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描述踝关节外骨骼助力跑步过程中峰值辅助扭矩与代谢成本降低之间的关系。

Characterizing the relationship between peak assistance torque and metabolic cost reduction during running with ankle exoskeletons.

机构信息

Department of Mechanical Engineering, Stanford University, Stanford, CA, USA.

Sports Research Laboratory, Nike Inc., Beaverton, OR, USA.

出版信息

J Neuroeng Rehabil. 2022 May 12;19(1):46. doi: 10.1186/s12984-022-01023-5.

Abstract

BACKGROUND

Reducing the energy cost of running with exoskeletons could improve enjoyment, reduce fatigue, and encourage participation among novice and ageing runners. Previously, tethered ankle exoskeleton emulators with offboard motors were used to greatly reduce the energy cost of running with powered ankle plantarflexion assistance. Through a process known as "human-in-the-loop optimization", the timing and magnitude of assistance torque was optimized to maximally reduce metabolic cost. However, to achieve the maximum net benefit in energy cost outside of the laboratory environment, it is also necessary to consider the tradeoff between the magnitude of device assistance and the metabolic penalty of carrying a heavier, more powerful exoskeleton.

METHODS

In this study, tethered ankle exoskeleton emulators were used to characterize the effect of peak assistance torque on metabolic cost during running. Three recreational runners participated in human-in-the-loop optimization at four fixed peak assistance torque levels to obtain their energetically optimal assistance timing parameters at each level.

RESULTS

We found that the relationship between metabolic rate and peak assistance torque was nearly linear but with diminishing returns at higher torque magnitudes, which is well-approximated by an asymptotic exponential function. At the highest assistance torque magnitude of 0.8 Nm/kg, participants' net metabolic rate was 24.8 ± 2.3% (p = 4e-6) lower than running in the unpowered devices. Optimized timing of peak assistance torque was as late as allowed during stance (80% of stance) and optimized timing of torque removal was at toe-off (100% of stance); similar assistance timing was preferred across participants and torque magnitudes.

CONCLUSIONS

These results allow exoskeleton designers to predict the energy cost savings for candidate devices with different assistance torque capabilities, thus informing the design of portable ankle exoskeletons that maximize net metabolic benefit.

摘要

背景

使用外骨骼降低跑步的能量消耗可以提高新手和老年跑步者的跑步体验,减轻疲劳感,鼓励他们参与跑步。先前,带有外置电机的系绳式踝关节外骨骼模拟器被用于极大地降低带动力踝关节跖屈辅助的跑步能量消耗。通过“人机闭环优化”过程,优化辅助扭矩的时间和幅度,以最大限度地降低代谢成本。然而,为了在实验室环境之外获得能量消耗的最大净效益,还需要考虑设备辅助幅度与携带更重、更强大的外骨骼的代谢惩罚之间的权衡。

方法

在这项研究中,使用系绳式踝关节外骨骼模拟器来描述在跑步过程中峰值辅助扭矩对代谢成本的影响。三位休闲跑者在四个固定峰值辅助扭矩水平下进行人机闭环优化,以在每个水平获得他们在能量上最优化的辅助时间参数。

结果

我们发现代谢率与峰值辅助扭矩之间的关系几乎呈线性关系,但在更高扭矩水平下呈递减趋势,这很好地被渐近指数函数所逼近。在最高辅助扭矩为 0.8 Nm/kg 的情况下,参与者的净代谢率比使用无动力设备时低 24.8±2.3%(p=4e-6)。峰值辅助扭矩的优化时间最晚可延迟至支撑相的 80%(支撑相),优化的扭矩去除时间为足趾离地时(支撑相的 100%);在不同参与者和扭矩水平下,辅助时间相似。

结论

这些结果使外骨骼设计者能够预测具有不同辅助扭矩能力的候选设备的能量节省,从而为设计最大限度地提高净代谢效益的便携式踝关节外骨骼提供信息。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6b41/9097400/f088fe4e9d17/12984_2022_1023_Fig1_HTML.jpg

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