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A STUDY ON THE EFFECTS OF STRAIN RATES ON CHARACTERISTICS OF BRAIN TISSUE

机译:应变速率对脑组织特征影响的研究

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Traumatic brain injury (TBI) often happens when the brain tissue undergoes a high rate mechanical load. Although numerous research works have been carried out to study the mechanical characterization of brain matter under quasi-static (strain rate < 100 S"1) loading but a limited amount of experimental studies are available for brain tissue behavior under dynamic strain rates (strain rate > 100 S"1). In this paper, the results of a study on mechanical properties of ovine brain tissue under unconfined compression tests are to be presented. The samples were compressed under uniaxial strain rates of 0.0667, 3.33, 6.667, 33.33, 66.667 and 200 S~(-1_). The brain tissue presents a stiffer response with increasing strain rate, showing a time-dependent behavior. So the hyperelastic-only models are not adequate to exhibit the brain viscoelasticity. Therefore, two hyper-viscoelastic constitutive equations based on power function model and Mooney-Rivlin energy function are applied to the results with quasi-static strain rate (< 100 S~(-1)). Good agreement of experimental and theoretical has been achieved for results of the low strain rates. It is concluded that the obtained material parameters from quasi-static tests are not appropriate enough to fit the result with the high strain rate of 200 S"1. The study will further provide new insight into a better understanding of the rate-dependency behavior of the brain tissue under dynamic conditions. This is essential in the development of constitutive material characteristics for an efficient human brain finite element models to predict TBI under impact condition or high motion.
机译:脑组织承受较高的机械负荷时,常会发生颅脑外伤(TBI)。尽管已经进行了许多研究工作来研究准静态(应变率<100 S“ 1)负荷下脑部物质的机械表征,但是在动态应变率(应变率)下针对脑组织行为的实验研究却非常有限。 > 100 S“ 1)。在本文中,将提出在无侧限压迫试验下羊脑组织力学性能的研究结果。将样品在0.0667、3.33、6.667、33.33、66.667和200 S〜(-1_)的单轴应变速率下压缩。随着应变率的增加,脑组织表现出更强的反应,表现出随时间变化的行为。因此,仅超弹性模型不足以表现出大脑的粘弹性。因此,将基于幂函数模型和Mooney-Rivlin能量函数的两个超粘弹性本构方程应用于准静态应变率(<100 S〜(-1))的结果。对于低应变率的结果,已经在实验和理论上取得了很好的一致性。结论是,从准静态试验获得的材料参数不足以适合200 S“ 1高应变率的结果。该研究将进一步提供新的见解,以更好地了解材料的速率依赖性行为。这对于开发有效的人脑有限元模型来预测撞击或高速运动下的TBI的本构材料特性至关重要。

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