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Finite element-based probabilistic analysis tool for orthopaedic applications.

机译:用于骨科应用的基于有限元的概率分析工具。

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摘要

Orthopaedic implants, as well as other physical systems, contain inherent variability in geometry, material properties, component alignment, and loading conditions. While complex, deterministic finite element (FE) models do not account for the potential impact of variability on performance, probabilistic studies have typically predicted behavior from simplified FE models to achieve practical solution times. The objective of this research was to develop an efficient and versatile probabilistic FE tool to quantify the effect of uncertainty in the design variables on the performance of orthopaedic components under relevant conditions. Key aspects of the computational tool developed include parametric and automated FE model creation for changes in dimensional variables, efficient solution using the advanced mean-value (AMV) reliability method, and identification of the most significant design variables. Two orthopaedic applications are presented to demonstrate the ability of the computational tool to efficiently and accurately represent component performance.
机译:整形外科植入物以及其他物理系统在几何形状,材料特性,组件对齐和加载条件方面具有固有的可变性。虽然复杂的确定性有限元(FE)模型无法说明可变性对性能的潜在影响,但概率研究通常从简化的FE模型中预测行为以实现实际的求解时间。这项研究的目的是开发一种高效且通用的概率有限元工具,以量化设计变量中不确定性对相关条件下骨科部件性能的影响。开发的计算工具的关键方面包括参数和自动有限元模型创建(用于尺寸变量的更改),使用高级均值(AMV)可靠性方法的有效解决方案以及最重要的设计变量的标识。提出了两个矫形应用程序,以演示计算工具有效而准确地表示部件性能的能力。

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