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Adaptive Meshing Technique Applied to an Orthopaedic Finite Element Contact Problem

机译:自适应网格划分技术应用于整形外科有限元接触问题

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摘要

Finite element methods have been applied extensively and with much success in the analysis of orthopaedic implants.,,,, Recently a growing interest has developed, in the orthopaedic biomechanics community, in how numerical models can be constructed for the optimal solution of problems in contact mechanics. New developments in this area are of paramount importance in the design of improved implants for orthopaedic surgery. Finite element and other computational techniques are widely applied in the analysis and design of hip and knee implants, with additional joints (ankle, shoulder, wrist) attracting increased attention.The objective of this investigation was to develop a simplified adaptive meshing scheme to facilitate the finite element analysis of a dual-curvature total wrist implant. Using currently available software, the analyst has great flexibility in mesh generation, but must prescribe element sizes and refinement schemes throughout the domain of interest. Unfortunately, it is often difficult to predict in advance a mesh spacing that will give acceptable results. Adaptive finite-element mesh capabilities, operate to continuously refine the mesh to improve accuracy where it is required, with minimal intervention by the analyst. Such mesh adaptation generally means that in certain areas of the analysis domain, the size of the elements is decreased (or increased) and/or the order of the elements may be increased (or decreased). In concept, mesh adaptation is very appealing. Although there have been several previous applications of adaptive meshing for in-house FE codes, we have coupled an adaptive mesh formulation with the pre-existing commercial programs PATRAN (MacNeal-Schwendler Corp., USA) and ABAQUS (Hibbit Karlson and Sorensen, Pawtucket, RI). In doing so, we have retained several attributes of the commercial software, which are very attractive for orthopaedic implant applications.
机译:有限元方法已广泛应用于骨科植入物的分析。 最近,骨科生物力学界对如何可以为接触力学问题的最佳解决方案构建数值模型。在改进骨科手术植入物的设计中,这一领域的新发展至关重要。有限元和其他计算技术已广泛应用于髋部和膝部植入物的分析和设计中,额外的关节(踝部,肩部,腕部)引起了越来越多的关注。本研究的目的是开发一种简化的自适应网格划分方案,以促进双曲率全腕植入物的有限元分析。使用当前可用的软件,分析人员在网格生成方面具有很大的灵活性,但必须在整个感兴趣的领域中规定元素大小和优化方案。不幸的是,通常很难预先预测将给出可接受结果的网格间距。自适应有限元网格功能 用于在需要分析人员的情况下,在需要时不断优化网格,以提高精度。这种网格自适应通常意味着在分析域的某些区域中,元素的大小减小(或增加)和/或元素的顺序可以增加(或减小)。从概念上讲,网格自适应非常吸引人。尽管自适应网格划分在内部有限元代码中已有若干应用,但我们已经将自适应网格划分与预先存在的商业程序PATRAN(美国MacNeal-Schwendler Corp.)和ABAQUS(Hibbit Karlson和Sorensen,Pawtucket)结合在一起,RI)。在此过程中,我们保留了商业软件的几个属性,这些属性对于骨科植入物应用非常有吸引力。

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