Forestiero Antonella, Carniel Emanuele Luigi, Fontanella Chiara Giulia, Natali Arturo Nicola
Centre for Mechanics of Biological Materials, University of Padova, Via Venezia 1, 35131, Padua, Italy.
Department of Industrial Engineering, University of Padova, Via Venezia 1, 35131, Padua, Italy.
Australas Phys Eng Sci Med. 2017 Jun;40(2):289-295. doi: 10.1007/s13246-017-0533-7. Epub 2017 Feb 20.
The aim of this work is to provide a computational tool for the investigation of ankle mechanics under different loading conditions. The attention is focused on the biomechanical role of ankle ligaments that are fundamental for joints stability. A finite element model of the human foot is developed starting from Computed Tomography and Magnetic Resonance Imaging, using particular attention to the definition of ankle ligaments. A refined fiber-reinforced visco-hyperelastic constitutive model is assumed to characterize the mechanical response of ligaments. Numerical analyses that interpret anterior drawer and the talar tilt tests reported in literature are performed. The numerical results are in agreement with the range of values obtained by experimental tests confirming the accuracy of the procedure adopted. The increase of the ankle range of motion after some ligaments rupture is also evaluated, leading to the capability of the numerical models to interpret the damage conditions. The developed computational model provides a tool for the investigation of foot and ankle functionality in terms of stress-strain of the tissues and in terms of ankle motion, considering different types of damage to ankle ligaments.
这项工作的目的是提供一种计算工具,用于研究不同加载条件下的踝关节力学。研究重点是对关节稳定性至关重要的踝关节韧带的生物力学作用。基于计算机断层扫描和磁共振成像,开发了一个人类足部的有限元模型,特别关注踝关节韧带的定义。采用一种精细的纤维增强粘弹性本构模型来表征韧带的力学响应。进行了数值分析,解释了文献中报道的前抽屉试验和距骨倾斜试验。数值结果与实验测试获得的值范围一致,证实了所采用程序的准确性。还评估了一些韧带断裂后踝关节活动范围的增加情况,从而使数值模型能够解释损伤情况。所开发的计算模型提供了一种工具,可从组织的应力应变和踝关节运动方面,考虑踝关节韧带的不同损伤类型,来研究足踝关节的功能。