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The effects of trabecular architectures on transferring dynamic loads to the brain

机译:三梁架构对脑传递动态载荷的影响

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摘要

The SEM study revealed that the trabecular architectures in the subarachnoid space (SAS) are in the form of tree-shaped rods, pillars, plates or a complex network. In this paper, the effects of pillar and tree-shaped trabeculae on transferring an impact load and a pressure wave to the brain have been investigated. Indeed, two sets of local 3D FE models, including the brain and the SAS with rod and tree-shaped trabeculae were created. The models were subjected to pressure histories from the blunt impact and the shockwave scenarios. The results indicated that the thickness, shape and architecture of the trabeculae would not affect the severity of loads transferring to the brain from shock waves. In cases of blunt impact scenario, the presence of trabeculae would reduce the load transferring to the brain and also the upright tree shaped trabeculae perform stronger in protecting the brain, comparing to the inverted ones.
机译:SEM的研究表明,蛛网膜下腔空间(SAS)中的小梁架是树形杆,柱,板或复杂网络的形式。 本文研究了柱子和树形小梁对大脑转移冲击载荷和压力波的影响。 实际上,创建了两组本地3D FE模型,包括大脑和带杆和树形小梁的SAS。 从钝的冲击和冲击波场景中受到压力历史的压力历史。 结果表明,小梁的厚度,形状和架构不会影响从冲击波转移到大脑的负荷的严重程度。 在钝性撞击场景的情况下,小梁的存在将减少转移到大脑的负荷,并且直立树形的树皮在保护大脑时,与倒置相比,对大脑进行更强。

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