头部解剖模型,用于测量通过头部层的冲击力传递及其位移

L. Falland-Cheung, J. Neil Waddell, K. Li, D. Tong, P. Brunton
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引用次数: 2

摘要

当人类头部受到钝力冲击时,所涉及的力可能会产生几种机械反应,包括通过头部各层吸收冲击力。本研究的目的是开发一种头部解剖模型,以测量在受到短时间高速撞击时通过不同头部层的力传递及其位移。使用先前验证的模拟材料构建了解剖头部模型:环氧树脂(颅骨)、聚乙烯基硅氧烷(头皮)、琼脂/甘油/水(大脑)和改良的脑脊液静脉输液。加速计阵列(4 mm × 4毫米 × 1.45mm)结合到头部的各个层中以测量x-(前/后)、y-(左/右)和z-(上/下)轴上的力。所有传感器都连接到信号调节板和USB供电的数据记录器上。头部模型被放置在一个带有光学传感器的刚性金属支架中,以触发数据采集。将重量(750g)从0.5m(n=20)的高度下落。在皮肤顶部记录了1107.05N的冲击力(z轴),在不同层(皮肤底部78.48N,颅骨顶部319.82N,颅骨底部87.30N,大脑顶部和中心47.09N和大脑底部78.41N)的冲击力值呈下降趋势。x轴和y轴上的力与z轴上的类似。由于大脑底部仍承受78.41 N,这突出了头部受到重复冲击力的潜在危险。撞击时,头部各层在x、y和z方向上发生位移,最高值显示在z轴上。总之,这项研究确定了考虑对头部的短时间高强度影响及其对底层组织影响的重要性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Anatomical head model to measure impact force transfer through the head layers and their displacement
When the human head is subjected to blunt force impact, there are several mechanical responses that may result from the forces involved, including absorption of impact forces through the various layers of the head. The purpose of this study was to develop an anatomical head model to measure force transfer through the various head layers and their displacement when subject to short-duration high-velocity impacts. An anatomical head model was constructed using previously validated simulant materials: epoxy resin (skull), polyvinyl siloxane (scalp), agar/glycerol/water (brain) and modified intravenous fluid for the cerebrospinal fluid. An array of accelerometers (4 mm × 4 mm × 1.45 mm) was incorporated into the various layers of the head to measure forces in x- (anterior/posterior), y- (left/right) and z- (up/down) axis. All sensors were connected to a signal conditioning board and USB powered data loggers. The head model was placed into a rigid metal stand with an optical sensor to trigger data capturing. A weight (750 g) was dropped from a height of 0.5 m (n= 20). Impact forces (z-axis) of 1107.05 N were recorded on top of the skin, with decreasing values through the different layers (bottom of skin 78.48 N, top of skull 319.82 N, bottom of skull 87.30 N, top and centre of brain 47.09 N and base of brain 78.41 N. Forces in the x- and y-axes were similar to those of the z-axis. With the base of the brain still receiving 78.41 N, this highlights the potential danger of repetitive impact forces to the head. Upon impact the layers of the head are displaced in the x-, y- and z-direction, with the highest values shown in the z-axis. In conclusion, this study identified the importance of considering short-duration high-intensity impacts to the head and their effect on underlying tissues.
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