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Design-Optimization and Material Selection for a Proximal Radius Fracture-Fixation Implant

机译:半径固定骨折植入物的设计优化和材料选择

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摘要

The problem of optimal size, shape, and placement of a proximal radius-fracture fixation-plate is addressed computationally using a combined finite-element/design-optimization procedure. To expand the set of physiological loading conditions experienced by the implant during normal everyday activities of the patient, beyond those typically covered by the pre-clinical implant-evaluation testing procedures, the case of a wheel-chair push exertion is considered. Toward that end, a musculoskeletal multi-body inverse-dynamics analysis is carried out of a human propelling a wheelchair. The results obtained are used as input to a finite-element structural analysis for evaluation of the maximum stress and fatigue life of the parametrically defined implant design. While optimizing the design of the radius-fracture fixation-plate, realistic functional requirements pertaining to the attainment of the required level of the devise safety factor and longevity/lifecycle were considered. It is argued that the type of analyses employed in the present work should be: (a) used to complement the standard experimental pre-clinical implant-evaluation tests (the tests which normally include a limited number of daily-living physiological loading conditions and which rely on single pass/fail outcomes/decisions with respect to a set of lower-bound implant-performance criteria) and (b) integrated early in the implant design and material/manufacturing-route selection process.
机译:使用组合的有限元/设计优化程序以计算方式解决了近端radius骨骨折固定板的最佳尺寸,形状和位置问题。为了扩大植入物在患者的正常日常活动中所经历的生理负荷条件的集合,以超出临床前植入物评估测试程序通常涵盖的生理负荷条件,考虑了轮椅推动作用的情况。为此,对推动轮椅的人进行了肌肉骨骼多体逆动力学分析。获得的结果用作有限元结构分析的输入,以评估参数定义的植入物设计的最大应力和疲劳寿命。在优化radius骨骨折固定板的设计时,考虑了与达到设计安全系数和寿命/使用寿命的要求水平相关的实际功能要求。有人认为,本工作中采用的分析类型应为:(a)用于补充标准的实验性临床前植入物评估测试(该测试通常包括数量有限的日常生活生理负荷条件,并且取决于关于一组下限植入物性能标准的单次通过/失败结果/决定)和(b)在植入物设计和材料/制造路线选择过程中尽早整合。

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