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Why Most Traumatic Brain Injuries are Not Caused by Linear Acceleration but Skull Fractures are

机译:为什么大多数创伤性脑损伤不是由线性加速度引起而是颅骨骨折

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摘要

Injury statistics have found the most common accident situation to be an oblique impact. An oblique impact will give rise to both linear and rotational head kinematics. The human brain is most sensitive to rotational motion. The bulk modulus of brain tissue is roughly five to six orders of magnitude larger than the shear modulus so that for a given impact it tends to deform predominantly in shear. This gives a large sensitivity of the strain in the brain to rotational loading and a small sensitivity to linear kinematics. Therefore, rotational kinematics should be a better indicator of traumatic brain injury risk than linear acceleration. To illustrate the difference between radial and oblique impacts, perpendicular impacts through the center of gravity of the head and 45° oblique impacts were simulated. It is obvious that substantially higher strain levels in the brain are obtained for an oblique impact, compared to a corresponding perpendicular one, when impacted into the same padding using an identical impact velocity. It was also clearly illustrated that the radial impact causes substantially higher stresses in the skull with an associated higher risk of skull fractures, and traumatic brain injuries secondary to those.
机译:伤害统计数据已发现最常见的事故情况是倾斜的影响。倾斜冲击将同时引起线性和旋转头部运动。人脑对旋转运动最敏感。脑组织的体积模量比剪切模量大大约五到六个数量级,因此对于给定的冲击,它倾向于在剪切时主要变形。这使大脑中的应变对旋转载荷的灵敏度较大,而对线性运动学的灵敏度较小。因此,与线性加速相比,旋转运动学应该是创伤性脑损伤风险的更好指标。为了说明径向和倾斜冲击之间的差异,模拟了通过头部重心的垂直冲击和45°倾斜冲击。显然,当以相同的撞击速度撞击到相同的衬垫中时,与相应的垂直撞击相比,对于斜向撞击而言,大脑中的应变水平要高得多。还清楚地表明,径向冲击会在颅骨中造成更高的压力,并伴有颅骨骨折的高风险,以及继发于颅脑的颅脑外伤。

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