深低温老化处理对选择性激光熔炼 AlSi10Mg 合金微观结构和力学性能的影响

Metals Pub Date : 2024-04-24 DOI:10.3390/met14050493
Pengjun Tang, Taiqi Yan, Yu Wu, Haibo Tang
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摘要

深低温老化(DCA)是一种新开发的热处理技术,适用于添加剂制造的金属材料,以减少残余应力并改善其机械性能。在这项研究中,通过选择性激光熔化技术制造的 AlSi10Mg 合金样品在 -160 °C 下进行了深冷处理,随后在 160 °C 下进行了老化。使用 X 射线衍射、光学显微镜、扫描电子显微镜和透射电子显微镜进行了相位和微观结构分析,并通过室温下的显微硬度和拉伸测试评估了力学性能。结果表明,DCA 处理对熔池的形态没有影响。但是,它促进了原子团簇和纳米级 Si 与 β′ 相的形成,并加速了晶粒的粗化和共晶 Si 相的成熟。经 DCA 处理后,硅相的质量分数从 4.4% 增加到 7.2%。同时,析出的次生相的体积分数上升到 5.1%。显微硬度提高到 147 HV,极限抗拉强度和屈服强度分别达到 495 兆帕和 345 兆帕,伸长率为 7.5%。与原试样相比,显微硬度、极限抗拉强度和屈服强度分别提高了 11.4%、3.1% 和 19.0%。机械性能的改善主要归功于次生相诱导的奥罗旺强化机制。
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Effect of Deep Cryogenic Aging Treatment on Microstructure and Mechanical Properties of Selective Laser-Melted AlSi10Mg Alloy
Deep cryogenic aging (DCA) is a newly developed heat treatment technique for additive-manufactured metallic materials to reduce residual stress and improve their mechanical properties. In this study, AlSi10Mg alloy samples fabricated by selective laser melting were deep-cryogenic-treated at −160 °C and subsequently aged at 160 °C. Phase and microstructural analyses were conducted using X-ray diffraction, optical microscopy, scanning electron microscopy, and transmission electron microscopy, while the mechanical properties were evaluated through microhardness and tensile testing at room temperature. The results indicated that the DCA treatment did not have an effect on the morphology of the melt pools. However, it facilitated the formation of atomic clusters and nanoscale Si and β′ phases, as well as accelerating the coarsening of grains and the ripening of the eutectic Si phase. After DCA treatment, the mass fraction of the Si phase experienced an increase from 4.4% to 7.2%. Concurrently, the volume fraction of the precipitated secondary phases elevated to 5.1%. The microhardness was enhanced to 147 HV, and the ultimate tensile strength and yield strength achieved 495 MPa and 345 MPa, respectively, with an elongation of 7.5%. In comparison to the as-built specimen, the microhardness, ultimate tensile strength, and yield strength increased by 11.4%, 3.1%, and 19.0%, respectively. The improvement in mechanical properties is primarily attributed to the Orowan strengthening mechanism induced by the secondary phases.
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