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一种将先进的医疗治疗设备和骨折固定组件相结合的新型治疗方法的计算分析,用于治疗骨质疏松性骨折:生理负荷、界面条件和骨折固定材料的影响。

A computational analysis of a novel therapeutic approach combining an advanced medicinal therapeutic device and a fracture fixation assembly for the treatment of osteoporotic fractures: Effects of physiological loading, interface conditions, and fracture fixation materials.

机构信息

School of Mechanical and Manufacturing Engineering, Dublin City University, Ireland.

School of Mechanical and Manufacturing Engineering, Dublin City University, Ireland; Centre for Medical Engineering Research, Dublin City University, Ireland.

出版信息

Med Eng Phys. 2023 Apr;114:103967. doi: 10.1016/j.medengphy.2023.103967. Epub 2023 Mar 12.

Abstract

The occurrence of periprosthetic femoral fractures (PFF) has increased in people with osteoporosis due to decreased bone density, poor bone quality, and stress shielding from prosthetic implants. PFF treatment in the elderly is a genuine concern for orthopaedic surgeons as no effective solution currently exists. Therefore, the goal of this study was to determine whether the design of a novel advanced medicinal therapeutic device (AMTD) manufactured from a polymeric blend in combination with a fracture fixation plate in the femur is capable of withstanding physiological loads without failure during the bone regenerative process. This was achieved by developing a finite element (FE) model of the AMTD together with a fracture fixation assembly, and a femur with an implanted femoral stem. The response of both normal and osteoporotic bone was investigated by implementing their respective material properties in the model. Physiological loading simulating the peak load during standing, walking, and stair climbing was investigated. The results showed that the fixation assembly was the prime load bearing component for this configuration of devices. Within the fixation assembly, the bone screws were found to have the highest stresses in the fixation assembly for all the loading conditions. Whereas the stresses within the AMTD were significantly below the maximum yield strength of the device's polymeric blend material. Furthermore, this study also investigated the performance of different fixation assembly materials and found Ti-6Al-4V to be the optimal material choice from those included in this study.

摘要

由于骨质疏松导致骨密度降低、骨质量差以及假体植入物的应力屏蔽,患有骨质疏松症的人群中,假体周围股骨骨折(PFF)的发生率有所增加。对于骨科医生来说,老年人的 PFF 治疗是一个真正的关注点,因为目前尚无有效的解决方案。因此,本研究的目的是确定由聚合物共混物制造的新型先进药物治疗设备(AMTD)与股骨骨折固定板相结合的设计是否能够在骨再生过程中承受生理负荷而不失效。这是通过开发 AMTD 的有限元(FE)模型以及带有植入股骨柄的股骨来实现的。通过在模型中实施各自的材料特性来研究正常和骨质疏松骨的反应。研究了模拟站立、行走和爬楼梯时峰值负荷的生理负荷。结果表明,对于这种设备配置,固定组件是主要的承载部件。在固定组件中,在所有加载条件下,骨螺钉在固定组件中具有最高的应力。而 AMTD 中的应力明显低于设备聚合物共混物材料的最大屈服强度。此外,本研究还研究了不同固定组件材料的性能,发现 Ti-6Al-4V 是本研究中包含的材料中最佳的选择。

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