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  5. Binding mechanisms in selective laser sintering and selective laser melting

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Article
English
2005

Binding mechanisms in selective laser sintering and selective laser melting

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0 Files

English
2005
Rapid Prototyping Journal
Vol 11 (1)
DOI: 10.1108/13552540510573365

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Jean-pierre Kruth
Jean-pierre Kruth

Ku Leuven

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Jean-pierre Kruth
Peter Mercelis
Jo Van Vaerenbergh
+2 more

Abstract

Purpose This paper provides an overview of the different binding mechanisms in selective laser sintering (SLS) and selective laser melting (SLM), thus improving the understanding of these processes. Design/methodology/approach A classification of SLS/SLM processes was developed, based on the binding mechanism occurring in the process, in contrast with traditional classifications based on the processed material or the application. A broad range of commercial and experimental SLS/SLM processes – found from recent articles as well as from own experiments – was used to explain the different binding mechanism categories. Findings SLS/SLM processes can be classified into four main binding mechanism categories, namely “solid state sintering”, “chemically induced binding”, “liquid phase sintering – partial melting” and “full melting”. Most commercial processes can be classified into the latter two categories, which are therefore subdivided. The binding mechanism largely influences the process speed and the resulting part properties. Research limitations/implications The classification presented is not claimed to be definitive. Moreover some SLM/SLM processes could be classified into more than one category, based on personal interpretation. Originality/value This paper can be a useful aid in understanding existing SLS/SLM processes. It can also serve as an aid in developing new SLS/SLM processes.

How to cite this publication

Jean-pierre Kruth, Peter Mercelis, Jo Van Vaerenbergh, Ludo Froyen, Marleen Rombouts (2005). Binding mechanisms in selective laser sintering and selective laser melting. Rapid Prototyping Journal, 11(1), pp. 26-36, DOI: 10.1108/13552540510573365.

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Publication Details

Type

Article

Year

2005

Authors

5

Datasets

0

Total Files

0

Language

English

Journal

Rapid Prototyping Journal

DOI

10.1108/13552540510573365

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