通过对厚粉层单轨成形的可靠性表征,提高选择性激光熔化悬垂结构的精度

SPIE LASE Pub Date : 2016-04-06 DOI:10.1117/12.2212621
S. Mohanty, J. Hattel
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引用次数: 7

摘要

选择性激光熔化生产的零件的可重复性和再现性是一个长期存在的问题,加上缺乏标准化的质量控制,是选择性激光熔化作为工业规模工艺成熟的主要障碍。因此,数值过程模拟已被用于提高选择性激光熔化过程输出的可预测性。然而,建立工艺的可靠性仍然是一个挑战,特别是在具有悬垂结构的部件中。本文采用了一种系统的方法来确定选择性激光熔化悬垂结构生产的可靠性。采用一种校准的、快速的、多尺度热模型来模拟厚粉床上的单轨形成。在厚粉床上使用相同的加工参数,但在粉床的不同位置和不同的激光扫描方向上制造单轨。熔迹宽度和深度的差异反映了入射光束功率分布因位置和加工方向而变化的影响。实验结果与数值模型相结合,并进行了不确定性和可靠性分析。得到的熔体轨迹宽度和深度的累积概率分布函数与实验观测值一致。通过确定平均层厚度、样品密度和热均匀性的累积概率分布函数,该技术随后扩展到在无支撑结构的厚粉末床上生产的单层的可靠性表征。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Improving accuracy of overhanging structures for selective laser melting through reliability characterization of single track formation on thick powder beds
Repeatability and reproducibility of parts produced by selective laser melting is a standing issue, and coupled with a lack of standardized quality control presents a major hindrance towards maturing of selective laser melting as an industrial scale process. Consequently, numerical process modelling has been adopted towards improving the predictability of the outputs from the selective laser melting process. Establishing the reliability of the process, however, is still a challenge, especially in components having overhanging structures. In this paper, a systematic approach towards establishing reliability of overhanging structure production by selective laser melting has been adopted. A calibrated, fast, multiscale thermal model is used to simulate the single track formation on a thick powder bed. Single tracks are manufactured on a thick powder bed using same processing parameters, but at different locations in a powder bed and in different laser scanning directions. The difference in melt track widths and depths captures the effect of changes in incident beam power distribution due to location and processing direction. The experimental results are used in combination with numerical model, and subjected to uncertainty and reliability analysis. Cumulative probability distribution functions obtained for melt track widths and depths are found to be coherent with observed experimental values. The technique is subsequently extended for reliability characterization of single layers produced on a thick powder bed without support structures, by determining cumulative probability distribution functions for average layer thickness, sample density and thermal homogeneity.
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