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directed energy deposition

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Series: ASM Handbook
Volume: 23A
Publisher: ASM International
Published: 12 September 2022
DOI: 10.31399/asm.hb.v23A.a0006885
EISBN: 978-1-62708-392-8
... Abstract This article focuses on the directed-energy deposition (DED) additive manufacturing (AM) technique of biomedical alloys. First, it provides an overview of the DED process. This is followed by a section describing the design and development of the multiphysics computational modeling...
Series: ASM Handbook
Volume: 24
Publisher: ASM International
Published: 15 June 2020
DOI: 10.31399/asm.hb.v24.a0006549
EISBN: 978-1-62708-290-7
... Abstract This article presents a detailed account of directed-energy deposition (DED) processes that are used for additive manufacturing (AM) of metallic materials. It begins with a process overview and a description of the components of DED systems followed by sections providing information...
Series: ASM Handbook
Volume: 24
Publisher: ASM International
Published: 15 June 2020
DOI: 10.31399/asm.hb.v24.a0006559
EISBN: 978-1-62708-290-7
... Abstract Directed-energy deposition (DED) is a kind of additive manufacturing (AM) technology based on synchronous powder feeding or wire feeding. This article provides a comprehensive coverage of DED for ceramic AM, beginning with an overview of DED equipment setup, followed by a discussion...
Series: ASM Handbook
Volume: 24
Publisher: ASM International
Published: 15 June 2020
DOI: 10.31399/asm.hb.v24.a0006564
EISBN: 978-1-62708-290-7
... Abstract This article covers in-line process monitoring of the metal additive manufacturing (AM) methods of laser and electron beam (e-beam) powder-bed fusion (PBF) and directed-energy deposition (DED). It focuses on methods that monitor the component directly throughout the build process...
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Published: 15 June 2020
Fig. 4 Examples of deposition process. (a) Laser-based directed-energy deposition (DED). Courtesy of Center for Innovative Materials Processing through Direct Digital Deposition, Pennsylvania State University. (b) Electron-beam-based DED. Courtesy of NASA Langley Research Center More
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Published: 15 June 2020
Fig. 20 Directed-energy deposition (DED) of GRCop-84 on nickel 718. (a) DED-fabricated specimens. (b) Cross section showing the location of GRCop-84 transition to alloy 718. (c, d) Scanning electron microscopy images showing the interface with Cr 2 Nb precipitates and copper-nickel solid More
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Published: 30 June 2023
Fig. 7 Schematics of (a) laser directed-energy deposition, and (b) laser powder-bed fusion processes. Reprinted from Ref 46 with permission from Elsevier (c) binder jetting process. Reprinted from Ref 51 under the CC-BY-SA-4.0 International license More
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Published: 30 June 2023
Fig. 3 Boeing 787 aft galley bracket manufactured using directed-energy deposition wire feed technology from Norsk Titanium. Source: Ref 2 More
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Published: 30 June 2023
Fig. 4 Directed-energy-deposition-printed titanium bracket that has cost advantage over conventional methods of manufacturing the same design. Courtesy of Norsk Titanium More
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Published: 30 June 2023
Fig. 11 Frame from a high-speed video of the laser directed-energy deposition with powder feedstock (DED-L/P) process, with a magnified view of the melt pool showing different elements observed for a laser power of 5 kW, cladding speed of 0.5 m/min (1.6 ft/min), and a powder feed rate of 30 g More
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Published: 30 June 2023
Fig. 2 Typical powder-blown, laser directed-energy deposition system. AM, additive manufacturing. Source: Ref 1 More
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Published: 30 June 2023
Fig. 14 Design rules for directed-energy deposition regarding thick sections and build strategies More
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Published: 30 June 2023
Fig. 15 Design rules for directed-energy deposition (DED) regarding holes and overhangs More
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Published: 15 June 2020
Fig. 13 Schematic of directed energy deposition More
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Published: 15 June 2020
Fig. 14 Representative directed energy deposition parts. (a) Pure copper septagon structure 175 mm in diameter and 200 mm tall with 1 mm wall thickness. (b) Repairing a titanium turbine compressor vane. Courtesy of Optomec, Inc. More
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Published: 15 June 2020
Fig. 3 Directed-energy deposition (DED) technology. (a) DED equipment. CNC, computer numerical control. Adapted from Ref 29. More
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Published: 15 June 2020
Fig. 7 Directed-energy deposition materials. (a) Ceramic powder. (b) Ceramic substrate. Source: Ref 26 . Reprinted from F.Y. Niu, D.J. Wu, F. Lu, G. Liu, G.Y. Ma, and Z.Y. Jia, Microstructure and Macro Properties of Al 2 O 3 Ceramics Prepared by Laser Engineered Net Shaping, Ceram. Int More
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Published: 15 June 2020
Fig. 33 Schematic of ultrasonic-assisted directed-energy deposition experimental system More
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Published: 15 June 2020
Fig. 5 Schematic of laser-based directed-energy deposition head. A transmissive focusing optic focuses an incoming collimated beam for processing. More
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Published: 15 June 2020
Fig. 9 Processing chamber for an electron-beam-based directed-energy deposition system with five axes of motion capable of producing relatively large build volumes. Courtesy of Sciaky Inc. More