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Walking patterns and micromechanical load-transfer properties of human bone

机译:人体的行走方式和微机械载荷传递特性

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When the foot of a person walking is lifted off the floor, electrical charge accumulates on the sole of the shoe or foot, which is then transferred to the body. When the foot is put back on the floor, the body uncharges. The combined effects of these charges induced stresses, in additional to the mechanical stresses due to walking cycle, on the micromechanical load-transfer properties of tibia bone (idealised as a piezoelectric assembly) are studied here using Discrete Element Method simulations. The study shows that the difference in normal walking patterns alone do not significantly affect the load-transfer properties of bone. Human bone is naturally versatile enough to regulate the load transfer for normal walking styles. However, the variations in the charge generated from the footwear seem to influence the load-transfer properties of bone, in particular, during the beginning stages of walking. This influence diminishes at longer periods of walking. Though more research is required, the current study is a step towards understanding the complexities of the stress distribution at micro scale in human bones due to walking.
机译:当步行的人的脚从地板上抬起时,电荷积聚在鞋子或脚的脚底上,然后转移到身体上。将脚放回地板上时,身体会自动充电。在这里,使用离散元方法模拟研究了这些电荷诱发的应力,除了由于行走循环而产生的机械应力外,还对胫骨(理想化为压电组件)的微机械载荷传递特性产生了综合影响。研究表明,仅正常行走方式的差异不会显着影响骨骼的负荷传递特性。人体骨骼具有足够的通用性,可以调节正常步行方式的负荷传递。但是,鞋类产生的电荷变化似乎会影响骨骼的负荷传递特性,特别是在行走的开始阶段。这种影响在较长的步行时间内会减小。尽管还需要进行更多的研究,但当前的研究是朝着了解由于行走导致的人体骨骼微观应力分布的复杂性迈出的一步。

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