Gunaratne Praveen Nuwantha, Tamura Hiroki
Interdisciplinary Graduate School of Agriculture and Engineering, University of Miyazaki, 1-1 Gakuen Kibanadai-nishi, Miyazaki 889-2192, Japan.
Faculty of Engineering, University of Miyazaki, 1-1 Gakuen Kibanadai-nishi, Miyazaki 889-2192, Japan.
Sensors (Basel). 2024 Dec 20;24(24):8153. doi: 10.3390/s24248153.
Active ankle orthoses which have been designed over the past few years by diverse sources were critically reviewed in this paper. It begins by providing an overview of the anatomy of the ankle joint complex, establishing a basis for understanding the subsequent discussion on the research challenges and design difficulties associated with developing active ankle orthosis devices. The review systematically examined the mechanisms, actuation methods, and control strategies utilized in these orthosis devices. This covers various control strategies, including Electromyography (EMG)-based, adaptive, and modular control systems, emphasizing their importance in achieving precise and user-intended movements. By integrating insights from recent studies and technological innovations, this paper provides a holistic view of the progress in active ankle orthoses. The paper concludes with design recommendations aimed at overcoming existing limitations and promoting further development of advanced active ankle orthosis devices for future research.
本文对过去几年由不同机构设计的主动式踝关节矫形器进行了批判性综述。文章首先概述了踝关节复合体的解剖结构,为理解后续关于开发主动式踝关节矫形器设备所面临的研究挑战和设计困难的讨论奠定基础。该综述系统地研究了这些矫形器设备所采用的机制、驱动方法和控制策略。这涵盖了各种控制策略,包括基于肌电图(EMG)的、自适应的和模块化的控制系统,强调了它们在实现精确且符合用户意图的运动方面的重要性。通过整合近期研究和技术创新的见解,本文全面呈现了主动式踝关节矫形器的进展情况。文章最后给出了设计建议,旨在克服现有局限性,并推动先进的主动式踝关节矫形器设备在未来研究中的进一步发展。