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Investigation of Additive Manufactured GRCop-42 Alloy Developed by Directed Energy Deposition MethodsGRCop is an alloy family constructed of copper, chromium, and niobium and was developed by NASA for high heat flux applications. GRCop-alloys were specifically formulated for the requirements in channel-cooled main combustion chambers allowing for repeat use in high heat flux environments[1]. GRCop-84 was evolved using additive manufacturing techniques under a NASA development program. To further increase thermal conductivity while maintaining material strength characteristics, the percentage of alloying elements were cut in half and GRCop-42 was developed. In recent years, NASA has successfully additively manufactured GRCop-42 with comparable material characteristics to extrudedGRCop-42 using a Laser Powder Bed Fusion (L-PBF) process. Benefits of this process include fabrication of intricate internal cooling channels as well as a decrease in manufacturing time. However, there are some large disadvantages in using this process. The nature of the powder bed process imposes a strict volume constraint as well as an excessive amount of material inventory required. A Directed Energy Deposition (DED) process addresses these limitations while also speeding up the manufacturing process. With little data on how DED performs with GRCop-42, an investigation into the mechanical properties was conducted. More specifically, Blown Powder Directed Energy Deposition (BPD), was used to compare material properties to that of the L-PBF manufactured GRCop-42. The DED manufactured material was found to have less than 0.1% porosity. Tensile tests concluded that the DED manufactured GRCop-42 had lower tensile strengths at room temperature. The results point towards a process capable of producing fully dense parts capable of meeting mechanical strength requirements with some possible refinement of printing parameters.
Document ID
20205008272
Acquisition Source
Marshall Space Flight Center
Document Type
Conference Paper
Authors
Scott Landes
(South Dakota State University Brookings, South Dakota, United States)
Trupti Suresh
(South Dakota State University Brookings, South Dakota, United States)
Anamika Prasad
(South Dakota State University Brookings, South Dakota, United States)
Todd Letcher
(South Dakota State University Brookings, South Dakota, United States)
Paul Gradl
(Marshall Space Flight Center Redstone Arsenal, Alabama, United States)
David Ellis
(Glenn Research Center Cleveland, Ohio, United States)
Date Acquired
October 1, 2020
Subject Category
Metals And Metallic Materials
Report/Patent Number
IMECE2020-24400
Meeting Information
Meeting: International Mechanical Engineering Congress and Exposition (IMECE2020)
Location: Online
Country: US
Start Date: November 16, 2020
End Date: November 19, 2020
Sponsors: American Society of Mechanical Engineers
Funding Number(s)
CONTRACT_GRANT: 80MSFC19M0020
CONTRACT_GRANT: NNH18ZHA005C
Distribution Limits
Public
Copyright
Use by or on behalf of the US Gov. Permitted.
Technical Review
External Peer Committee
Keywords
GRCop-42
Additive Manufacturing
Directed Energy Deposition
DED
Blown powder directed energy deposition
BPD
L-PBF
Laser Powder Bed Fusion
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