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Development and calibration of a CFD-based model of the bed fusion SLM additive manufacturing process aimed at optimising laser parameters

机译:基于CFD的床融合SLM添加剂制造工艺模型的开发和校准旨在优化激光参数

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The main concern deriving from the Selective Laser Melting technique is attaining a fully dense part out of the interconnected tracks. The right choice of process parameters is of fundamental importance to get a porosity free component. In this work a model has been developed simulating the printing process with the aim of creating a simple numerical tool for designing processing windows suitable to metal alloys of any composition. The applied simplified approach makes the model use as much practical as possible, while keeping the physical description representative. The model has been calibrated fitting experimental measures of track width, depth and cross sectional area taken from three literature sources, referring to: Ti6A14V, Inconel 625 and A17050. Effective liquid pool thermal conductivity, laser absorptivity and depth of application of laser energy are the fitting parameters. Laser absorptivity and depth of application of laser energy result to rise almost linearly with increasing specific energy; the slopes of the three analyzed alloys result very close to each other. The obtained results give confidence about the possibility of using the model as a predicting tool after further calibration on a wider range of metal alloys.
机译:从选择性激光熔化技术得出的主要问题是从互连的轨道中的完全密集的部件。进程参数的正确选择是孔隙率自由组件的根本重要性。在这项工作中,已经开发了一种模型,用于模拟印刷过程,目的是创建一个简单的数字工具,用于设计适合于任何组合物的金属合金的处理窗口。所应用的简化方法使模型尽可能多地使用,同时保持物理描述代表。该模型已经校准了从三种文献源的轨道宽度,深度和横截面积的拟合实验测量,参考:Ti6a14V,Inconel 625和A17050。有效的液体池热导率,激光吸收性和激光能量的深度是配合参数。激光吸收率和激光能量的深度随着越来越多的能量而越来越地升高;三个分析的合金的斜率导致彼此非常接近。获得的结果对在更广泛的金属合金的进一步校准之后使用模型作为预测工具的可能性的信心。

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