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添加变质元素和均匀化退火对含4%硅的变质AlZnMgCu合金激光熔化过程的影响

Influence of Adding Modifying Elements and Homogenization Annealing on Laser Melting Process of the Modified AlZnMgCu with 4%Si Alloys.

作者信息

Mosleh Ahmed O, Khalil Asmaa M, Loginova Irina S, Solonin Alexey N

机构信息

Department of Physical Metallurgy of Non-Ferrous Metals, National University of Science and Technology "MISiS", Leninsky Prospekt 4, 119049 Moscow, Russia.

Department of Mechanical Engineering, Shoubra Faculty of Engineering, Benha University, Shoubra St. 108, Cairo 11629, Egypt.

出版信息

Materials (Basel). 2021 Oct 17;14(20):6154. doi: 10.3390/ma14206154.

Abstract

AlZnMgCu, the high-strength aluminum alloy, is unsuitable for laser melting applications due to its high hot cracking sensitivity and large solidification temperature range. Adapting this alloy for laser melting processing is a high-demand research issue for extending its use. Thus, this paper investigates the effect of adding 4%Si, 4%Si-Sc+Zr, 4%Si-Ti+B, and homogenization annealing on the laser melting process (LMP) of AlZnMgCu alloy. Homogenization annealing at 500 °C for 6.5 h was selected to dissolve most of the low melting temperature phases into the grain matrix and perform stable alloys for the LMP. The pulsed laser melting process (PLM) was performed on the as-casted and the homogenized samples. The microstructures of the as-casted, the homogenized alloys, and after the LMP were evaluated. In addition, the hardness of the base metal (BM) and laser melted zone (LMZ) were measured. The results revealed that the microstructure was enhanced and refined in the as-cast state by adding the modifiers due to the increasing nucleation potency of solidification sites and the formation of primary Al(Ti, Zr, Sc) phases. The average grain size was decreased by 15.6 times when adding 4%Si + 0.4%Zr + 0.29%Sc, while it decreased by 10.2 times when adding 4%Si + 1%Ti + 0.2%B. The LMZ of the as-casted samples exhibited a non-uniform distribution of the grains and the elements after the LMP. This was attributed to the evaporation of Zn, Mg during the high laser power process besides the non-uniform distribution of elements and phases in samples during casting. After the laser treating of the homogenized samples with 4%Si-Sc + Zr, uniform columnar grains were formed in the direction of the laser. The presence of Ti and B changed the crystallization nature, resulting in the LMZ with very fine and equiaxed grains due to forming many nucleation centers during solidification. The hardness values have positively increased due to Si addition and adding a combination of Ti + B and Sc + Zr. The maximum hardness was 153.9 ± 5 HV achieved in the LMZ of the homogenized samples of 4%Si + 1%Ti + 0.2%B.

摘要

AlZnMgCu这种高强度铝合金,由于其高热裂敏感性和较大的凝固温度范围,不适用于激光熔化应用。使这种合金适用于激光熔化加工是扩大其用途的一个高要求研究课题。因此,本文研究了添加4%Si、4%Si-Sc+Zr、4%Si-Ti+B以及均匀化退火对AlZnMgCu合金激光熔化过程(LMP)的影响。选择在500℃下进行6.5小时的均匀化退火,以将大部分低熔点相溶解到晶粒基体中,并为激光熔化过程制备稳定的合金。对铸态和均匀化后的样品进行了脉冲激光熔化过程(PLM)。评估了铸态、均匀化合金以及激光熔化后的微观结构。此外,还测量了母材(BM)和激光熔化区(LMZ)的硬度。结果表明,由于凝固位点的形核能力增加以及初生Al(Ti,Zr,Sc)相的形成,添加变质剂后铸态组织得到了细化和强化。添加4%Si + 0.4%Zr + 0.29%Sc时平均晶粒尺寸减小了15.6倍,而添加4%Si + 1%Ti + 0.2%B时平均晶粒尺寸减小了10.2倍。铸态样品的激光熔化区在激光熔化后呈现出晶粒和元素的不均匀分布。这归因于在高激光功率过程中Zn、Mg的蒸发,以及铸造过程中样品中元素和相的不均匀分布。在用4%Si-Sc + Zr对均匀化样品进行激光处理后,在激光方向上形成了均匀的柱状晶粒。Ti和B的存在改变了结晶性质,由于在凝固过程中形成了许多形核中心,导致激光熔化区具有非常细小的等轴晶粒。由于添加Si以及添加Ti + B和Sc + Zr的组合,硬度值呈正向增加。在4%Si + 1%Ti + 0.2%B均匀化样品的激光熔化区获得的最大硬度为153.9 ± 5 HV。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c521/8537174/26b5ee6294d7/materials-14-06154-g001.jpg

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