Slowik Jonathan S, Neptune Richard R
Department of Mechanical Engineering, The University of Texas at Austin, Austin, TX 78712, USA.
Clin Biomech (Bristol). 2013 Apr;28(4):378-85. doi: 10.1016/j.clinbiomech.2013.03.004. Epub 2013 Apr 19.
The high physical demands placed on the upper extremity during manual wheelchair propulsion can lead to pain and overuse injuries that further reduce user independence and quality of life. Seat position is an adjustable parameter that can influence the mechanical loads placed on the upper extremity. The purpose of this study was to use a musculoskeletal model and forward dynamics simulations of wheelchair propulsion to identify the optimal seat position that minimizes various measures of upper extremity demand including muscle stress, co-contraction and metabolic cost.
Forward dynamics simulations of wheelchair propulsion were generated across a range of feasible seat positions by minimizing the change in handrim forces and muscle-produced joint moments. Resulting muscle stress, co-contraction and metabolic cost were examined to determine the optimal seat position that minimized these values.
Muscle stress and metabolic cost were near minimal values at superior/inferior positions corresponding to top-dead-center elbow angles between 110 and 120° while at an anterior/posterior position with a hub-shoulder angle between -10 and -2.5°. This coincided with a reduction in the level of muscle co-contraction, primarily at the glenohumeral joint.
Deviations from this position lead to increased co-contraction to maintain a stable, smooth propulsive stroke, which consequentially increases upper extremity demand. These results agree with previous clinical guidelines for positioning the seat to reduce upper extremity overuse injuries and pain for wheelchair users.
手动轮椅推进过程中上肢承受的高强度体力需求可导致疼痛和过度使用损伤,进而降低使用者的独立性和生活质量。座位位置是一个可调节参数,会影响上肢所承受的机械负荷。本研究的目的是使用肌肉骨骼模型和轮椅推进的正向动力学模拟,来确定能使包括肌肉应力、协同收缩和代谢成本等各种上肢需求指标最小化的最佳座位位置。
通过最小化轮圈力和肌肉产生的关节力矩的变化,在一系列可行的座位位置上生成轮椅推进的正向动力学模拟。检查由此产生的肌肉应力、协同收缩和代谢成本,以确定使这些值最小化的最佳座位位置。
在对应于110至120°之间上死点肘角的上下位置,以及轮毂 - 肩部角度在 -10至 -2.5°之间的前后位置,肌肉应力和代谢成本接近最小值。这与肌肉协同收缩水平的降低相吻合,主要是在盂肱关节处。
偏离此位置会导致协同收缩增加,以维持稳定、顺畅的推进冲程,从而增加上肢需求。这些结果与先前关于为轮椅使用者调整座位位置以减少上肢过度使用损伤和疼痛的临床指南一致。