骨愈合
生物医学工程
固定(群体遗传学)
再现性
刚度
流离失所(心理学)
材料科学
计算机科学
生物力学
可靠性(半导体)
模拟
外科
工程类
医学
复合材料
数学
物理
统计
生理学
环境卫生
功率(物理)
量子力学
心理治疗师
心理学
人口
作者
Wei Qi,Xiao Feng,Teng Zhang,Li Ka Frankie LEUNG
标识
DOI:10.1109/embc44109.2020.9175437
摘要
Micromotion can accelerate fracture healing, with critical parameters being range of motion, frequency of motion, duration of motion, as well as initial timing of the motion. However, these parameters of micromotion have not been optimized. It is because in previous studies large animals were used. The displacement among fracture fragments caused by animal activity brings a considerable systemic error to experimental data. Also, the sample size is limited by time and cost. Thus, the rat with femur fracture can be a good animal model in investigating this problem as its advantages on high consistency of experimental results, short convalescence, and low maintenance cost. The challenge in using a small animal model in the micromotion study include 1) highly specific stiffness of the fixator; 2) lightweight fixator to bring less interference to animal's activity; 3) high accuracy on measurement method. This study aims to solve this problem by integrating 1) an aluminum fixator with a solid construction; 2) a modularized experimental device with dismountable parts; 3) a non-contact measurement model based on video identification technology. Our preliminary validation results confirmed the reliability and reproducibility of the external fixation device used in the investigation on the effect of applied micromotion on bone healing.
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