Powder-bed additive manufacturing for aerospace application: Techniques, metallic and metal/ceramic composite materials and trends

Аддитивное производство на порошковой подложке для авиационно‑космических применений: методы, металлические и металло/керамические композитные материалы и тенденции
Daniel Safranchik, Andrey Koptyug, Alexander Katz‐Demyanetz, Vladimir V. Popov, A. A. Kovalevsky
2019-01-01

Nickel-based superalloysTitanium alloysaerospace applicationsbinder jettingceramic matrix compositeselectron beam meltinghigh entropy alloysmetal matrix compositesmetal/ceramic compositespowder feedstockpowder-bed additive manufacturingquality controlselective laser sintering/melting
The current paper is devoted to classification of powder-bed additive manufacturing (PB-AM) techniques and description of specific features, advantages and limitation of different PB-AM techniques in aerospace applications. The common principle of “powder-bed” means that the used feedstock material is a powder, which forms “bed-like” platform of homogeneous layer that is fused according to cross-section of the manufactured object. After that, a new powder layer is distributed with the same thickness and the “printing” process continues. This approach is used in selective laser sintering/melting process, electron beam melting, and binder jetting printing. Additionally, relevant issues related to powder raw materials (metals, ceramics, multi-material composites, etc.) and their impact on the properties of as-manufactured components are discussed. Special attention is paid to discussion on additive manufacturing (AM) of aerospace critical parts made of Titanium alloys, Nickel-based superalloys, metal matrix composites (MMCs), ceramic matrix composites (CMCs) and high entropy alloys. Additional discussion is related to the quality control of the PB-AM materials, and to the prospects of new approaches in material development for PB-AM aiming at aerospace applications.
1
Powder raw materials (metals, ceramics, multi-material composites) significantly influence the properties of as-manufactured PB-AM components.
2
Powder-bed additive manufacturing (PB-AM) encompasses selective laser sintering/melting, electron beam melting, and binder jetting, all using powder feedstock formed into successive fused layers.
3
Special attention is given to AM of aerospace-critical materials: Titanium alloys, Nickel-based superalloys, metal matrix composites (MMCs), ceramic matrix composites (CMCs), and high entropy alloys.
4
The paper classifies PB-AM techniques and outlines specific features, advantages, and limitations of each technique for aerospace applications.
5
The paper discusses quality control of PB-AM materials and prospects for new material-development approaches targeted at aerospace applications.

Powder-bed additive manufacturing (PB-AM) for aerospace components and materials

Classification, techniques, material types (metals, ceramics, metal/ceramic composites, Ti alloys, Ni-based superalloys, MMCs, CMCs, HEAs), process features, advantages/limitations, material impacts on component properties, quality control and development trends for aerospace applications

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2019-01-01
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Daniel Safranchik
Andrey Koptyug
Alexander Katz‐Demyanetz
Vladimir V. Popov
A. A. Kovalevsky
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