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受生物启发的折纸式软质人工膝关节。

Bioinspired origami-based soft prosthetic knees.

作者信息

Gao Siyuan, Yang Chengxu, Chen Hongting, He Xinqiang, Ruan Lecheng, Wang Qining

机构信息

Department of Advanced Manufacturing and Robotics, College of Engineering, Peking University, Beijing, China.

Institute of Artificial Intelligence, Peking University, Beijing, China.

出版信息

Nat Commun. 2024 Dec 30;15(1):10855. doi: 10.1038/s41467-024-55201-1.

Abstract

Prosthetic knees represent a prevalent solution for above-knee amputation rehabilitation. However, satisfying the ambulation requirements of users while achieving their comfort needs in terms of lightweight, bionic, shock-absorbing, and user-centric, remains out of reach. Soft materials seem to provide alternative solutions as their properties are conducive to the comfort aspect. Unfortunately, the pronounced flexibility restricts the application of soft robots on prosthetic knees regarding morphological computation and weight-bearing performance. Here, we innovate a soft prosthetic knee for transfemoral amputees, addressing current challenges through the integration of origami technology and bioinspired weight-bearing principle, achieving its lightweight, compactness, low cost, and simple fabrication. The soft knee can hold the weight of a human (more than 75 kg), perform biomimetic polycentric flexion, absorb impacts during walking (absorbing 11.5% to 17.3% more impact forces), and actively support amputees to walk across ramps, stairs, and obstacles. The efficacy of the proposed design has been corroborated through bench-top and ambulation experiments. The proposal might lead to a paradigm shift in the lower limb prosthetic design.

摘要

假肢膝关节是大腿截肢康复的一种常见解决方案。然而,在满足用户行走需求的同时,在轻量化、仿生、减震和以用户为中心等方面实现他们的舒适需求,仍然难以做到。柔软材料似乎能提供替代解决方案,因为其特性有利于舒适性。不幸的是,其明显的柔韧性限制了软机器人在假肢膝关节在形态计算和承重性能方面的应用。在此,我们为大腿截肢者创新了一种柔软的假肢膝关节,通过整合折纸技术和仿生承重原理来应对当前挑战,实现了其轻量化、紧凑性、低成本和简单制造。这种柔软的膝关节能够承受人体重量(超过75千克),进行仿生多中心弯曲,在行走过程中吸收冲击力(比吸收的冲击力多11.5%至17.3%),并积极支持截肢者跨越斜坡、楼梯和障碍物。通过台式实验和行走实验证实了所提出设计的有效性。该提议可能会导致下肢假肢设计的范式转变。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e46a/11685968/bb8cb4db222f/41467_2024_55201_Fig1_HTML.jpg

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