Metal additive manufacturing in aerospace: A review

Аддитивное производство металлических изделий в аэрокосмической отрасли: обзор
Paul Gradl, Elena López, Anton du Plessis, Filippo Berto, Martin Leary, Byron Blakey-Milner, Glen Snedden, Michael J. Brooks, Jean Pitot
2021-07-24

aerospace applicationscomponent consolidationlightweight designliquid-fuel rocket enginesmetal additive manufacturing
Metal additive manufacturing involves manufacturing techniques that add material to produce metallic components, typically layer by layer. The substantial growth in this technology is partly driven by its opportunity for commercial and performance benefits in the aerospace industry. The fundamental opportunities for metal additive manufacturing in aerospace applications include: significant cost and lead-time reductions, novel materials and unique design solutions, mass reduction of components through highly efficient and lightweight designs, and consolidation of multiple components for performance enhancement or risk management, e.g. through internal cooling features in thermally loaded components or by eliminating traditional joining processes. These opportunities are being commercially applied in a range of high-profile aerospace applications including liquid-fuel rocket engines, propellant tanks, satellite components, heat exchangers, turbomachinery, valves, and sustainment of legacy systems. This paper provides a comprehensive review of metal additive manufacturing in the aerospace industry (from industrial/popular as well as technical literature). This provides a current state of the art, while also summarizing the primary application scenarios and the associated commercial and technical benefits of additive manufacturing in these applications. Based on these observations, challenges and potential opportunities are highlighted for metal additive manufacturing for each application scenario.
1
Commercial aerospace applications include rocket engines, propellant tanks, satellite components, heat exchangers, turbomachinery, valves, and legacy-system sustainment.
2
Component consolidation can enhance performance and reduce risk by enabling internal cooling features and eliminating traditional joining processes.
3
Metal additive manufacturing offers aerospace benefits including reduced cost and lead time, lightweight designs, novel materials, and component consolidation.
4
The paper identifies challenges and future opportunities for metal additive manufacturing across different aerospace application scenarios.
5
The review establishes the current state of the art, summarizing application scenarios and their associated commercial and technical benefits.

Metal additive manufacturing in aerospace applications

Application scenarios, commercial and technical benefits, challenges, and future opportunities of metal additive manufacturing

Publication Details
Publication Date
2021-07-24
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Authors
Paul Gradl
Elena López
Anton du Plessis
Filippo Berto
Martin Leary
Byron Blakey-Milner
Glen Snedden
Michael J. Brooks
Jean Pitot
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