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首页> 外文期刊>Journal of Biomechanics >Estimating upper extremity joint loads of persons with spinal cord injury walking with a lower extremity powered exoskeleton and forearm crutches
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Estimating upper extremity joint loads of persons with spinal cord injury walking with a lower extremity powered exoskeleton and forearm crutches

机译:用下肢动力外骨骼和前臂拐杖估算脊髓损伤的人的上肢关节荷载

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Lower extremity powered exoskeletons with crutch support can provide upright mobility to persons with complete spinal cord injury (SCI); however, crutch use for balance and weight transfer may increase upper extremity (UE) joint loads and injury risk. This research presented the first exoskeleton-human musculoskeletal model to estimate upper extremity biomechanics, driven by 3D motion data of persons with complete SCI walking with an exoskeleton and crutch assistance. Forearm crutches instrumented with strain gauges, force plates, and a 3D motion capture system were used to collect kinematic and kinetic data from five persons with complete SCI while walking with the ARKE exoskeleton. Model output estimated participant upper extremity kinematics, kinetics, and crutch forces. Compared to inverse dynamic biomechanical crutch model studies of persons with incomplete SCI, exoskeleton users walked with more anterior trunk tilt and twice the shoulder flexion angle. Anterior tilt increased forces and moments at the crutch, shoulder, and elbow. Crutch floor contact periods were 30-40% longer, resulting in upper extremity joint impulses 5 to 12 times greater than previously reported. Reducing UE joint loading is important to reduce overuse injuries associated with ambulatory assistive devices. Incorporating a variable assist ankle joint or more experience with exoskeleton walking may reduce UE joint loads, and minimise injury risk. Study outcomes provide a quantitative understanding of UE dynamics during exoskeleton walking that can be used to improve device design, training, and rehabilitation. (C) 2020 Published by Elsevier Ltd.
机译:下肢动力外骨骼与拐杖支撑可以为具有完全脊髓损伤的人提供直立的移动性(SCI);然而,用于平衡和重量转移的拐杖可以增加上肢(UE)关节载荷和伤害风险。本研究介绍了第一种脑骨骼 - 人肌肉骨骼模型来估算上肢生物力学,由完整的SCI的3D运动数据与外骨骼和拐杖辅助一起行走。使用应变仪表,力板和3D运动捕获系统的前臂拐杖用于从一个完整的SCI的五个人收集运动和动力学数据,同时使用Arke外骨骼进行行走。模型输出估计参与者上肢运动,动力学和拐杖力。与不完整的SCI的人的逆动态生物力学拐杖模型研究相比,外骨骼用户使用更多的前躯干倾斜和肩部屈曲角度的两倍。前倾斜增加拐杖,肩部和肘部的力量和时刻。拐杖地板接触期较长30-40%,导致上肢关节脉冲比以前报道的5至12倍。减少UE关节载荷对于减少与动态辅助装置相关的过度使用伤害是重要的。结合可变辅助踝关节或更多与外骨骼行走的经验可以减少UE关节载荷,并最大限度地减少伤害风险。研究结果在外骨骼行走期间对UE动力学进行了定量了解,可用于改善设备设计,培训和康复。 (c)2020年由elestvier有限公司发布

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