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倾斜角度对优化下肢外骨骼辅助效果的影响:病例系列研究。

The Effects of Incline Level on Optimized Lower-Limb Exoskeleton Assistance: A Case Series.

出版信息

IEEE Trans Neural Syst Rehabil Eng. 2022;30:2494-2505. doi: 10.1109/TNSRE.2022.3196665. Epub 2022 Sep 5.

Abstract

For exoskeletons to be successful in real-world settings, they will need to be effective across a variety of terrains, including on inclines. While some single-joint exoskeletons have assisted incline walking, recent successes in level-ground assistance suggest that greater improvements may be possible by optimizing assistance of the whole leg. To understand how exoskeleton assistance should change with incline, we used human-in-the-loop optimization to find whole-leg exoskeleton assistance torques that minimized metabolic cost on a range of grades. We optimized assistance for three non-disabled, expert participants on 5 degree, 10 degree, and 15 degree inclines using a hip-knee-ankle exoskeleton emulator. For all assisted conditions, the cost of transport was reduced by at least 50% relative to walking in the device with no assistance, which is a large improvement to walking comparable to the benefits of whole-leg assistance on level-ground (N = 3). Optimized extension torque magnitudes and exoskeleton power increased with incline. Hip extension, knee extension and ankle plantarflexion often grew as large as allowed by comfort-based limits. Applied powers on steep inclines were double the powers applied during level-ground walking, indicating that greater exoskeleton power may be optimal in scenarios where biological powers and costs are higher. Future exoskeleton devices could deliver large improvements in walking performance across a range of inclines if they have sufficient torque and power capabilities.

摘要

为了使外骨骼在现实环境中取得成功,它们需要在各种地形中有效,包括在斜坡上。虽然一些单关节外骨骼已经协助了斜坡行走,但最近在平地辅助方面的成功表明,通过优化整个腿部的辅助,可能会取得更大的改进。为了了解外骨骼辅助应该如何随坡度而变化,我们使用人机交互优化来找到最小化一系列坡度代谢成本的整个腿部外骨骼辅助扭矩。我们使用髋关节-膝关节-踝关节外骨骼模拟器对 3 名非残疾的专家参与者在 5 度、10 度和 15 度的斜坡上进行了优化辅助。对于所有辅助条件,与在没有辅助的设备中行走相比,运输成本至少降低了 50%,这是一个很大的改进,与平地时的整个腿部辅助效果相当(N = 3)。优化后的伸展扭矩幅度和外骨骼功率随坡度的增加而增加。髋关节伸展、膝关节伸展和踝关节跖屈通常会根据舒适度限制增大到允许的最大值。在陡峭的斜坡上施加的功率是平地行走时施加的功率的两倍,这表明在生物功率和成本较高的情况下,更大的外骨骼功率可能是最优的。如果未来的外骨骼设备具有足够的扭矩和功率能力,它们可以在一系列坡度上显著提高步行性能。

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