Lasers and materials in selective laser sintering
Лазеры и материалы в селективном лазерном спекании
2003-12-01
SCID: 54.1/48dycjxa
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debinding (sacrificial polymer binder)laser-material interactionpowder materialsrapid prototyping techniques (RPT)selective laser sintering
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Abstract (AI)
Selective laser sintering (SLS) is one of the most rapidly growing rapid prototyping techniques (RPT). This is mainly due to its suitability to process almost any material: polymers, metals, ceramics (including foundry sand) and many types of composites. The material should be supplied as powder that may occasionally contain a sacrificial polymer binder that has to be removed (debinded) afterwards. The interaction between the laser beam and the powder material used in SLS is one of the dominant phenomena that defines the feasibility and quality of any SLS process. This paper surveys the current state of SLS in terms of materials and lasers. It describes investigations carried out experimentally and by numerical simulation in order to get insight into laser-material interaction and to control this interaction properly.
Key Findings
1
Experimental and numerical simulation investigations are used to gain insight into and control laser–material interaction in SLS.
2
Laser–powder interaction is a dominant phenomenon that determines the feasibility and quality of SLS processes.
3
Materials for SLS must be supplied as powders and may include sacrificial polymer binders that require post-process debinding.
4
SLS is rapidly growing among rapid prototyping techniques due to its suitability for processing almost any material including polymers, metals, ceramics, foundry sand, and many composites.
5
The survey summarizes current state of SLS with respect to available materials and lasers, emphasizing understanding and control of interactions.
Research Object
Laser–powder material interaction in selective laser sintering (SLS)
Research Subject
Mechanisms and control of the laser-powder interaction determining SLS feasibility and quality across polymers, metals, ceramics and composites, studied experimentally and by numerical simulation
Publication Details
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2003-12-01
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