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Fundamental consolidation mechanisms during selective beam melting of powders

机译:粉末选择性束流熔化过程中的基本固结机理

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During powder based additive manufacturing processes, a component is realized layer upon layer by the selective melting of powder layers with a laser or an electron beam. The density of the consolidated material, the minimal spatial resolution as well as the surface roughness of the resulting components are complex functions of the material and process parameters. So far, the interplay between these parameters is only partially understood. In this paper, the successive assembling in layers is investigated with a recently described 2D-lattice Boltzmann model, which considers individual powder particles. This numerical approach makes several physical phenomena accessible, which cannot be described in a standard continuum picture, e.g. the interplay between capillary effects, wetting conditions and the local stochastic powder configuration. In addition, the model takes into account the influence of the surface topology of the previous consolidated layer on the subsequent powder layer. The influence of the beam power, beam velocity and layer thickness on the formation and quality of simple walls is investigated. The simulation results are compared with experimental findings during selective electron beam melting. The comparison shows that our model, although 2D, is able to predict the main characteristics of the experimental observations. In addition, the numerical simulation elucidates the fundamental mechanisms responsible for the phenomena that are observed during selective beam melting.
机译:在基于粉末的增材制造过程中,通过用激光或电子束选择性熔化粉末层来逐层实现组件。固结材料的密度,最小的空间分辨率以及所得组件的表面粗糙度是材料和工艺参数的复杂函数。到目前为止,这些参数之间的相互作用仅被部分理解。在本文中,使用最近描述的2D晶格Boltzmann模型研究了逐层组装,该模型考虑了单个粉末颗粒。这种数值方法使得可以访问几种物理现象,这些现象在标准的连续图片中无法描述,例如毛细管效应,润湿条件和局部随机粉末结构之间的相互作用。此外,该模型考虑了先前固结层的表面拓扑对随后粉末层的影响。研究了束功率,束速度和层厚对简单壁的形成和质量的影响。将模拟结果与选择性电子束熔化过程中的实验结果进行了比较。比较表明,我们的模型虽然是二维的,但能够预测实验观察的主要特征。此外,数值模拟阐明了造成选择性束熔化期间观察到的现象的基本机理。

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