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Series: ASM Handbook
Volume: 24
Publisher: ASM International
Published: 15 June 2020
DOI: 10.31399/asm.hb.v24.a0006569
EISBN: 978-1-62708-290-7
... Abstract This article focuses on binder-jetting technologies in additive manufacturing (AM) that produce metal artifacts either directly or indirectly. The intent is to focus on the most strategic and widespread uses of the binder jetting technology and review some of the challenges...
Abstract
This article focuses on binder-jetting technologies in additive manufacturing (AM) that produce metal artifacts either directly or indirectly. The intent is to focus on the most strategic and widespread uses of the binder jetting technology and review some of the challenges and opportunities for that technology. The discussion includes a historical overview and covers the major steps involved and the advantages of using the binder jetting process. The major steps of the process covered include printing, curing, de-powdering, and sintering.
Series: ASM Handbook
Volume: 24
Publisher: ASM International
Published: 15 June 2020
DOI: 10.31399/asm.hb.v24.a0006571
EISBN: 978-1-62708-290-7
... Abstract The highly irregular morphologies of ceramic powder particles due to their process history present a challenge to binder jetting additive manufacturing (BJ-AM) ceramic powder feedstock processability, but knowledge of powder metallurgy of ceramics benefits the development and analysis...
Abstract
The highly irregular morphologies of ceramic powder particles due to their process history present a challenge to binder jetting additive manufacturing (BJ-AM) ceramic powder feedstock processability, but knowledge of powder metallurgy of ceramics benefits the development and analysis of the BJ-AM ceramic processes. Understanding BJ-AM process principles and ceramics processing challenges requires reviewing a number of fundamental principles, which this article delineates. The discussion covers the processability considerations, a brief summary of some fundamental aspects of modeling of liquid permeation in the powder bed, and process capabilities and advantages of BJ-AM technology.
Series: ASM Handbook
Volume: 23A
Publisher: ASM International
Published: 12 September 2022
DOI: 10.31399/asm.hb.v23A.a0006903
EISBN: 978-1-62708-392-8
... Abstract Additive manufacturing (AM) technologies print three-dimensional (3D) parts through layer-by-layer deposition based on the digital input provided by a computer-aided design file. This article focuses on the binder jet printing process, common biomaterials used in this AM technique...
Abstract
Additive manufacturing (AM) technologies print three-dimensional (3D) parts through layer-by-layer deposition based on the digital input provided by a computer-aided design file. This article focuses on the binder jet printing process, common biomaterials used in this AM technique, and the clinical applications relevant to these systems. It reviews the challenges and future directions of binder-jetting-based 3D printing.
Book: Casting
Series: ASM Handbook
Volume: 15
Publisher: ASM International
Published: 01 December 2008
DOI: 10.31399/asm.hb.v15.a0005242
EISBN: 978-1-62708-187-0
..., are discussed. The article describes the methods of sand bonding with inorganic compounds. It provides a description of resin-bonded sand systems: no-bake binder systems, heat-cured binder systems, and cold box binder systems. The article concludes with a discussion on the media used for expendable molds...
Abstract
This article reviews the basic types of mold aggregates and bonding methods for expendable molds and coremaking. It provides an overview of mold media and the basic types of sands and their properties. The most significant clays used in green sand operations, such as bentonites, are discussed. The article describes the methods of sand bonding with inorganic compounds. It provides a description of resin-bonded sand systems: no-bake binder systems, heat-cured binder systems, and cold box binder systems. The article concludes with a discussion on the media used for expendable molds, namely, ceramic shells and rammed graphite, for casting reactive metals such as titanium or zirconium.
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Published: 30 September 2015
Fig. 8 Curing of alkyl silicate zinc-rich binder tetraethyl orthosilicate (TEOS). Source: Ref 21
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in Carbide- and Boride-Based Thick Coatings for Abrasive Wear-Protection Applications
> Friction, Lubrication, and Wear Technology
Published: 31 December 2017
Fig. 5 Microstructure and hardness of cemented carbides as a function of binder content. Source: Ref 12
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Published: 01 November 1995
Fig. 2 Compaction rate diagram of powder agglomerates. A, soft, binder, low density; B, hard binder, low density; C, soft binder, high density. TD, theoretical density; P, pressure
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Published: 01 November 1995
Fig. 18 Pressure-controlled binder removal cycle. Source: Ref 53
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Published: 01 November 2010
Fig. 12 Effect of a binder on sheet metal behavior. As the sheet metal blank is drawn into a part shape, the material that forms the part shape is generally stretched outward, and the material within the binder slides inward, as indicated by the arrows. The converging pattern of the inwardly
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Published: 01 November 2010
Fig. 13 Detail of binder effect. As the material wrinkles, it bumps against the binder in this view of the section cut from Fig. 12 The binder limits the height of the wrinkle and withstands the force of the material pushing against it. The force vector diagram within the material
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Published: 31 August 2017
Fig. 5 Classification of binder systems used in cast iron production. FRC, free radical cure; PUCB, phenolic urethane cold box; PECB, Ester-cured phenolic cold box
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Published: 31 August 2017
Fig. 11 Influence of the type of binder and coatings on the casting surface. (a) Effect of binder. Source: Ref 10 . (b) Effect of coating on furan sand. Source: Ref 4
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Published: 31 August 2017
Fig. 2 (a) and (b) Tested furan binder/silica sand molds. Temperature evolution for the tested molds (A356 castings) at superheats of (c) 100 °C (212 °F) and (d) 200 °C (390 °F). Reprinted with permission from John Wiley & Sons, Inc., who reserves all rights. Source: Ref 11
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Published: 31 August 2017
Fig. 3 Furan binder pyrolysis determined by thermogravimetric analysis for two samples taken at two different times. Source: Ref 10
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Published: 30 September 2015
Fig. 4 An illustration of increasing solids loading, ranging from excess binder (bottom) to excess powder leading to voids due to insufficient binder (top)
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Published: 30 September 2015
Fig. 10 Percent of binder removed from a stainless steel MIM compact versus the square root of the wicking time for three powder particle sizes ( Ref 8 )
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Published: 30 September 2015
Fig. 11 Debinding curve showing the binder extraction with debinding time ( Ref 8 )
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Published: 30 September 2015
Fig. 12 Cumulative binder weight loss with debinding temperature for pure polyethylene using air and nitrogen as the debinding atmosphere and a MIM compact made from Fe and polyethylene ( Ref 8 )
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Published: 01 January 2006
Fig. 7 Effect of a binder on sheet metal behavior. As the sheet metal blank is drawn into a part shape, the material that forms the part shape is generally stretched outward, and the material within the binder slides inward, as indicated by the arrows. The converging pattern of the inwardly
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