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A biomechanical analysis of anterior load carriage

机译:前部负载支架的生物力学分析

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Front load carriage is a common occupational task in some industries (e.g. agriculture, construction), but, as compared to lifting tasks, relatively little research has been conducted on the biomechanical loading during these activities. The focus of this study was to explore the low back biomechanics during these activities and, specifically, to examine the effects of load height and walking speed on trunk muscle activity and trunk posture. Eleven male participants participated in two separate front load-carriage experiments. The first experiment called for carrying a barbell (with weight corresponding to 20% of elbow flexion strength) at three heights (knuckle height, elbow height and shoulder height) at a constant horizontal distance from the spine. The second experiment called for participants to carry a bucket of potatoes weighing 14 kg at the same three heights, but with no further restrictions in technique. In both experiments, the participants performed this task while either standing still or walking at a self-selected speed. As they performed these tasks, the activity levels of the right-side muscle of the rectus abdominis, external oblique, biceps brachii, anterior deltoid and three levels (T9, T12 and L3) of the erector spinae were sampled. Mid-sagittal plane trunk posture was also quantified using three magnetic field-based motion sensors at T9, T12 and L3. The results showed a significant effect of both walking speed and load height on trunk posture and trunk muscle activity levels in both the barbell and bucket experiments. In the barbell experiment, the walking trials generated 43% more trunk muscle activity than the standing trials. Trials at shoulder height produced 11 % more muscle activity than trials at elbow height in the T9 erector spinae muscles and 71% more muscle activity in the anterior deltoid. In the bucket experiment, trunk muscle activity responded in a similar fashion, but the key result here was the quantification of the natural hyperextension posture of the spine used to balance the bucket of potatoes. These results provide insight into muscle activation patterns in dynamic settings, especially (load) carrying biomechanics, and have implications in industrial settings that require workers to carry loads in front of their bodies.
机译:在某些行业(例如,农业,建筑业)中,前装载运输是一项常见的职业任务,但是与起重任务相比,在这些活动中对生物力学载荷的研究相对较少。这项研究的重点是探索这些活动过程中的下背部生物力学,特别是研究负荷高度和步行速度对躯干肌肉活动和躯干姿势的影响。 11名男性参与者参加了两个单独的前部载荷运输实验。第一个实验要求在距脊柱恒定的水平距离上的三个高度(指关节高度,肘部高度和肩部高度)上举起杠铃(重量相当于肘部屈曲强度的20%)。第二个实验要求参与者在相同的三个高度上搬运一桶重14公斤的土豆,但是在技术上没有进一步的限制。在两个实验中,参与者都可以静止不动或以自行选择的速度行走时执行此任务。当他们执行这些任务时,对腹直肌,外斜肌,肱二头肌,前三角肌和竖脊肌的三个水平(T9,T12和L3)的活动水平进行了采样。还使用三个基于磁场的运动传感器在T9,T12和L3定量了矢状中平面躯干姿势。结果显示,在杠铃和水桶实验中,步行速度和负重高度对躯干姿势和躯干肌肉活动水平均具有显着影响。在杠铃实验中,步行试验产生的躯干肌肉活动比站立试验多出43%。在T9竖脊肌的肘部高度进行试验时,肩部高度产生的肌肉活动比在肘部高度处产生的肌肉活动多11%,而在三角肌前部产生的肌肉活动则多出71%。在水桶实验中,躯干肌肉活动以类似的方式响应,但是这里的主要结果是量化了用来平衡马铃薯水桶的脊柱自然的过度伸展姿势。这些结果提供了对动态环境中肌肉激活模式的洞察力,尤其是在承载生物力学(负载)的情况下,并在需要工人将负载承载在自己身体前面的工业环境中产生了影响。

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