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Development of femoral component design geometry by using DMROVAS (design method requiring optimum volume and safety)

机译:使用DMROVA开发股骨成分设计几何形状(需要最佳音量和安全性的设计方法)

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PurposeThis study aims to design a femoral component with minimum volume and maximum safety coefficient. Total knee prosthesis is a well-established therapy in arthroplasty applications. And in particular, with respect to damaged or weakened cartilage, new prostheses are being manufactured from bio-materials which are compatible with the human body to replace these damages. A new universal method (design method requiring optimum volume and safety [DMROVAS]) was propounded to find the optimum design parameters of tibial component.Design/methodology/approachThe design montage was analyzed via the finite element method (FEM). To ensure the stability of the prosthesis, the maximum stress angle and magnitude of the force on the knee were taken into consideration. In the analysis process, results revealed two different maximum stress areas which were supported by case reports in the literature. Variations of maximum stress, safety factor and weight were revealed by FEM analysis, and ANOVA was used to determine the F force percentage for each of the design parameters.FindingsOptimal design parameter levels were chosen for the individual's minimum weight. Stress maps were constructed to optimize design choices that enabled further enhancement of the design models. The safety factor variation (SFV) of 5.73 was obtained for the volume of 39,219 mL for a region which had maximum stress. At the same time, for a maximum SFV and at the same time an average weight, values of 37,308 mL and 5.8 for volume and SFV were attained, respectively, using statistical methods.Originality/valueThis proposed optimal design development method is new and one that can be used for many biomechanical products and universal industrial designs.
机译:Purposethis研究旨在设计具有最小容量和最大安全系数的股骨部件。全膝关节假体是关节造身术应用的良好疗法。特别是关于软骨受损或弱化,新的假体正在由与人体兼容的生物材料制成,以取代这些损坏。提出了一种新的通用方法(需要最佳音量和安全性和安全[DMROVAS]的设计方法)以找到胫骨分量的最佳设计参数。通过有限元方法(FEM)分析设计蒙太奇的最佳设计参数。为了确保假体的稳定性,考虑了膝关节上的力的最大应力角和力。在分析过程中,结果揭示了两种不同的最大应力区域,这些最大应力区域是在文献中的报告所支持的。通过有限元分析显示最大应力,安全因子和重量的变化,使用ANOVA来确定每个设计参数的F力百分比。选择优化的设计参数水平,为个人的最小重量选择。构建应力地图以优化设计选择,使能够进一步增强设计模型。对于具有最大应力的区域的体积,获得5.73的安全系数变化(SFV)的体积为39,219ml。同时,对于最大SFV和同时平均重量,分别使用统计方法进行37,308ml和5.8的体积和5.8的值。符合统计学方法,提出的最佳设计开发方法是新的和一个可用于许多生物力学产品和通用工业设计。

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