行为。从尸体上皮切除的混合的灰色和白色物质样品在死后15小时内进行无限制单轴压缩测试。测试顺序包括三个连续的加载/卸载段,应变率分别为1、0.1和0.01 s(1)(1),然后是应力松弛(n = 25)。使用视频引伸技术对一部分样本(n = 7)评估组织的体积顺应性。组织反应表现出中等的可压缩性,基本的非线性,滞后,调节和速率依赖性。建立了大应变运动学非线性粘弹性模型,以说明整个变形历史中组织响应的基本特征。通过数值优化方案将模型拟合到测得的条件响应(轴向和体积),可获得相应的材料参数。该模型成功地捕获了在整个应变速率范围内观察到的材料响应在加载,卸载和松弛中的复杂性。通过将模型预测值与较高应变率(10 s(1))下无限制压缩的组织响应以及单轴拉伸的文献数据进行比较,进一步验证了模型的准确性。还发现提出的本构框架足以在较宽的应变率范围(0.01-3000 s(1))上对单轴压缩中脑组织的负荷响应进行建模,从而为动态瞬态仿真提供了有价值的工具(影响(冲击波/冲击波传播)导致颅脑损伤。

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