TY - JOUR
T1 - Powder-bed additive manufacturing for aerospace application
T2 - Techniques, metallic and metal/ceramic composite materials and trends
AU - Katz-Demyanetz, Alexander
AU - Popov, Vladimir V.
AU - Kovalevsky, Aleksey
AU - Safranchik, Daniel
AU - Koptyug, Andrey
N1 - Publisher Copyright: © A. Katz-Demyanetz et al., Published by EDP Sciences 2019.
PY - 2019
Y1 - 2019
N2 - 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.
AB - 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.
KW - Additive manufacturing
KW - Aerospace materials
KW - High entropy alloys
KW - Powder-bed
KW - Superalloys
KW - Titanium alloys
UR - http://www.scopus.com/inward/record.url?scp=85063930317&partnerID=8YFLogxK
U2 - 10.1051/mfreview/2019003
DO - 10.1051/mfreview/2019003
M3 - مقالة مرجعية
SN - 2265-4224
VL - 6
JO - Manufacturing Review
JF - Manufacturing Review
M1 - 6
ER -