Inline Topology Measurement of Material Jetted Metal Parts

C. Rehekampff, Benedikt Kirchebner, F. Krebs, F. Irlinger, Tim C. Lueth
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Abstract

In Material Jetting, build material is deposited as single droplets onto a platform. This offers potential advantages such as faster processing and cheaper raw material compared to powder based processes. For metals, this technology is subject of several research projects. Due to variations in droplet size, the process inevitably results in deviations between the desired and the actual height of a printed layer. Such deviations can add up over several layers and thus lead to an unacceptably high overall geometrical deviation of the component. One possible solution to this problem is the compensation of local height deviations by adjusting the build strategy (droplet size, droplet spacing) in the next layer. For this, it is necessary to measure the geometric deviations of the local layer heights. However, the temperatures of up to 300 °C inside the build chamber pose a challenge for the integration of a measuring system. In this work, a process monitoring system was integrated into a previously developed printer for Material Jetting of aluminum. The system consists of an optical confocal sensor that enables contactless distance measurement. To avoid overheating of the sensor, it is located outside the build chamber. An infrared filter glass allows measurement from the outside, while heat radiation from the build platform is absorbed by the glass. The sensor is water cooled to ensure a safe operating temperature. A calibration object and printed aluminum components were measured to validate the system. The measurement results show the potential of the system for inline process monitoring for Material Jetting. Based on this, the development of a closed-loop layer height control is now possible.
材料喷射金属零件的在线拓扑测量
在材料喷射中,建筑材料以单个液滴的形式沉积到平台上。与基于粉末的工艺相比,这提供了潜在的优势,例如更快的加工和更便宜的原材料。对于金属,这项技术是几个研究项目的主题。由于液滴尺寸的变化,该过程不可避免地导致期望和实际印刷层高度之间的偏差。这样的偏差可以在几层上加起来,从而导致组件的总体几何偏差高得令人无法接受。这个问题的一个可能解决方案是通过调整下一层的构建策略(液滴大小,液滴间距)来补偿局部高度偏差。为此,有必要测量局部层高的几何偏差。然而,构建腔内高达300°C的温度对测量系统的集成构成了挑战。在这项工作中,将过程监控系统集成到先前开发的用于铝材料喷射的打印机中。该系统由一个光学共聚焦传感器组成,可实现非接触式距离测量。为了避免传感器过热,它位于构建室的外部。红外滤光玻璃允许从外部进行测量,而来自建筑平台的热辐射被玻璃吸收。传感器采用水冷却,确保工作温度安全。对标定对象和打印铝件进行了测量,验证了系统的有效性。测量结果显示了该系统在材料喷射过程在线监控方面的潜力。在此基础上,开发一种闭环层高度控制现在是可能的。
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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