Center for Applied Biomechanics, Department of Biomedical Engineering, Faculty of Engineering, University of Malaya, 50603 Kuala Lumpur, Malaysia.
Sensors (Basel). 2012 Sep 25;12(10):12890-926. doi: 10.3390/s121012890.
In recent years, fiber Bragg gratings (FBGs) are becoming increasingly attractive for sensing applications in biomechanics and rehabilitation engineering due to their advantageous properties like small size, light weight, biocompatibility, chemical inertness, multiplexing capability and immunity to electromagnetic interference (EMI). They also offer a high-performance alternative to conventional technologies, either for measuring a variety of physical parameters or for performing high-sensitivity biochemical analysis. FBG-based sensors demonstrated their feasibility for specific sensing applications in aeronautic, automotive, civil engineering structure monitoring and undersea oil exploration; however, their use in the field of biomechanics and rehabilitation applications is very recent and its practicality for full-scale implementation has not yet been fully established. They could be used for detecting strain in bones, pressure mapping in orthopaedic joints, stresses in intervertebral discs, chest wall deformation, pressure distribution in Human Machine Interfaces (HMIs), forces induced by tendons and ligaments, angles between body segments during gait, and many others in dental biomechanics. This article aims to provide a comprehensive overview of all the possible applications of FBG sensing technology in biomechanics and rehabilitation and the status of ongoing researches up-to-date all over the world, demonstrating the FBG advances over other existing technologies.
近年来,光纤布拉格光栅(FBG)因其尺寸小、重量轻、生物相容性、化学惰性、复用能力以及对电磁干扰(EMI)的免疫等优势,在生物力学和康复工程中的传感应用中越来越受到关注。它们也为测量各种物理参数或进行高灵敏度生化分析提供了一种高性能的替代传统技术的方法。基于 FBG 的传感器已经证明了它们在航空、汽车、土木工程结构监测和海底石油勘探等特定传感应用中的可行性;然而,它们在生物力学和康复应用领域的使用是最近的事情,其在全面实施中的实用性尚未得到充分确立。它们可用于检测骨骼中的应变、矫形关节中的压力映射、椎间盘的应力、胸壁变形、人机界面(HMI)中的压力分布、肌腱和韧带引起的力、步态过程中体段之间的角度以及其他许多在牙科生物力学中的应用。本文旨在全面概述 FBG 传感技术在生物力学和康复领域的所有可能应用,并展示 FBG 在其他现有技术中的优势。