Mauersberger Valentin Wilhelm, Ziervogel Fabian, Weisheit Linda, Boxberger Lukas, Drossel Welf-Guntram
Fraunhofer Institute for Machine Tools and Forming Technology IWU, Nöthnitzer Straße 44, 01187 Dresden, Germany.
Professorship for Adaptronics and Lightweight Design, Chemnitz University of Technology, 09126 Chemnitz, Germany.
Materials (Basel). 2024 Dec 26;18(1):41. doi: 10.3390/ma18010041.
Using a newly developed tool head with an additional rotational axis and a wire feed, wires can be directly processed in the fused filament fabrication (FFF) process. Thus, electrical structures such as conductive paths, coils, heating elements, or sensors can be integrated into polymer parts. However, the accuracy of the wire deposition in curved sections of the print track is insufficient. To improve the wire position, a geometric correction model was set up, converted into G-code, and validated using test prints for different wire parameters. For this, a sample of printed arcs was evaluated regarding wire position and embedding quality using various visual methods. This also determined the optimal cooling time for the model. The process parameters extrusion coefficient and feed were then varied to identify optimal process parameters for a stable and at the same time efficient process. By varying the wire (copper, constantan) and polymer material (PLA, PETG), the model was checked for general validity. It was found that the position of the ø 0.2 mm wire can be improved with the correction model. Different sets of parameters can be found that enable good quality of embedding and wire position.
使用一种新开发的带有附加旋转轴和送丝装置的工具头,可以在熔丝制造(FFF)工艺中直接加工金属丝。因此,诸如导电路径、线圈、加热元件或传感器等电气结构可以集成到聚合物部件中。然而,在打印轨道的弯曲部分,金属丝沉积的精度不足。为了改善金属丝的位置,建立了一个几何校正模型,将其转换为G代码,并使用针对不同金属丝参数的测试打印件进行验证。为此,使用各种视觉方法对打印弧的样本进行了金属丝位置和嵌入质量的评估。这也确定了模型的最佳冷却时间。然后改变工艺参数挤出系数和进给量,以确定稳定且高效工艺的最佳工艺参数。通过改变金属丝(铜、康铜)和聚合物材料(聚乳酸、聚对苯二甲酸乙二醇酯二醇),检查模型的普遍有效性。结果发现,使用校正模型可以改善ø0.2毫米金属丝的位置。可以找到不同的参数集,以实现良好的嵌入质量和金属丝位置。