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Brain Motion, Deformation, and Potential Injury During Soccer Heading

机译:脑运动,变形和潜在伤害在足球标题期间

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摘要

This paper addresses the problem of what is happening physically inside the skull during head-ball contact. Mathematical models based upon Newton’s laws of motion and numerical methods are used to create animations of brain motion and deformation inside the skull.Initially a 1 cm gap filled with cerebrospinal fluid (CSF) separates the brain from the rigid skull in adults and older children. Whole head acceleration induces a pulse of artificial gravity within the skull. Because brain density differs slightly from that of CSF, the brain accelerates and strikes the inner aspect of the skull, undergoing viscoelastic deformation, ranging from 1 to 2 percent compression for normal heading with good technique, from 5 to 10 percent compression for normal heading with poor technique, and from 30 to 40 percent compression for accidental heading of rising balls at close range. The amount of local strain developed at the point of impact is magnified by force concentration caused by the mismatch between curvature of the brain and curvature of the overlying skull. Computed values are compared to a putative safe level of 1% maximum compressive strain permitted by the skull anatomy of woodpeckersThis fresh biomechanical analysis allows one to visualize events within the skull during soccer heading. The results suggest heading safety is greatly improved when players head the ball with greater effective body mass, which is determined by a player’s size, strength, and technique. Focus on teaching proper technique, re-design of age-appropriate balls with reduced weight, and strict avoidance of head contact with fast, rising balls kicked at close range can substantially reduce the risk of subtle brain injury.
机译:本文阐述了什么是在头球的接触颅骨内发生物理的问题。基于运动和数值方法牛顿定律数学模型用于创建skull.Initially 1cm的间隙填充有脑脊液(CSF)的内部大脑运动和变形的动画大脑免受在成人和年龄较大的儿童刚性颅骨分离。整个头部加速度诱导人工重力的颅骨内的脉冲。因为脑密度不同略微从CSF的,大脑加速并撞击颅骨内方面,在经过粘弹性变形,范围从1到具有良好技术正常标题2%压缩,从5到用于与正常标题10%压缩技术差,并从在近距离上升球的偶然标题30〜40%的压缩。局部应变的在冲击点开发的量由所造成的脑的曲率半径和上覆的颅骨的曲率之间的失配力浓度放大。计算的值进行比较,以1%的最大压缩应变的假定安全水平允许通过woodpeckersThis的颅骨解剖学新鲜生物力学分析允许一个足球标题期间显现颅骨内的事件。结果表明,当球员头上有更大的有效体重,这是由玩家的规模,实力和技术确定球航向安全性大大提高。注重教学适当的技术,在降低重量的年龄相符的球重新设计,与头部接触的严格避免同业快,近距离踢上升球可以大大减少细微的脑损伤的风险。

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    Charles F Babbs;

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  • 年度 2018
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