In-process imaging of morphology and temperature for laser welding and selective laser melting (Conference Presentation)

Tristan G. Fleming, Troy R. Allen, Stephen G. L. Nestor, F. Altal, J. Fraser
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Abstract

Directly measuring morphology and temperature changes during laser processing (such as in keyhole welding and selective laser melting) can help us to understand, optimize, and control on-the-fly the manufacturing process. Even with such great potential, the technical requirements for such an in situ metrology are high due to the fast nature of the highly localized dynamics, all the while in the presence of bright backscatter and blackbody radiation, and possible obstructions such as molten ejecta and plumes. We have demonstrated that by exploiting coherent imaging through a single-mode fiber inline with the processing lens, we can image morphology at line rates up to 312 kHz, with sufficient robustness to achieve closed loop control of the manufacturing process. Applied to metal additive manufacturing, inline coherent imaging can directly measure powder layer thickness and uniformity, and formed track roughness including the onset of balling. Inline coherent imaging measures morphology dynamics but that is only part of the story. Temperature is also key to final part quality. Standard thermal imaging exploits blackbody radiation but are plagued by the highly variable emissivity of the region of interest, making quantitative measurement challenging. We were able to exploit the same apparatus used for coherent imaging to collect surface temperature profiles. Since we spectrally resolve a wide signature, we have overcome the emissivity problem to measure absolute temperature on the micron scale during laser processing.
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激光焊接和选择性激光熔化过程中形貌和温度成像(会议报告)
直接测量激光加工(如锁孔焊接和选择性激光熔化)过程中的形貌和温度变化可以帮助我们了解、优化和控制制造过程。即使具有如此巨大的潜力,由于高度局域化动力学的快速性质,一直存在明亮的后向散射和黑体辐射,以及可能的障碍物,如熔融喷射物和羽流,这种原位计量的技术要求也很高。我们已经证明,通过单模光纤与处理透镜连接,利用相干成像,我们可以以高达312 kHz的线率对形态学进行成像,具有足够的鲁棒性,可以实现制造过程的闭环控制。应用于金属增材制造,在线相干成像可以直接测量粉末层厚度和均匀性,以及形成的轨道粗糙度,包括球化的开始。内联相干成像测量形态动力学,但这只是故事的一部分。温度也是最终零件质量的关键。标准热成像利用黑体辐射,但受到感兴趣区域高度可变的发射率的困扰,使定量测量具有挑战性。我们能够利用用于相干成像的相同设备来收集表面温度曲线。由于我们在光谱上解决了宽的特征,我们克服了发射率问题,在激光加工过程中测量微米尺度的绝对温度。
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