前交叉韧带损伤的理论与数值分析及预防

Lixiang Yang
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引用次数: 6

摘要

前交叉韧带(ACL)损伤是大多数运动员的主要风险之一。引起前交叉韧带损伤的危险因素很多,包括解剖危险因素、生物力学危险因素和环境危险因素。本文对生物力学危险因素进行了数值分析和理论分析。基于MRI数据建立全三维膝关节有限元模型。采用有限元模型模拟了不同膝关节屈曲角度下的关节前平移(ATT)。在模拟中,更多地关注不同膝关节部件的材料特性及其对前交叉韧带损伤的影响。在体育运动中,粘弹性材料的力学响应很大程度上取决于其粘弹性特性。不幸的是,即使经过几个小时的物理老化,两束ACL的粘弹性也会发生巨大的变化。因此,由于日常物理老化,ACL将经历机械韧性到脆性的转变。首次引入高分子科学的物理老化理论来了解前交叉韧带损伤及其预防。类比于非晶态高分子材料的物理老化,我们认为两束前交叉韧带的物理老化会大大增加前交叉韧带损伤的风险。此外,由于前交叉韧带的自然解剖结构,物理老化也会使前交叉韧带产生异质应力应变,这对运动员来说是一个很大的风险。针对前交叉韧带损伤的特定预防方案,如增强训练、强化训练和其他神经肌肉训练,被认为可以消除前交叉韧带的物理老化。身体老化程度较低的acl在体育活动中受伤的可能性较小。本文建立了虚拟物理老化仿真来验证当前的假设。消除前交叉韧带的物理老化可以为预防前交叉韧带损伤提供一种准确、定量的方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Theoretical and Numerical Analysis of Anterior Cruciate Ligament Injury and its Prevention
Anterior cruciate ligament (ACL) injury is one of major risks for most athletes. ACL injury can be caused by many risk factors such as anatomic risk factors, biomechanical risk factors and environmental risk factors. In this article, numerical and theoretical analysis are conducted to investigate biomechanical risk factors. An entire three-dimensional finite element knee model was built based on MRI data. Anterior Tibial Translations (ATT) at different knee flexion angles are simulated by finite element models. In the simulations, more attentions are given to material properties of different knee components and their effects on ACL injury. Mechanical response of ACL during sport activities is highly determined by its viscoelastic properties. Unfortunately, viscoelastic properties of two bundles of ACL will change dramatically even with several hours’ physical aging. As a consequence, ACL will experience mechanical ductile to brittle transition due to daily physical aging. Theory of physical aging from polymer science is, for the first time, introduced to understand ACL injury and its prevention. By analogy to physical aging of amorphous polymer materials, we think physical aging of two bundles of ACL will largely increase risk of ACL injury. Besides, physical aging will also build a heterogeneous stress and strain in ACL due to its natural anatomic structure, which is a large risk for athletes. The specific designed prevention programs for ACL injury such as plyometrics, strengthening and other neuromuscular training exercises [1] are believed to erase physical aging of ACL. ACL with less physical aging is less likely to get injured in sport activities. In this article, a virtual physical aging simulation is built to validate current hypothesis. Erasing physical aging of ACL may provide an accurate and quantitative way to prevent ACL injury.
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