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Numerical Simulation of the Posterior Malleolus Fracture with the Finite Element Method

机译:后踝骨折的有限元数值模拟

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摘要

The high demand for biodegradable implants in bone fracture fixations has dramatically increased the use of polymers for biomedical applications as well. However, the replacement of stainless steel and titanium screws by biodegradable materials represents one of the most critical aspects of biomechanics. In this study, the mechanical behavior of polycaprolactone (PCL) in tension and compression is examined. Driven by the advanced technology of computational mechanics, the fixation of the posterior malleolus fracture has been designed and analyzed. The core idea depicts the static analysis of screws made of PCL fixed in the ankle joint. The focus of the study is on this bio-absorbable, polymer-based material performance under constant compression. Parametric analysis is employed for the optimization of the PCL scaffold. Future studies will focus on the experimental verification of the numerical analysis results.
机译:骨折固定中对可生物降解植入物的高需求也极大地增加了聚合物在生物医学应用中的使用。然而,用生物可降解材料代替不锈钢和钛螺钉代表了生物力学的最关键方面之一。在这项研究中,研究了聚己内酯(PCL)在拉伸和压缩状态下的力学行为。在先进的计算力学技术的驱动下,设计并分析了后踝骨折的固定方法。核心思想是对由PCL制成的固定在踝关节中的螺钉进行静态分析。研究的重点是在恒定压缩下这种可生物吸收的,基于聚合物的材料的性能。参数分析用于优化PCL支架。未来的研究将集中于数值分析结果的实验​​验证。

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