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FINITE ELEMENT ANALYSIS OF PENETRATING HEAD INJURY

机译:颅脑损伤的有限元分析

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摘要

The objective of this study is to biomechanical quantify the intracranial displacement and pressure distributions associated with civilian projectiles to advance clinical understanding of the pathophysiological consequences of penetrating head injuries. A finite element head model was developed in an attempt to investigate the penetrating processes and brain injury mechanisms. Two geometrical shapes of projectiles (flat and pinpoint headed) were considered for penetration. They were modeled as rigid bodies (6.5 and 9 g) impacting at an initial velocity of 300 m/s. The head was modeled as a spherical skull with left and right hemispheres. Material properties and damage criteria for the skull and brain were based on literature. The penetration process was modeled with eroding contact surface method with LS-DYNA. Elements considered damaged were removed from further computation when the stress or strain reached their thresholds. Temporal displacement and pressure distributions are described. The effects of projectile type on the wounding pattern are discussed. The entry location responded with higher magnitudes of displacement than other locations (e.g., exit, mid brain). The flat head projectile penetration resulted in higher magnitudes of pressure and displacement than the pinpoint projectile in the entire skull-brain system. The finite element analysis provides a quantitative understanding of the localized intrinsic responses secondary to projectile penetration.
机译:这项研究的目的是生物力学量化与民用弹丸有关的颅内位移和压力分布,以增进对穿透性颅脑损伤的病理生理后果的临床认识。为了研究渗透过程和脑损伤机制,开发了有限元头部模型。考虑了射弹的两种几何形状(扁平和细头)。它们被建模为以300 m / s的初始速度撞击的刚体(6.5和9 g)。头部被建模为具有左右半球的球形头骨。头骨和大脑的材料特性和损坏标准基于文献。用LS-DYNA腐蚀接触面法对渗透过程进行建模。当应力或应变达到其阈值时,被认为损坏的元素将从进一步的计算中删除。描述了时间位移和压力分布。讨论了弹丸类型对伤口形态的影响。与其他位置(例如,出口,大脑中部)相比,进入位置的位移幅度更高。在整个颅脑系统中,平头弹丸的穿透导致的压力和位移的大小比精确的弹丸高。有限元分析提供了对次于弹丸穿透的局部固有响应的定量理解。

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