A Novel Infill Strategy to Approach Non-Planar 3D-printing in 6-Axis Robotized FDM

Federico Insero, V. Furlan, H. Giberti
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Abstract

Additive Manufacturing (AM) is a class of processes with a remarkable growth and evolution during the last years. Those allow to fabricate components deposing a great variety of raw materials with a layer by layer approach. Conventional material deposition strategy is identified by the slicing process layering the 3D component with planes. Although convention slicing enables common Cartesian 3D-printers, is constraining the fabrication of near-net shape components featuring overhangs and particularly to free-form geometries without the use of dedicated supports. Conventional slicing is also limiting industrial 6-axis robots which are more flexible, providing larger working area and introducing more degrees of freedom than Cartesian 3D-printers. Non-planar slicing unlocks such features changing deposition direction according to multi-directional surface. On the other hand, non-planar slicing generalization is a challenging problem due to its own intrinsic complexity. Hence, the goal to achieve a flexible non-planar slicer software is still not reached. This work considers a quarter of torus as representative of a free-form part which only the external surface is known analytically. The aim of this work is to provide a new method to define a non-planar infill to fabricate filled-solid parts starting from the data on the contour. It is a first and preparatory step of problem generalization. An experimental activity is pursued showing the non-planar infill strategy introduced. The printed results are discussed and evaluated, underlining the capabilities of the proposed solution.
六轴机器人FDM非平面3d打印的一种新型填充策略
增材制造(AM)是近年来具有显着增长和演变的一类工艺。这些允许制造组件沉积各种各样的原材料与一层一层的方法。传统的材料沉积策略是通过对三维构件进行平面分层的切片工艺来确定的。虽然传统的切片技术可以实现普通的直角3d打印机,但它限制了具有悬垂的近净形状部件的制造,特别是没有使用专用支撑的自由几何形状。传统的切片也限制了工业六轴机器人的发展,后者比笛卡尔3d打印机更灵活,提供更大的工作区域,并引入更多的自由度。非平面切片可以根据多向表面改变沉积方向来解锁这类特征。另一方面,非平面切片泛化由于其固有的复杂性而成为一个具有挑战性的问题。因此,实现柔性非平面切片机软件的目标仍未达到。本工作考虑圆环的四分之一作为自由形式部分的代表,其中只有外表面是已知的。本工作的目的是提供一种新的方法来定义一个非平面填充,以制造填充实体零件从轮廓上的数据。这是问题泛化的第一步和准备步骤。通过实验验证了所引入的非平面填充策略。讨论和评估打印结果,强调所提出的解决方案的能力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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