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Frequency dependent viscoelastic properties of porcine brain tissue

机译:猪脑组织的频率依赖性粘弹性特性

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Brain tissue is vulnerable and sensitive, predisposed to potential damage under complicated loading conditions. Its material properties have been investigated, but the characterization of its viscoelastic properties is currently limited. The aim of this study was to investigate the viscoelastic properties of brain tissue. Porcine brain samples, dissected ex vivo in the coronal plane, were tested under compression using dynamic mechanical analysis over a range of frequencies between 0.1 and 35 Hz. Indenters with varying diameters of 8, 12 and 16 mm were used to study the effect on viscoelastic properties under a sinusoidally varying displacement with varying mean displacements (10%, 15% and 20% of a specimen height). As the indenter size increased, the storage and loss stiffness significantly increased (p < 0.05). The storage stiffness decreased significantly as the mean displacement decreased (p < 0.05). The average storage modulus was found to be 8.09 kPa and the average loss modulus was found being 4.85 kPa. Frequency dependent viscoelastic properties of brain are important to improve the accuracy in the computational modelling of the head to develop the prediction of brain injuries.
机译:脑组织易患和敏感,倾向于复杂的载荷条件下的潜在损伤。已经研究了其材料特性,但目前其粘弹性的表征是有限的。本研究的目的是探讨脑组织的粘弹性。在冠状平面中解剖离体中的猪脑样本,在压缩下使用动态机械分析在0.1至35Hz之间的频率范围内进行压缩测试。使用不同直径为8,12和16mm的压痕用于研究对具有不同平均位移(10%,15%和20%的样品高度)的正弦变化的位移下对粘弹性的影响。随着缩进尺寸的增加,储存和损耗刚度显着增加(P <0.05)。由于平均位移下降(P <0.05),储存刚度显着下降(P <0.05)。发现平均储存模量为8.09kPa,发现平均损失模量为4.85kPa。大脑的频率依赖性粘弹性性质对于提高头部计算建模的准确性来发展脑损伤的预测。

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