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Parametric Design Optimisation of Proximal Humerus Plates Based on Finite Element Method

机译:基于有限元方法的肱骨近端板参数化设计优化

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摘要

Optimal treatment of proximal humerus fractures remains controversial. Locking plates offer theoretical advantages but are associated with complications in the clinic. This study aimed to perform parametric design optimisation of proximal humerus plates to enhance their mechanical performance. A finite element (FE) model was developed that simulated a two-part proximal humerus fracture that had been treated with a Spatial Subchondral Support (S3) plate and subjected to varus bending. The FE model was validated against in vitro biomechanical test results. The predicted load required to apply 5 mm cantilever varus bending was only 0.728% lower. The FE model was then used to conduct a parametric optimisation study to determine the orientations of inferomedial plate screws that would yield minimum fracture gap change (i.e. optimal stability). The feasible design space was automatically identified by imposing clinically relevant constraints, and the creation process of each FE model for the design optimisation was automated. Consequently, 538 FE models were generated, from which the obtained optimal model had 4.686% lower fracture gap change (0.156 mm) than that of the manufacturer’s standard plate. Whereas its screws were oriented towards the inferomedial region and within the range of neck-shaft angle of a healthy subject. The methodology presented in this study promises future applications in patient-specific design optimisation of implants for other regions of the human body.
机译:肱骨近端骨折的最佳治疗方法仍存在争议。锁定板具有理论上的优势,但与临床并发症有关。这项研究旨在对肱骨近端板进行参数设计优化,以增强其机械性能。开发了一个有限元(FE)模型,该模型模拟了两部分的肱骨近端骨折,该骨折已用空间软骨下支撑(S3)板治疗并经历内翻弯曲。针对体外生物力学测试结果验证了有限元模型。进行5mm悬臂内翻弯曲所需的预测载荷仅降低0.728%。然后使用有限元模型进行参数优化研究,以确定将产生最小骨折间隙变化(即最佳稳定性)的下颌板螺钉的方向。通过施加临床相关的约束条件来自动确定可行的设计空间,并且用于设计优化的每个有限元模型的创建过程都是自动化的。因此,生成了538个FE模型,从中获得的最佳模型的断裂间隙变化(0.156mm)比制造商的标准板低4.686%。而其螺钉朝向下颌骨区域并处于健康受试者的颈轴角度范围内。这项研究中提出的方法学有望在将来针对人体其他区域的植入物的患者特定设计优化中应用。

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