个性化动脉瘤植入物生成设计的结构拓扑优化:设计、增材制造和实验验证

Long Jiang, Shikui Chen, C. Sadasivan, X. Jiao
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引用次数: 15

摘要

在本文中,进行了三维结构拓扑优化,以创建一个创新设计的动脉瘤植入物。利用拓扑优化方案优化植入体结构的几何形状,以满足流体和结构设计目标。在拓扑优化过程中,采用人工密度作为指标,将材料区与空洞区分开。植入物结构设计的目标是创造一个“流体二极管”效应,同时具有足够的刚度来承受外部压力。通过增材制造打印最终设计以验证性能。数值验证和实验验证都证明了所提出的植入体结构在当前问题设置下的有效性。这项工作显示了拓扑优化作为一种强大工具的潜力,可以用于生产创新的高性能动脉瘤植入物设计,这将为个性化医疗植入物铺平道路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Structural topology optimization for generative design of personalized aneurysm implants: Design, additive manufacturing, and experimental validation
In this paper, the 3D structural topology optimization is performed to create an innovative design of the aneurysm implant. The topology optimization scheme is utilized to optimize the geometry of the implant structure to satisfy both the fluidic and the structural design objectives. During the topology optimization process, an artificial density is used as the index to separate the material region from the void region. The goal of the implant structure design is expected to create a “fluid diode” effect while to possess enough stiffness to withstand the outside pressure. The final design is printed by additive manufacturing to validate the performance. Both numerical verification and experimental validation proved the effectiveness of the proposed implant structure under the current problem settings. This work showed the potential of topology optimization as a powerful tool in producing innovative high-performance implant designs for aneurysm treatments, which will pave the way for personalized medical implants.
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