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外骨骼机器人在下肢辅助中的应用:对材料、驱动和制造方法的综述。

Exoskeleton robots for lower limb assistance: A review of materials, actuation, and manufacturing methods.

机构信息

Human-Centred Technology Research Centre, Faculty of Science and Technology, University of Canberra, Canberra, ACT, Australia.

出版信息

Proc Inst Mech Eng H. 2021 Dec;235(12):1375-1385. doi: 10.1177/09544119211032010. Epub 2021 Jul 13.


DOI:10.1177/09544119211032010
PMID:34254562
Abstract

The field of robot-assisted physical rehabilitation and robotics technology for providing support to the elderly population is rapidly evolving. Lower limb robot aided rehabilitation and assistive technology have been a focus for the engineering community during the last three decades as several robotic lower limb exoskeletons have been proposed in the literature as well as some being commercially available. Numerous manufacturing techniques and materials have been developed for lower limb exoskeletons during the last two decades, resulting in the design of a variety of robot exoskeletons for gait assistance for elderly and disabled people. One of the most important aspects of developing exoskeletons is the selection of the most appropriate proper material. The material selection strongly influences the overall weight and performance of the exoskeleton robot. The most suitable fabrication method for material is also an important parameter for the development of lower limb robot exoskeletons. In addition to the materials and manufacturing methods, the actuation method plays a vital role in the development of these robot exoskeletons. Even though various materials, manufacturing methods and actuators are reported in the literature for these lower limb robot exoskeletons, there are still avenues of improvement in these three domains. In this review, we have examined various lower limb robotic exoskeletons, concentrating on the three main aspects of material, manufacturing, and actuation. We have focused on the advantages and drawbacks of various materials and manufacturing practices as well as actuation methods. A discussion on future directions of research is provided for the engineering community covering the material, manufacturing and actuation methods.

摘要

机器人辅助物理康复和机器人技术领域为老年人提供支持正在迅速发展。在过去的三十年中,下肢机器人辅助康复和辅助技术一直是工程界的关注焦点,因为文献中提出了几种机器人下肢外骨骼,并且有些已经商业化。在过去的二十年中,为下肢外骨骼开发了许多制造技术和材料,导致设计了各种用于老年人和残疾人步态辅助的机器人外骨骼。开发外骨骼最重要的方面之一是选择最合适的材料。材料选择强烈影响外骨骼机器人的整体重量和性能。对于外骨骼机器人的开发,最合适的制造方法也是一个重要参数。除了材料和制造方法外,致动方法在外骨骼机器人的开发中也起着至关重要的作用。尽管文献中报道了各种用于下肢机器人外骨骼的材料、制造方法和执行器,但在这三个领域仍有改进的空间。在这篇综述中,我们检查了各种下肢机器人外骨骼,重点关注材料、制造和致动三个主要方面。我们关注了各种材料和制造实践以及致动方法的优缺点。为工程界提供了涵盖材料、制造和致动方法的未来研究方向的讨论。

相似文献

[1]
Exoskeleton robots for lower limb assistance: A review of materials, actuation, and manufacturing methods.

Proc Inst Mech Eng H. 2021-12

[2]
Systematic review on wearable lower-limb exoskeletons for gait training in neuromuscular impairments.

J Neuroeng Rehabil. 2021-2-1

[3]
Wearable rehabilitation exoskeletons of the lower limb: analysis of versatility and adaptability.

Disabil Rehabil Assist Technol. 2023-5

[4]
State of the Art and Future Directions for Lower Limb Robotic Exoskeletons.

IEEE Trans Neural Syst Rehabil Eng. 2017-2

[5]
Compliant lower limb exoskeletons: a comprehensive review on mechanical design principles.

J Neuroeng Rehabil. 2019-5-9

[6]
Upper-Limb Robotic Exoskeletons for Neurorehabilitation: A Review on Control Strategies.

IEEE Rev Biomed Eng. 2016-4-8

[7]
A review of lower extremity assistive robotic exoskeletons in rehabilitation therapy.

Crit Rev Biomed Eng. 2013

[8]
Sensors and Actuation Technologies in Exoskeletons: A Review.

Sensors (Basel). 2022-1-24

[9]
The-state-of-the-art of soft robotics to assist mobility: a review of physiotherapist and patient identified limitations of current lower-limb exoskeletons and the potential soft-robotic solutions.

J Neuroeng Rehabil. 2023-1-30

[10]
Design and analysis of a lower limb assistive exoskeleton robot.

Technol Health Care. 2024

引用本文的文献

[1]
A soft exoskeleton for hip extension and flexion assistance based on reinforcement learning control.

Sci Rep. 2025-2-13

[2]
Review on Portable-Powered Lower Limb Exoskeletons.

Sensors (Basel). 2024-12-18

[3]
Passive and Active Exoskeleton Solutions: Sensors, Actuators, Applications, and Recent Trends.

Sensors (Basel). 2024-11-4

[4]
Design, Simulation and Functional Testing of a Novel Ankle Exoskeleton with 3DOFs.

Sensors (Basel). 2024-9-24

[5]
Effect and optimal exercise prescription of robot-assisted gait training on lower extremity motor function in stroke patients: a network meta-analysis.

Neurol Sci. 2025-3

[6]
Evaluating the Performance of Joint Angle Estimation Algorithms on an Exoskeleton Mock-Up via a Modular Testing Approach.

Sensors (Basel). 2024-8-31

[7]
Cross-domain prediction approach of human lower limb voluntary movement intention for exoskeleton robot based on EEG signals.

Front Bioeng Biotechnol. 2024-8-23

[8]
Innovative Metaheuristic Optimization Approach with a Bi-Triad for Rehabilitation Exoskeletons.

Sensors (Basel). 2024-3-30

[9]
Review of adaptive control for stroke lower limb exoskeleton rehabilitation robot based on motion intention recognition.

Front Neurorobot. 2023-7-3

[10]
Patent Review of Lower Limb Rehabilitation Robotic Systems by Sensors and Actuation Systems Used.

Sensors (Basel). 2023-7-7

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