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首页> 外文期刊>Materials Characterization >Dual interfacial characterization and property in multi-material selective laser melting of 316L stainless steel and C52400 copper alloy
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Dual interfacial characterization and property in multi-material selective laser melting of 316L stainless steel and C52400 copper alloy

机译:316L不锈钢和C52400铜合金多材料选择性激光熔化中的双界面表征和性能

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Manufacturing multi-material part is one of the native advantages of selective laser melting (SLM) due to its layer-by-layer manufacturing method, which is attracting more and more attention in recent years. In an effort to reveal the dual interfacial characterization of dissimilar materials manufactured by SLM with different printing sequences, this paper presents the morphology, microstructure, element distribution, phase composition and microhardness of multi-material interfaces between SLMed 316L steel and C52400 copper alloy. Both interfaces display isolated alloy islands with various shapes and different morphologies. The melt pool at 316L/C52400 interface is deeper and narrower than that at C52400/316L interface. Small 316L and C52400 spheres with a size of 1-5 mu m are formed under the surface tension, Marangoni convection in the melt pool and rapid cooling condition, in which many smaller particles with a size of < 1 mu m appear due to the material supersaturation and convection. Interdiffusion of elements and very fine grains with a size of < 6 mu m result in excellent metallurgical bonding performance. Cracks tend to originate from the interface and extend to the stainless steel side for both interfaces. No separation of the two materials caused by cracks is found in their contact area. Healing of the cracks by C52400 copper alloy at 316L/C52400 interface is easier to complete. The interface thickness depends on the building sequence of the two materials, which features a much thicker transition when building C52400 on 316L. No intermetallic compound but a trace of CuNi alloy is formed at the interface. The microhardness varies in the transition area due to the existence of isolated 316L/C52400 islands and decreases from 316L to C52400 with the highest value of 283.33 +/- 5.51 HV to the lowest value of 181.33 +/- 17.62 HV. This research advances the understanding of the different interfacial characterizations of dissimilar materials manufactured by SLM and provides guidance and reference for manufacturing multi-material components with complex interfaces using SLM.
机译:制造多重材料部分是选择性激光熔化(SLM)的原生优点之一,由于其层逐层制造方法,近年来吸引了越来越多的关注。努力揭示用不同印刷序列制造的SLM制造的不同材料的双界面界面表征,本文介绍了SLMED 316L钢和C52400铜合金之间的多材料界面的形态,微观结构,元件分布,相位组成和微硬度。两个界面都显示出各种形状和不同形态的隔离合金岛屿。 316L / C52400接口的熔池池比C52400 / 316L界面更深刻且窄。在表面张力下形成尺寸为1-5μm的小型316L和C52400球体,Marangoni对流在熔池池中的Marangoni对流和快速冷却条件下,其中由于材料而出现了尺寸<1μm的较小颗粒超饱和和对流。尺寸为<6μm的尺寸为<6μm的变化,导致优异的冶金粘合性能。裂缝倾向于源自界面并延伸到两个接口的不锈钢侧。在其接触区域中没有发现由裂缝引起的两种材料的分离。 C52400铜合金在316L / C52400接口中愈合更容易完成。界面厚度取决于两种材料的建筑序列,在316L上建造C52400时,具有更厚的过渡。没有金属间化合物,但在界面处形成一丝CUNI合金。由于孤立的316L / C52400岛的存在,显微硬度在过渡区域中变化,并且从316L至C52400降低,最高值为283.33 +/- 5.51HV,最低值为181.33 +/- 17.62 HV。该研究对SLM制造的不同材料的不同界面特征推进了对使用SLM的复杂接口的制造多材料成分的指导和参考。

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