Chen Yu-Ning, Wu Yi-Ning, Yang Bing-Shiang
Department of Mechanical Engineering, National Yang Ming Chiao Tung University, Taiwan; Biomechanics and Medical Application Laboratory, National Yang Ming Chiao Tung University; Division of Neurosurgery, Department of Surgery, National Taiwan University Hospital Hsin-Chu Branch, Taiwan.
Department of Physical Therapy and Kinesiology, University of Massachusetts Lowell, MA, USA; The New England Robotics Validation and Experimentation Center, University of Massachusetts Lowell, MA, USA.
J Biomech. 2023 Sep;158:111738. doi: 10.1016/j.jbiomech.2023.111738. Epub 2023 Jul 22.
Historically, impaired lower limb function has resulted in heavy health burden and large economic loss in society. Although experts from various fields have put large amounts of effort into overcoming this challenge, there is still not a single standard treatment that can completely restore the lost limb function. During the past half century, with the advancing understanding of human biomechanics and engineering technologies, exoskeletons have achieved certain degrees of success in assisting and rehabilitating patients with loss of limb function, and therefore has been spotlighted in both the medical and engineering fields. In this article, we review the development milestones of lower limb exoskeletons as well as the neuromuscular interactions between the device and wearer throughout the past 50 years. Fifty years ago, the lower-limb exoskeletons just started to be devised. We review several prototypes and present their designs in terms of structure, sensor and control systems. Subsequently, we introduce the development milestones of modern lower limb exoskeletons and discuss the pros and cons of these differentiated devices. In addition, we summarize current important neuromuscular control systems and sensors; and discuss current evidence demonstrating how the exoskeletons may affect neuromuscular control of wearers. In conclusion, based on our review, we point out the possible future direction of combining multiple current technologies to build lower limb exoskeletons that can serve multiple aims.
从历史上看,下肢功能受损给社会带来了沉重的健康负担和巨大的经济损失。尽管各个领域的专家都付出了巨大努力来应对这一挑战,但仍没有一种标准治疗方法能够完全恢复丧失的肢体功能。在过去的半个世纪里,随着对人体生物力学和工程技术认识的不断深入,外骨骼在辅助和康复肢体功能丧失患者方面取得了一定程度的成功,因此在医学和工程领域都受到了关注。在本文中,我们回顾了下肢外骨骼的发展历程以及过去50年中该设备与穿戴者之间的神经肌肉相互作用。50年前,下肢外骨骼刚刚开始设计。我们回顾了几个原型,并从结构、传感器和控制系统方面介绍了它们的设计。随后,我们介绍了现代下肢外骨骼的发展历程,并讨论了这些不同设备的优缺点。此外,我们总结了当前重要的神经肌肉控制系统和传感器;并讨论了目前证明外骨骼如何影响穿戴者神经肌肉控制的证据。总之,基于我们的综述,我们指出了结合多种现有技术构建能够实现多种目标的下肢外骨骼的未来可能方向。