Orthopaedic Biomechanics Lab, Victoria Hospital, London, ON, Canada.
Orthopaedic Biomechanics Lab, Victoria Hospital, London, ON, Canada; Division of Orthopaedic Surgery, Western University, London, ON, Canada.
J Biomech. 2023 Nov;160:111822. doi: 10.1016/j.jbiomech.2023.111822. Epub 2023 Sep 29.
Biomechanics investigators are interested in experimentally measuring stresses experienced by dental structures, whole bones, joint replacements, soft tissues, normal limbs, etc. To do so, various experimental methods have been used that are based on acoustic, optical, piezo-resistive, or other principles, like digital image correlation, fiber optic sensors, photo-elasticity, strain gages, ultrasound, etc. Several biomechanical review papers have surveyed these research technologies, but they do not mention thermography. Thermography can identify temperature anomalies indicating low- or high-stress areas on a bone, implant, prosthesis, etc., which may need to be repaired, replaced, or redesigned to avoid damage, degradation, or failure. In addition, thermography can accurately predict a structure's cyclic fatigue strength. Consequently, this article gives an up-to-date survey of the scientific literature on thermography for biomechanical stress analysis. This review (i) describes the basic physics of thermography, thermo-elastic properties of biomaterials, experimental protocols for thermography, advantages, and disadvantages, (ii) surveys published studies on various applications that used thermography for biomechanical stress measurements, and (iii) discusses general findings and future work. This article is intended to inform biomechanics investigators about the potential of thermography for stress analysis.
生物力学研究人员有兴趣通过实验来测量牙齿结构、整个骨骼、关节置换物、软组织、正常肢体等所承受的压力。为此,已采用了各种基于声学、光学、压阻或其他原理的实验方法,如数字图像相关、光纤传感器、光弹性、应变计、超声等。有几篇生物力学综述论文调查了这些研究技术,但没有提到热成像。热成像可以识别骨骼、植入物、假体等上的温度异常,表明低应力或高应力区域,这些区域可能需要修复、更换或重新设计,以避免损坏、降解或失效。此外,热成像可以准确预测结构的循环疲劳强度。因此,本文对用于生物力学应力分析的热成像科学文献进行了最新调查。该综述(i)描述了热成像的基本物理学、生物材料的热弹性特性、热成像的实验方案、优点和缺点,(ii)调查了使用热成像进行生物力学应力测量的各种应用的已发表研究,以及(iii)讨论了一般发现和未来工作。本文旨在让生物力学研究人员了解热成像在应力分析方面的潜力。