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评估在模拟植树任务中手腕支撑对腕部姿势、肌肉活动、旋转刚度和铲地峰值冲击力的人体工程学益处。

Evaluating the Ergonomic Benefit of a Wrist Brace on Wrist Posture, Muscle Activity, Rotational Stiffness, and Peak Shovel-Ground Impact Force During a Simulated Tree-Planting Task.

作者信息

Sheahan Peter J, Cashaback Joshua G A, Fischer Steven L

机构信息

Queen's University, Kingston, Canada.

Western University, London, Canada.

出版信息

Hum Factors. 2017 Sep;59(6):911-924. doi: 10.1177/0018720817708084. Epub 2017 May 9.

DOI:10.1177/0018720817708084
PMID:28486092
Abstract

Background Tree planters are at a high risk for wrist injury due to awkward postures and high wrist loads experienced during each planting cycle, specifically at shovel-ground impact. Wrist joint stiffness provides a measure that integrates postural and loading information. Objective The purpose of this study was to evaluate wrist joint stiffness requirements at the instant of shovel-ground impact during tree planting and determine if a wrist brace could alter muscular contributions to wrist joint stiffness. Method Planters simulated tree planting with and without wearing a brace on their planting arm. Surface electromyography (sEMG) from six forearm muscles and wrist kinematics were collected and used to calculate muscular contributions to joint rotational stiffness about the wrist. Results Wrist joint stiffness increased with brace use, an unanticipated and negative consequence of wearing a brace. As a potential benefit, planters achieved a more neutrally oriented wrist angle about the flexion/extension axis, although a less neutral wrist angle about the ulnar/radial axis was observed. Muscle activity did not change between conditions. Conclusion The joint stiffness analysis, combining kinematic and sEMG information in a biologically relevant manner, revealed clear limitations with the interface between the brace grip and shovel handle that jeopardized the prophylactic benefits of the current brace design. This limitation was not as evident when considering kinematics and sEMG data independently. Application A neuromechanical model (joint rotational stiffness) enhanced our ability to evaluate the brace design relative to kinematic and sEMG parameter-based metrics alone.

摘要

背景 由于植树过程中每个种植周期都存在不自然的姿势和较高的手腕负荷,尤其是在铲子触地时,植树工人手腕受伤的风险很高。腕关节僵硬提供了一种整合姿势和负荷信息的指标。目的 本研究的目的是评估植树过程中铲子触地瞬间的腕关节僵硬要求,并确定手腕支具是否能改变肌肉对腕关节僵硬的影响。方法 植树工人在种植手臂佩戴或不佩戴支具的情况下模拟植树。收集来自六块前臂肌肉的表面肌电图(sEMG)和手腕运动学数据,并用于计算肌肉对腕关节旋转僵硬的影响。结果 佩戴支具时腕关节僵硬增加,这是佩戴支具一个意外的负面结果。作为一个潜在的好处,植树工人在屈伸轴上实现了更中立的手腕角度,尽管在尺桡轴上观察到手腕角度不太中立。不同条件下肌肉活动没有变化。结论 关节僵硬分析以生物学相关的方式结合运动学和sEMG信息,揭示了支具握把和铲子手柄之间的界面存在明显局限性,危及了当前支具设计的预防益处。当单独考虑运动学和sEMG数据时,这种局限性并不明显。应用 一个神经力学模型(关节旋转僵硬)增强了我们相对于仅基于运动学和sEMG参数的指标来评估支具设计的能力。

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