Department of Mechanical Engineering, University of Ottawa, 161 Louis-Pasteur, Colonel By Hall, Ottawa, ON K1N 6N5, Canada.
Department of Mechanical Engineering, University of Ottawa, 161 Louis-Pasteur, Colonel By Hall, Ottawa, ON K1N 6N5, Canada.
Med Eng Phys. 2020 Jun;80:33-43. doi: 10.1016/j.medengphy.2020.03.008. Epub 2020 May 6.
A decrease in mobility, related to illness, trauma or ageing, negatively affects the quality of life of the rapidly growing elderly population. A promising solution to maintain this standard of living is powered wearable mobility assist devices. Although they have achieved technological breakthroughs in the last decade, their overall success is still hindered by their induced physical discomfort, which limits their effective and prolonged usage. The aim of this study is to achieve a comprehensive characterization of human-machine physical interface to further advance the performance of wearable mobility assist devices, specifically for the knee joint. This led the research group to design, fabricate, and instrument a low-cost modular knee orthosis testing apparatus with extension moment assist that allows multiple physical interface adjustment parameters. This device was conceived with the objective to conduct human testing while introducing design variables and operating parameters to evaluate device's performance. Using a force mapping apparatus and a motion capture system, the kinetic and the kinematic behaviour of the developed orthosis' physical interfaces were acquired. The results demonstrated varied impact on performance when introducing key design variables namely interface position, interface geometry, interface compliancy, interface hard-shell position, interface degree of freedom, and knee extension moment. This study provides an in-depth understanding of distinct user-device interface mechanisms and permitted an evaluation of optimum orthosis parameters to help further advance the state of wearable mobility assist devices.
行动能力下降与疾病、创伤或衰老有关,会降低快速增长的老年人群的生活质量。为了维持这一生活水平,可穿戴动力辅助移动设备是一种很有前景的解决方案。尽管在过去十年中,它们在技术上取得了突破,但由于其引起的身体不适,它们的整体成功仍然受到限制,这限制了它们的有效和长期使用。本研究旨在全面描述人机物理接口,以进一步提高可穿戴移动辅助设备的性能,特别是针对膝关节。这促使研究小组设计、制造和测试了一种低成本的、带有伸展力矩辅助的模块化膝关节矫形器测试设备,该设备具有多个物理接口调节参数。该设备的设计目的是在引入设计变量和操作参数以评估设备性能的同时进行人体测试。使用力映射装置和运动捕捉系统,获取了所开发矫形器物理接口的运动学和运动行为。结果表明,当引入关键设计变量(即接口位置、接口几何形状、接口顺应性、接口硬壳位置、接口自由度和膝关节伸展力矩)时,性能会有很大的变化。本研究深入了解了不同的用户-设备接口机制,并评估了最佳矫形器参数,以帮助进一步提高可穿戴移动辅助设备的水平。