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Mohan Sai Kiran Kumar Yadav Nartu, Shashank Sharma, Srinivas Aditya Mantri, Sameehan S. Joshi, Mangesh V. Pantawane ...
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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...
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 of the layer-by-layer fusion-based DED process. A brief overview of the primary governing equations, boundary conditions, and numerical methods prescribed for modeling laser-based metal AM is then presented. Next, the article discusses fundamental concepts related to laser surface melting and laser-assisted bioceramic coatings/composites on implant surfaces, with particular examples related to biomedical magnesium and titanium alloys. It then provides a review of the processes involved in DED of biomedical stainless steels, Co-Cr-Mo alloys, and biomedical titanium alloys. Further, the article covers novel applications of DED for titanium-base biomedical implants. It concludes with a section on the forecast of DED in biomedical applications.
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...
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 on the process involved in DED and the materials used for DED. The postprocessing applied to the material after deposition is then covered. The article discusses the properties of metallic materials produced by using DED and ends with a discussion on applications for DED processes in various industries.
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...
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 on DED materials and the DED deposition process. The bulk of the article is devoted to the discussion on the microstructure and properties of oxide ceramics, namely alumina and zirconia ceramics.
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...
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. This article is organized by the type of AM process and by the physics of the monitoring method. The discussion covers two types of monitoring possible with the PBF process: monitoring the area of the powder bed and component and monitoring the melt pool created by the laser or e-beam. Methods for layer monitoring include optical and thermal methods that monitor light reflected or emitted in the visible and infrared wavelengths, respectively. Monitoring methods for laser directed-energy deposition (DED) discussed are those that measure the size and shape of the melt pool, the temperature of the melt pool, and the plasma generated by the laser as it interacts with the molten metal.
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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
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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
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in In Situ X-Ray Imaging of Metal Additive Manufacturing Processes
> Additive Manufacturing Design and Applications
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
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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
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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
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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
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in Part-Scale Process Modeling for Metal Additive Manufacturing
> Additive Manufacturing Design and Applications
Published: 30 June 2023
Fig. 2 Typical powder-blown, laser directed-energy deposition system. AM, additive manufacturing. Source: Ref 1
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Published: 30 June 2023
Fig. 14 Design rules for directed-energy deposition regarding thick sections and build strategies
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Published: 30 June 2023
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Published: 15 June 2020
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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.
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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.
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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
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Published: 15 June 2020
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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.
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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.
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