论文标题

通过传输X射线成像和离散元素模拟对薄金属粉末层的定量分析:基于滚子的扩散方法

Quantitative analysis of thin metal powder layers via transmission X-ray imaging and discrete element simulation: Roller-based spreading approaches

论文作者

Penny, Ryan W., Oropeza, Daniel, Weissbach, Reimar, Praegla, Patrick M., Meier, Christoph, Wall, Wolfgang A., Hart, A. John

论文摘要

各种工具可用于在粉末床添加剂制造方法中传播金属,陶瓷和聚合物原料。当粉末散布有限的流动性时,通常会使用滚筒,因为在包含细粒径或高表面能材料的粉末中产生。在这里,我们使用专用粉末扩散测试床的独特组合研究了基于辊式的粉末粉末,并采用了X射线映射粉末层深度的X射线映射。我们专注于名义上100微米厚的辊式TI-6AL-4V和AL-10SI-MG粉末的密度和均匀性。我们的结果表明,当旋转太快时,滚筒施加的剪切力会阻碍高先天流动性的粉末或粒子密度驱动的惯性力占主导地位的恒定力,从而阻碍了密集和均匀的层。滚子反旋转增强了粘性粉末层的均匀性,主要是减少了流动粉末中粒子簇的影响,否则这些粉末会引起深,沟槽状的条纹。伴侣离散元素方法(DEM)模拟通过隔离凝聚力对层属性的影响进一步将实验背景化。结果表明,滚子运动参数可以在流动的粉末上施加策略性的额外剪切力,从而减轻高度粘性原料的凝结行为特征,同时保持高层均匀性。

A variety of tools can be used for spreading metal, ceramic, and polymer feedstocks in powder bed additive manufacturing methods. Rollers are often employed when spreading powders with limited flowability, as arises in powders comprising fine particle sizes or high surface energy materials. Here, we study roller-based powder spreading for powder bed AM using the unique combination of a purpose-built powder spreading testbed with a proven method for X-ray mapping of powder layer depth. We focus on the density and uniformity of nominally 100 micrometer thick layers of roller-spread Ti-6Al-4V and Al-10Si-Mg powders. Our results indicate that when rotation is too rapid, roller-applied shear force impedes the creation of dense and uniform layers from powders of high innate flowability, or where inertial forces driven by particle density dominate cohesive forces. Roller counter-rotation augments the uniformity of cohesive powder layers, primarily though reducing the influence of particle clusters in the flowing powder, which are otherwise shown to cause deep, trench-like streaks. Companion discrete element method (DEM) simulations further contextualize the experiments through isolation of the effects of cohesion on layer attributes. Results suggest that roller motion parameters could apply a strategic level of additional shear force to the flowing powder, thereby mitigating the clumping behavior characteristic of highly cohesive feedstocks while maintaining high layer uniformity.

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