Optimization of selective laser melting modes of powder composition of the AlSiMg system

Natalia Saprykina, Valentina Chebodaeva, A. Saprykin, Yurii P. Sharkeev, E. Ibragimov, Taisiya Guseva
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Abstract

Introduction. New aluminum-based powder systems are currently being developed for additive manufacturing. The scientists' work is aimed at comprehensive studies of powder production, optimization of conditions for alloy production and formation of three-dimensional specimens with minimal porosity and absence of cracking during selective laser melting. The purpose of this work is the synthesis of an almost spherical Al-Si-Mg composite powder (91 wt. % Al, 8 wt. % Si, 1 wt. % Mg) from aluminum powder PA-4 (GOST 6058-22), silicon powder (GOST 2169-69) and magnesium powder MPF-4 (GOST 6001-79), which were not originally intended for selective laser melting technology. The work also provides for the optimization of selective laser melting modes to obtain an alloy and form three-dimensional specimens with minimal porosity and no cracking. To create a powder composition, powders ranging in size from 20 to 64 μm were selected by sieve analysis and subjected to mechanical mixing in a ball mill in a protective argon medium for one hour. The research methods are methods of X-ray diffraction and X-ray phase analysis, transmission electron microscopy, mechanical tests of microhardness. Studies of the powder composition after mechanical mixing showed that the mixed powder of aluminum, silicon and magnesium is a conglomerate of particles of spherical, oval and irregular shape. Results and discussions. The optimal modes for obtaining a specimen with a minimum porosity of 0.03 % and a microhardness of 1,291 MPa are selective laser melting modes: P = 90 W, V = 225 mm/s, S = 0.08 mm, h = 0.025 mm. The conducted research shows the possibility of synthesizing products from metal powders that are not adapted to processing by selective laser melting and obtaining an alloy with new mechanical properties during laser action.
优化铝硅镁体系粉末成分的选择性激光熔化模式
简介。目前正在开发用于增材制造的新型铝基粉末系统。科学家们的工作旨在全面研究粉末生产、优化合金生产条件以及在选择性激光熔化过程中形成孔隙率最小且无裂纹的三维试样。这项工作的目的是用铝粉 PA-4 (GOST 6058-22)、硅粉 (GOST 2169-69) 和镁粉 MPF-4 (GOST 6001-79)合成几乎球形的铝硅镁复合粉末(91 wt. % Al、8 wt. % Si、1 wt. % Mg),这些粉末原本并不用于选择性激光熔化技术。这项工作还对选择性激光熔化模式进行了优化,以获得合金并形成孔隙率最小、无裂纹的三维试样。为了制备粉末成分,通过筛分分析选出了粒度在 20 至 64 μm 之间的粉末,并在保护性氩介质中用球磨机进行了一小时的机械混合。研究方法包括 X 射线衍射和 X 射线相分析、透射电子显微镜、微硬度机械测试。对机械混合后粉末成分的研究表明,铝、硅和镁的混合粉末是由球形、椭圆形和不规则形颗粒组成的集合体。结果和讨论。要获得孔隙率最小为 0.03%、显微硬度为 1,291 兆帕的试样,最佳模式是选择性激光熔化模式:P = 90 W,V = 225 mm/s,S = 0.08 mm,h = 0.025 mm。这项研究表明,可以用不适合用选择性激光熔化加工的金属粉末合成产品,并在激光作用下获得具有新机械性能的合金。
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