Fryzowicz Krzysztof, Bardo Radosław, Dziurka Rafał, Kawałko Jakub, Cios Grzegorz, Stwora Andrzej, Bała Piotr
Faculty of Metals Engineering and Industrial Computer Science, AGH University of Krakow, Mickiewicza 30 Av., 30-059 Krakow, Poland.
Progresja, Żelazna 9 Street, 40-851 Katowice, Poland.
Materials (Basel). 2024 Sep 21;17(18):4631. doi: 10.3390/ma17184631.
Additive manufacturing techniques employing laser-based metal melting have garnered significant attention within the scientific community. Despite a decade of comprehensive research on the fundamentals of these techniques, there still remain unexplored facets related to heat flux impact on metallic alloys' properties. Particularly, the effects of point-by-point laser operation on melt pool formation in metallic materials still remain unclear. Thus, this study focuses on the implications of laser metal melting, particularly investigating a point-by-point laser mode operation's influence on melt pool formation and its geometry in the phase-transformation-sensitive material H11 hot work tool steel. To examine the melt pool, singular laser tracks with various laser parameters were scanned across H11 sheet metal, which allowed for the elimination of layer-by-layer heat cycles' influence on the melt pool's microstructure. Samples were examined by means of metallography, revealing significant differences in the melt pool's depth, influenced mostly by exposure time rather than volumetric energy density. Heat-affected zone effects were found to have a limited range and thus potentially marginal effects in layer-by-layer manufacturing conditions. At the same time, retained austenite concentrations near fusion lines have been found within melt pools, suggesting potential micro-segregation of the alloying additions. The results present guidelines towards laser melting processes optimization.
采用基于激光的金属熔化的增材制造技术已在科学界引起了广泛关注。尽管对这些技术的基础进行了十年的全面研究,但与热通量对金属合金性能的影响相关的一些方面仍未得到探索。特别是,逐点激光操作对金属材料熔池形成的影响仍不清楚。因此,本研究聚焦于激光金属熔化的影响,特别研究逐点激光模式操作对相变敏感材料H11热作模具钢中熔池形成及其几何形状的影响。为了研究熔池,在H11金属薄板上扫描具有各种激光参数的单个激光轨迹,这消除了逐层热循环对熔池微观结构的影响。通过金相学对样品进行检查,结果表明熔池深度存在显著差异,主要受曝光时间而非体积能量密度的影响。发现热影响区效应范围有限,因此在逐层制造条件下可能产生的影响较小。同时,在熔池内熔合线附近发现了残余奥氏体浓度,这表明合金添加物可能存在微观偏析。研究结果为激光熔化工艺优化提供了指导方针。