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Single track formation in selective laser melting of metal powders

机译:金属粉末的选择性激光熔融中的单道形成

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摘要

Selective laser melting (SLM) is a powder-based additive manufacturing capable to produce parts layer-by-layer from a 3D CAD model. Currently there is a growing interest in industry for applying this technology for generating objects with high geometrical complexity. To introduce SLM process into industry for manufacturing real components, high mechanical properties of final product must be achieved. Properties of manufactured parts depend strongly on each single laser-melted track and each single layer. In this study, effects of the processing parameters such as scanning speed and laser power on single tracks formation are explored. Experiments are carried out at laser power densities (0.3-1.3) × 10~6 W/cm~2 by cw Yb-fiber laser. Optimal ratio between laser power and scanning speed (technological processing map) for 50 μm layer thickness is determined for stainless steels (SS) grade 316L(-25 μm) and 904L(-16 μm), tool steel H13 (-25 μm), copper alloy CuNi10 (-25 μm) and superalloy Inconel 625 (-16 μm) powders. A considerable negative correlation is found between the thermal conductivity of bulk material and the range of optimal scanning speed for the continuous single track sintering.
机译:选择性激光熔化(SLM)是基于粉末的增材制造,能够根据3D CAD模型逐层生产零件。当前,在工业上将这种技术应用于产生具有高几何复杂度的物体的兴趣日益浓厚。为了将SLM工艺引入用于制造实际零件的工业中,必须实现最终产品的高机械性能。所制造零件的特性在很大程度上取决于每个激光熔化的轨迹和每个单层。在这项研究中,探讨了诸如扫描速度和激光功率等处理参数对单磁道形成的影响。连续w光纤激光器在激光功率密度(0.3-1.3)×10〜6 W / cm〜2的条件下进行实验。对于316L(-25μm)和904L(-16μm)级的不锈钢(SS),H13(-25μm)的工具钢(SS),确定了50μm层厚的激光功率与扫描速度之间的最佳比率(工艺处理图),铜合金CuNi10(-25μm)和超合金Inconel 625(-16μm)粉末。在散装材料的导热率与连续单轨烧结的最佳扫描速度范围之间发现了相当大的负相关性。

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