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Process qualification, additive manufacturing, and postprocessing of a hydrogen peroxide/kerosene 6 kN aerospike breadboard engine

Selbmann, Alex (författare)
Fraunhofer Institute for Material and Beam Technology IWS, Dresden 01277, Germany
Gruber, Samira (författare)
Fraunhofer Institute for Material and Beam Technology IWS, Dresden 01277, Germany
Propst, Martin (författare)
Institute of Aerospace Engineering, TUD Dresden University of Technology, Dresden 01602, Germany
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Dorau, Tim (författare)
Institute of Aerospace Engineering, TUD Dresden University of Technology, Dresden 01602, Germany
Drexler, Robert (författare)
Fraunhofer Institute for Material and Beam Technology IWS, Dresden 01277, Germany
Toma, Filofteia-Laura (författare)
Fraunhofer Institute for Material and Beam Technology IWS, Dresden 01277, Germany
Mueller, Michael (författare)
Institute of Materials Science, TUD Dresden University of Technology, Dresden 01069, Germany
Stepien, Lukas (författare)
Fraunhofer Institute for Material and Beam Technology IWS, Dresden 01277, Germany
Lopez, Elena (författare)
Fraunhofer Institute for Material and Beam Technology IWS, Dresden 01277, Germany
Bach, Christian (författare)
Institute of Aerospace Engineering, TUD Dresden University of Technology, Dresden 01602, Germany
Brueckner, Frank (författare)
Luleå tekniska universitet,Produkt- och produktionsutveckling,Fraunhofer Institute for Material and Beam Technology IWS, Dresden 01277, Germany
Leyens, Christoph (författare)
Fraunhofer Institute for Material and Beam Technology IWS, Dresden 01277, Germany; Institute of Materials Science, TUD Dresden University of Technology, Dresden 01069, Germany
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 (creator_code:org_t)
Laser Institute of America, 2024
2024
Engelska.
Ingår i: Journal of laser applications. - : Laser Institute of America. - 1042-346X .- 1938-1387. ; 36:1
  • Tidskriftsartikel (refereegranskat)
Abstract Ämnesord
Stäng  
  • This contribution addresses the complete process chain of an annular aerospike breadboard engine fabricated by laser powder bed fusion using the nickel-based superalloy Inconel® 718. In order to qualify the material and process for this high-temperature application, an extensive material characterization campaign including density and roughness measurements, as well as tensile tests at room temperature, 700, and 900 °C, was conducted. In addition, various geometric features such as triangles, ellipses, and circular shapes were generated to determine the maximum unsupported overhang angle and geometrical accuracy. The results were taken into account in the design maturation of the manifold and the cooling channels of the aerospike breadboard engine. Postprocessing included heat treatment to increase mechanical properties, milling, turning, and eroding of interfaces to fulfill the geometrical tolerances, thermal barrier coating of thermally stressed surfaces for better protection of thermal loads, and laser welding of spike and shroud for the final assembly as well as quality assurance. This contribution goes beyond small density cubes and tensile samples and offers details on the iterations necessary for the successful printing of large complex shaped functional parts. The scientific question is how to verify the additive manufacturing process through tensile testing, simulation, and design iterations for complex geometries and reduce the number of failed prints.

Ämnesord

TEKNIK OCH TEKNOLOGIER  -- Materialteknik -- Bearbetnings-, yt- och fogningsteknik (hsv//swe)
ENGINEERING AND TECHNOLOGY  -- Materials Engineering -- Manufacturing, Surface and Joining Technology (hsv//eng)

Nyckelord

additive manufacturing
aerospace
aerospike engine
laser powder bed fusion
nickel-based superalloys
Produktionsutveckling
Manufacturing Systems Engineering

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