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PARAMETRIC TOPOLOGY OPTIMIZATION TOWARD RATIONAL DESIGN EFFICIENT PREFABRICATION FOR ADDITIVE MANUFACTURING

机译:面向合理设计的添加剂拓扑优化和辅助制造的有效预制

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The significant advance in the boosted fabrication speed and printing resolution of additive technology has considerably increased the capability of achieving product designs with high geometric complexity. The prefabrication computation has been increasingly important and is coming to be the bottleneck in the additive manufacturing process. In this paper, the authors devise an integrated computational framework by synthesizing the parametric level set-based topology optimization method with the DLP-based SLA process for intelligent design and additive manufacturing of not only single material structures but also multi-scale, multi-functional structures. The topology of the design is optimized with a new distance-regularized parametric level set method considering the prefabrication computation. offering the flexibility and robustness of the structural design that the conventional methods could not provide. The output of the framework is a set of mask images which can be directly used in the additive manufacturing process. The proposed approach seamlessly integrates the rational design and manufacturing to reduce the complexity of the computationally-expensive prefabrication process. Two test examples, including a freeform 3D cantilever beam and a multi-scale meta-structure, are utilized to demonstrate the performance of the proposed approach. Both the simulation and experimental results verified that the new rational design could significantly reduce the prefabrication computation cost without affecting the original design intent or sacrificing original functionality.
机译:增材制造技术的提高的制造速度和印刷分辨率的显着进步大大提高了实现具有高几何复杂度的产品设计的能力。预制计算已变得越来越重要,并将成为增材制造过程中的瓶颈。在本文中,作者通过将基于参数级集的拓扑优化方法与基于DLP的SLA工艺进行合成,从而设计了一个集成的计算框架,从而不仅可以智能设计和增材制造单个材料结构,而且可以实现多尺度,多功能结构。考虑到预制计算,使用新的距离规则化参数水平集方法优化了设计的拓扑。提供了传统方法无法提供的结构设计的灵活性和鲁棒性。框架的输出是一组掩模图像,可以直接在增材制造过程中使用。所提出的方法无缝地将合理的设计和制造集成在一起,以减少计算昂贵的预制过程的复杂性。利用两个测试示例,包括一个自由形式的3D悬臂梁和一个多尺度的元结构,来演示所提出方法的性能。仿真和实验结果均表明,新的合理设计可以在不影响原始设计意图或不牺牲原始功能的情况下,大大降低预制件的计算成本。

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