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首页> 外文期刊>Journal of Biomechanics >Separating brain motion into rigid body displacement and deformation under low-severity impacts.
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Separating brain motion into rigid body displacement and deformation under low-severity impacts.

机译:在低强度的冲击下,将大脑运动分为刚体位移和变形。

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摘要

The relative motion of the brain with respect to the skull has been widely studied to investigate brain injury mechanisms under impacts, but the motion patterns are not yet thoroughly understood. This work analyzes brain motion patterns using the most recent and advanced experimental relative brain/skull motion data collected under low-severity impacts. With a minimum total pseudo-strain energy, the closed-form solutions for rigid body translation and rotation were obtained by matching measured neutral density target (NDT) positions with initial NDT positions. The brain motion was thus separated into rigid body displacement and deformation. The results show that the brain has nearly pure rigid body displacement at low impact speed. As the impact becomes more severe, the increased brain motion primarily is due to deformation, while the rigid body displacement is limited in magnitude for both translation and rotation. Under low-severity impacts in the sagittal plane, the rigid body brain translation has a magnitude of 4-5 mm, and the whole brain rotation is on the order of +/-5 degrees.
机译:人们已经广泛研究了大脑相对于颅骨的相对运动,以研究冲击作用下的脑损伤机制,但是运动方式尚未得到完全了解。这项工作使用在低严重度影响下收集的最新和最先进的实验相对大脑/头骨运动相关数据来分析大脑运动模式。以最小的总伪应变能,通过将测得的中性密度目标(NDT)位置与初始NDT位置相匹配,获得刚体平移和旋转的闭合形式解。因此,大脑的运动分为刚体位移和变形。结果表明,在低冲击速度下,大脑具有几乎纯净的刚体位移。随着冲击变得更加严重,增加的大脑运动主要是由于变形,而刚体位移的大小在平移和旋转方面受到限制。在矢状面的严重程度较低的冲击下,刚体大脑的平移幅度为4-5 mm,整个大脑的旋转约为+/- 5度。

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