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Inverse design techniques for improving composite prosthetic devices

机译:用于改进复合修复装置的逆向设计技术

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The design and performance of composite prosthetic devices can be improved by tailoring the material properties to achieve a prescribed response. An example of such a response would be displacements and stresses exhibited by healthy, undisturbed femoral bone. In this paper, an inverse design methodology, used in the Volumetrically Controlled Manufacturing (VCM) process, is developed and tested for improving the design of orthopedic prosthetic devices. First, a three-dimensional finite element (FE) model is developed based on available Computed Tomography (CT) data. The FE model is used to evaluate the response of the model subjected to a typical load. Second, as a part of the VCM process, the inverse design process is used to formulate a design problem that is in the form of a constrained least-squares problem. The intent is to find the material properties of the FE model to obtain a known displacement field on the stem-cancellous interface. Third, a solution methodology is developed to solve this constrained least squares problem using the finite element analysis for function evaluations and a gradient-based nonlinear programming (NLP) method to solve the design problem. Two test problems are solved to illustrate the developed methodology. The results indicate that material properties can be tailored to meet specific response requirements.
机译:复合假体装置的设计和性能可以通过调整材料性能以达到规定的响应来改善。这种反应的一个例子是健康,不受干扰的股骨表现出的位移和应力。在本文中,开发并测试了用于体积控制制造(VCM)过程的逆设计方法,以改进骨科修复设备的设计。首先,基于可用的计算机断层扫描(CT)数据开发三维有限元(FE)模型。 FE模型用于评估模型在典型载荷下的响应。其次,作为VCM过程的一部分,逆设计过程用于制定设计问题,该问题的形式为约束最小二乘问题。目的是找到有限元模型的材料特性,以在干-松质界面上获得已知的位移场。第三,开发了一种求解方法来解决此约束最小二乘问题,方法是使用有限元分析进行功能评估,并使用基于梯度的非线性规划(NLP)方法来解决设计问题。解决了两个测试问题,以说明开发的方法。结果表明可以调整材料性能以满足特定的响应要求。

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