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首页> 外文期刊>Journal of NeuroEngineering Rehabilitation >Autonomous exoskeleton reduces metabolic cost of human walking during load carriage
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Autonomous exoskeleton reduces metabolic cost of human walking during load carriage

机译:自主外骨骼在负载托架期间减少人类行走的代谢成本

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Background Many soldiers are expected to carry heavy loads over extended distances, often resulting in physical and mental fatigue. In this study, the design and testing of an autonomous leg exoskeleton is presented. The aim of the device is to reduce the energetic cost of loaded walking. In addition, we present the Augmentation Factor, a general framework of exoskeletal performance that unifies our results with the varying abilities of previously developed exoskeletons. Methods We developed an autonomous battery powered exoskeleton that is capable of providing substantial levels of positive mechanical power to the ankle during the push-off region of stance phase. We measured the metabolic energy consumption of seven subjects walking on a level treadmill at 1.5 m/s, while wearing a 23 kg vest. Results During the push-off portion of the stance phase, the exoskeleton applied positive mechanical power with an average across the gait cycle equal to 23?±?2 W (11.5 W per ankle). Use of the autonomous leg exoskeleton significantly reduced the metabolic cost of walking by 36?±?12 W, which was an improvement of 8?±?3% (p?=?0.025) relative to the control condition of not wearing the exoskeleton. Conclusions In the design of leg exoskeletons, the results of this study highlight the importance of minimizing exoskeletal power dissipation and added limb mass, while providing substantial positive power during the walking gait cycle.
机译:背景技术许多士兵预计将在延长距离上携带重负荷,往往导致身体和精神疲劳。在这项研究中,提出了一种自主腿外骨骼的设计和测试。该装置的目的是降低装载行走的能量成本。此外,我们提出了增强因素,揭开表现的一般框架,使我们的结果统一,以通过先前开发的外骨骼的不同能力。方法我们开发了一种自主电池供电的外骨骼,其能够在姿势相的推开区域期间为脚踝提供大量的正机械电源。我们测量了七个受试者的代谢能耗,在1.5米/秒的水平跑步机上行走,同时穿着23公斤背心。结果在姿势相的推关部分期间,外骨骼施加正机械功率,平均在步态循环等于23Ω±2W(每个脚踝11.5W)。使用自主腿外骨骼明显降低了步行的代谢成本36?±12W,其相对于未穿着外骨骼的控制条件,这是8?±3%(p?= 0.025)的改善。结论在腿部外骨骼设计中,该研究的结果突出了最小化外骨骼功率耗散和增加了肢体质量的重要性,同时在行走步态周期中提供了大量的正电力。

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