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用于康复和运动应用的运动捕捉和能量采集混合下肢系统。

A Motion Capturing and Energy Harvesting Hybridized Lower-Limb System for Rehabilitation and Sports Applications.

机构信息

School of Mechatronics Engineering, Harbin Institute of Technology, Harbin, 150001, China.

Department of Electrical and Computer Engineering, National University of Singapore, 4 Engineering Drive 3, Singapore, 117583, Singapore.

出版信息

Adv Sci (Weinh). 2021 Oct;8(20):e2101834. doi: 10.1002/advs.202101834. Epub 2021 Aug 19.

Abstract

Lower-limb motion monitoring is highly desired in various application scenarios ranging from rehabilitation to sports training. However, there still lacks a cost-effective, energy-saving, and computational complexity-reducing solution for this specific demand. Here, a motion capturing and energy harvesting hybridized lower-limb (MC-EH-HL) system with 3D printing is demonstrated. It enables low-frequency biomechanical energy harvesting with a sliding block-rail piezoelectric generator (S-PEG) and lower-limb motion sensing with a ratchet-based triboelectric nanogenerator (R-TENG). A unique S-PEG is proposed with particularly designed mechanical structures to convert lower-limb 3D motion into 1D linear sliding on the rail. On the one hand, high output power is achieved with the S-PEG working at a very low frequency, which realizes self-sustainable systems for wireless sensing under the Internet of Things framework. On the other hand, the R-TENG gives rise to digitalized triboelectric output, matching the rotation angles to the pulse numbers. Additional physical parameters can be estimated to enrich the sensory dimension. Accordingly, demonstrative rehabilitation, human-machine interfacing in virtual reality, and sports monitoring are presented. This developed hybridized system exhibits an economic and energy-efficient solution to support the need for lower-limb motion tracking in various scenarios, paving the way for self-sustainable multidimensional motion tracking systems in near future.

摘要

下肢运动监测在从康复到运动训练等各种应用场景中都有很高的需求。然而,对于这一特定需求,仍然缺乏一种具有成本效益、节能且降低计算复杂度的解决方案。在这里,展示了一种具有 3D 打印功能的运动捕捉和能量收集混合下肢(MC-EH-HL)系统。它通过滑动块-轨道压电发电机(S-PEG)实现低频生物力学能量收集,并通过基于棘轮的摩擦纳米发电机(R-TENG)实现下肢运动感应。提出了一种独特的 S-PEG,其具有特别设计的机械结构,可以将下肢的 3D 运动转换为在轨道上的 1D 线性滑动。一方面,S-PEG 以非常低的频率工作,实现了高输出功率,从而为物联网框架下的无线感应系统提供了自可持续性。另一方面,R-TENG 产生数字化摩擦电输出,将旋转角度与脉冲数匹配。可以估计其他物理参数,以丰富传感维度。因此,展示了康复、虚拟现实中的人机接口以及运动监测。这种开发的混合系统为各种场景中的下肢运动跟踪提供了经济节能的解决方案,为未来不久的自可持续多维运动跟踪系统铺平了道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/57fb/8529439/671ec65eebac/ADVS-8-2101834-g001.jpg

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