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ladder; taxonomy; portable ladders

机译:阶梯;分类;便携式梯子

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Handle or interface design can influence torso muscle recruitment and spinal load during pushing tasks. The objective of the study was to provide insight into the role of interface stability with regard to torso muscle recruitment and biomechanical loads on the spine. Fourteen subjects generated voluntary isometric trunk flexion force against a rigid interface and similar flexion exertions against an unstable interface, which simulated handle design in a cart pushing task. Normalized electromyographic (EMG) activity in the rectus abdominus, external oblique and internal oblique muscles increased with exertion effort. When using the unstable interface, EMG activity in the internal and external oblique muscle groups was greater than when using the rigid interface. Results agreed with trends from a biomechanical model implemented to predict the muscle activation necessary to generate isometric pushing forces and maintain spinal stability when using the two different interface designs. The co-contraction contributed to increased spinal load when using the unstable interface. It was concluded that handle or interface design and stability may influence spinal load and associated risk of musculoskeletal injury during manual materials tasks that involve pushing exertions.
机译:手柄或界面设计可能会在推动任务期间影响躯干肌肉的募集和脊柱负荷。这项研究的目的是提供关于界面稳定性在躯干肌肉募集和脊柱生物力学负荷方面的作用的见解。 14名受试者针对刚性接口产生了自愿的等距躯干屈曲力,针对不稳定的界面产生了类似的屈曲作用,从而模拟了手推车推动任务中的手柄设计。腹直肌,外斜肌和内斜肌的正常肌电图(EMG)活动随着努力而增加。当使用不稳定的界面时,内部和外部斜肌群中的EMG活动要比使用刚性界面时大。结果与生物力学模型的趋势相吻合,该模型用于预测在使用两种不同界面设计时产生等轴测推力并保持脊柱稳定性所必需的肌肉激活。当使用不稳定的界面时,共收缩有助于增加脊柱负荷。结论是,在涉及推动运动的手动材料任务中,手柄或界面的设计以及稳定性可能会影响脊柱负荷和相关的肌肉骨骼损伤风险。

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