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三维打印层结合的实时成像。

Real-Time Imaging of Bonding in 3D-Printed Layers.

机构信息

Physical Chemistry and Soft Matter, Wageningen University & Research;

Physical Chemistry and Soft Matter, Wageningen University & Research.

出版信息

J Vis Exp. 2023 Sep 1(199). doi: 10.3791/65415.

Abstract

In recent times, 3D printing technology has revolutionized our ability to design and produce products, but optimizing the print quality can be challenging. The process of extrusion 3D printing involves pressuring molten material through a thin nozzle and depositing it onto previously extruded material. This method relies on bonding between the consecutive layers to create a strong and visually appealing final product. This is no easy task, as many parameters, such as the nozzle temperature, layer thickness, and printing speed, must be fine-tuned to achieve optimal results. In this study, a method for visualizing the polymer dynamics during extrusion is presented, giving insight into the layer bonding process. Using laser speckle imaging, the plastic flow and fusion can be resolved non-invasively, internally, and with high spatiotemporal resolution. This measurement, which is easy to perform, provides an in-depth understanding of the underlying mechanics influencing the final print quality. This methodology was tested with a range of cooling fan speeds, and the results showed increased polymer motion with lower fan speeds and, thus, explained the poor printing quality when the cooling fan was turned off. These findings show that this methodology allows for optimizing the printing settings and understanding the material behavior. This information can be used for the development and testing of novel printing materials or advanced slicing procedures. With this approach, a deeper understanding of extrusion can be built to take 3D printing to the next level.

摘要

近年来,3D 打印技术极大地改变了我们设计和生产产品的能力,但优化打印质量可能具有挑战性。挤出 3D 打印的过程涉及通过细喷嘴挤压熔融材料,并将其沉积在先前挤出的材料上。这种方法依赖于连续层之间的结合,以创建一个坚固且具有视觉吸引力的最终产品。这并非易事,因为必须调整许多参数,例如喷嘴温度、层厚和打印速度,以达到最佳效果。在这项研究中,提出了一种在挤出过程中可视化聚合物动力学的方法,深入了解层结合过程。使用激光散斑成像,可以非侵入性、内部地以高时空分辨率解析塑料的流动和融合。这种易于执行的测量方法提供了对影响最终打印质量的基础力学的深入了解。该方法使用了一系列不同的冷却风扇速度进行了测试,结果表明随着冷却风扇速度的降低,聚合物的运动增加,从而解释了当冷却风扇关闭时打印质量较差的原因。这些发现表明,该方法允许优化打印设置和理解材料行为。这些信息可用于开发和测试新型打印材料或先进的切片程序。通过这种方法,可以更深入地了解挤出过程,将 3D 打印提升到一个新的水平。

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