电子束粉末床熔融过程中 AlSi10Mg 合金硅相中的纳米级铝沉淀

IF 4.2 Q2 ENGINEERING, MANUFACTURING Additive manufacturing letters Pub Date : 2024-04-26 DOI:10.1016/j.addlet.2024.100213
Kenta Ishigami , Kenta Yamanaka , Kenta Aoyagi , Huakang Bian , Yoshiki Hashizume , Akiei Tanaka , Akihiko Chiba
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引用次数: 0

摘要

铝合金的增材制造在航空航天和汽车行业备受关注。这是首次研究在电子束粉末床熔融(EB-PBF)过程中在 AlSi10Mg 合金的硅相中形成纳米级 Al 沉淀。球形硅颗粒均匀地分散在铝基体中,凸显了与激光束粉末床熔化(LB-PBF)微结构的不同之处。形成的纳米级铝相与周围的硅相具有结晶取向关系:(111)Si//(111)Al 和 [11¯0]Si//[11¯0]Al 。铝纳米沉淀物的形成归因于非平衡凝固(过量的铝溶解在硅颗粒中)和预热程序导致的过饱和硅相在高温暴露期间的后续分解之间的相互作用。据我们所知,在通过传统加工或 LB-PBF 生产的 AlSi10Mg 中,还没有关于铝纳米颗粒形成的报道。因此,EB-PBF 独特的热历史为微观结构演变提供了新的机会,这可能有利于新型铝基合金的开发。
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Nanoscale Al precipitation in the Si phase in AlSi10Mg alloy during electron beam powder bed fusion

Additive manufacturing of Al alloys has garnered attention in the aerospace and automobile industries. This is the first study on the formation of nanoscale Al precipitates in the Si phase of an AlSi10Mg alloy during electron beam powder bed fusion (EB-PBF). Spherical Si particles were homogeneously dispersed in the Al matrix, highlighting the difference from the laser beam PBF (LB-PBF) microstructures. Nanoscale Al phase was formed with a crystallographic orientation relationship with the surrounding Si phase: (111)Si//(111)Al and [11¯0]Si//[11¯0]Al. The formation of Al nanoprecipitates was attributed to an interplay between non-equilibrium solidification, wherein excess Al was dissolved in the Si particles, and the subsequent decomposition of the supersaturated Si phase during high-temperature exposure owing to the preheating procedure. To the best of our knowledge, such formation of Al nanoparticles has not been reported in AlSi10Mg produced through conventional processing or LB-PBF. Thus, the unique thermal history of EB-PBF provides novel opportunities for microstructural evolution, which may be beneficial for the development of novel Al-based alloys.

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来源期刊
Additive manufacturing letters
Additive manufacturing letters Materials Science (General), Industrial and Manufacturing Engineering, Mechanics of Materials
CiteScore
3.70
自引率
0.00%
发文量
0
审稿时长
37 days
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