Additive manufacturing (AM), a 3D printing technique that manufactures components by sequential addition of powder, has massively reshaped the manufacturing and engineering sectors from batch production to manufacturing customized, innovative, state-of-the-art, and sustainable products. Additive manufacturing of aluminum alloys by selective laser melting (SLM) is one of the latest research trends in this field due to the fact of its advantages and vast applications in manufacturing industries such as automobiles and aerospace. This paper investigated the surface and dimensional quality of SLM-built AlSi10Mg parts using a response surface method (RSM) and found the influence of the wall thickness and process parameters (i.e., laser power, scanning speed, hatch distance) on the pieces. Thin-walled test specimens of AlSi10Mg alloy were manufactured with different combinations of process parameters at three wall thicknesses: 1.0 mm, 2.0 mm, and 3.0 mm. The Minitab DOE module was used to create 27 different configurations of wall thickness and process parameters. The samples’ surface roughness and dimensional accuracy were investigated, and the findings were evaluated using the ANOVA technique. The regression model and the ANOVA technique showed high precision and had a particular reference value for practical engineering applications.

Study of the surface and dimensional quality of the alsi10mg thin-wall components manufactured by selective laser melting / Waqas, M.; He, D.; Elahi, H.; Riaz, S.; Eugeni, M.; Gaudenzi, P.. - In: JOURNAL OF COMPOSITES SCIENCE. - ISSN 2504-477X. - 5:5(2021). [10.3390/jcs5050126]

Study of the surface and dimensional quality of the alsi10mg thin-wall components manufactured by selective laser melting

Elahi H.
;
Eugeni M.;Gaudenzi P.
2021

Abstract

Additive manufacturing (AM), a 3D printing technique that manufactures components by sequential addition of powder, has massively reshaped the manufacturing and engineering sectors from batch production to manufacturing customized, innovative, state-of-the-art, and sustainable products. Additive manufacturing of aluminum alloys by selective laser melting (SLM) is one of the latest research trends in this field due to the fact of its advantages and vast applications in manufacturing industries such as automobiles and aerospace. This paper investigated the surface and dimensional quality of SLM-built AlSi10Mg parts using a response surface method (RSM) and found the influence of the wall thickness and process parameters (i.e., laser power, scanning speed, hatch distance) on the pieces. Thin-walled test specimens of AlSi10Mg alloy were manufactured with different combinations of process parameters at three wall thicknesses: 1.0 mm, 2.0 mm, and 3.0 mm. The Minitab DOE module was used to create 27 different configurations of wall thickness and process parameters. The samples’ surface roughness and dimensional accuracy were investigated, and the findings were evaluated using the ANOVA technique. The regression model and the ANOVA technique showed high precision and had a particular reference value for practical engineering applications.
2021
AlSi10Mg; dimensional accuracy; selective laser melting; surface roughness
01 Pubblicazione su rivista::01a Articolo in rivista
Study of the surface and dimensional quality of the alsi10mg thin-wall components manufactured by selective laser melting / Waqas, M.; He, D.; Elahi, H.; Riaz, S.; Eugeni, M.; Gaudenzi, P.. - In: JOURNAL OF COMPOSITES SCIENCE. - ISSN 2504-477X. - 5:5(2021). [10.3390/jcs5050126]
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11573/1566627
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