Residual stresses in selective laser sintering and selective laser melting
Остаточные напряжения при селективном лазерном спекании и селективном лазерном плавлении
2006-10-01
SCID: 54.1/qfsgesdn
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316L stainless steellaser scanning strategyresidual stressesselective laser meltingselective laser sintering
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Abstract (AI)
Purpose This paper presents an investigation into residual stresses in selective laser sintering (SLS) and selective laser melting (SLM), aiming at a better understanding of this phenomenon. Design/methodology/approach First, the origin of residual stresses is explored and a simple theoretical model is developed to predict residual stress distributions. Next, experimental methods are used to measure the residual stress profiles in a set of test samples produced with different process parameters. Findings Residual stresses are found to be very large in SLM parts. In general, the residual stress profile consists of two zones of large tensile stresses at the top and bottom of the part, and a large zone of intermediate compressive stress in between. The most important parameters determining the magnitude and shape of the residual stress profiles are the material properties, the sample and substrate height, the laser scanning strategy and the heating conditions. Research limitations/implications All experiments were conducted on parts produced from stainless steel powder (316L) and quantitative results cannot be simply extrapolated to other materials. However, most qualitative results can still be generalized. Originality/value This paper can serve as an aid in understanding the importance of residual stresses in SLS/SLM and other additive manufacturing processes involving a localized heat input. Some of the conclusions can be used to avoid problems associated with residual stresses.
Key Findings
1
A theoretical model was developed to predict residual-stress distributions in selective laser sintering and selective laser melting parts.
2
Material properties, sample and substrate heights, laser scanning strategy, and heating conditions strongly determine residual-stress magnitude and distribution.
3
Quantitative results were obtained for stainless-steel 316L parts and cannot be directly extrapolated to other materials, although qualitative trends may generalize.
4
Residual-stress profiles generally contain tensile-stress zones near the top and bottom surfaces, separated by an intermediate compressive-stress zone.
5
Selective laser melting parts exhibit very large residual stresses.
Research Object
Residual stresses in parts produced by selective laser sintering (SLS) and selective laser melting (SLM)
Research Subject
The origin, magnitude, spatial distribution, and process-parameter dependence of residual stresses, including tensile and compressive zones
Publication Details
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2006-10-01
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