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Influence of strain rate on indentation response of porcine brain

机译:应变率对猪脑压痕响应的影响

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Knowledge of brain tissue mechanical properties may be critical for formulating hypotheses about some specific diseases mechanisms and its accurate simulations such as traumatic brain injury (TBI) and tumor growth. Compared to traditional tests (e.g. tensile and compression), indentation shows superiority by virtue of its pinpoint and nondestructive/quasi-nondestructive. As a viscoelastic material, the properties of brain tissue depend on the strain rate by definition. However most efforts focus on the aspect of velocity in the field of brain indentation, rather than strain rate. The influence of strain rate on indentation response of brain tissue is taken little attention. Further, by comparing different results from literatures, it is also obvious that strain rate rather than velocity is more appropriate to characterize mechanical properties of brain. In this paper, to systematically characterize the influence of strain rate, a series of indentation-relaxation tests n = 210) are performed on the cortex of porcine brain using a custom-designed indentation device. The mechanical response that correlates with indenter diameters, depths of indentation and velocities, is revealed for the indentation portion, and elastic behavior of brain tissue is analyzed as the function of strain rate. Similarly, a linear viscoelastic model with a Prony series is employed for the indentation-relaxation portion, wherein the brain tissue shows more viscous and responds more quickly with increasing strain rate. Understanding the effect of strain rate on mechanical properties of brain indentation may be far-reaching for brain injury biomechanics and accurate simulations, but be important for bridging between indentation results of different literatures.
机译:对脑组织机械性能的了解对于制定关于一些特定疾病机制的假设和其精确模拟,例如创伤性脑损伤(TBI)和肿瘤生长,可能是至关重要的。与传统测试相比(例如拉伸和压缩),缩进凭借其精确和非破坏性/准无损性能显示出优越性。作为粘弹性材料,脑组织的性质通过定义取决于应变率。然而,大多数努力将重点关注脑压痕领域的速度,而不是应变率。应变率对脑组织缩进响应的影响很少。此外,通过比较来自文献的不同结果,也显然,应变速率而不是速度更适合于表征脑的机械性能。在本文中,为了系统地表征应变率的影响,使用定制设计的压痕装置对猪脑的皮质进行一系列压痕 - 松弛试验N = 210)。对于压痕直径,压痕和速度的深度相关的机械响应被针对压痕部分揭示,并作为应变速率的函数分析脑组织的弹性行为。类似地,采用具有柱系列的线性粘弹性模型用于压痕 - 松弛部分,其中脑组织显示出更多粘性并且随着应变速率的增加而更快地响应。了解应变率对脑压痕力学性能的影响可能对脑损伤生物力学和准确的模拟来说是深远的影响,但对于不同文献的缩进结果之间的桥接是重要的。

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