3d printing of objects with continuous spatial paths by a multi-axis robotic fff platform

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Abstract

Conventional Fused Filament Fabrication (FFF) equipment can only deposit materials in a single direction, limiting the strength of printed products. Robotic 3D printing provides more de-grees of freedom (DOF) to control the material deposition and has become a trend in additive man-ufacturing. However, there is little discussion on the strength effect of multi-DOF printing. This paper presents an efficient process framework for multi-axis 3D printing based on the robot to improve the strength. A multi-DOF continuous toolpath planning method is designed to promote the printed part’s strength and surface quality. We generate curve layers along the model surfaces and fill Fermat spiral in the layers. The method makes it possible to take full advantage of the multi-axis robot arm to achieve smooth printing on surfaces with high curvature and avoid the staircase effect and collision in the process. To further improve print quality, a control strategy is provided to syn-chronize the material extrusion and robot arm movement. Experiments show that the tensile strength increases by 22–167% compared with the conventional flat slicing method for curved-sur-face parts. The surface quality is improved by eliminating the staircase effect. The continuous tool-path planning also supports continuous fiber-reinforced printing without a cutting device. Finally, we compared with other multi-DOF printing, the application scenarios, and limitations are given.

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Yao, Y., Zhang, Y., Aburaia, M., & Lackner, M. (2021). 3d printing of objects with continuous spatial paths by a multi-axis robotic fff platform. Applied Sciences (Switzerland), 11(11). https://doi.org/10.3390/app11114825

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