Avtomaticheskaya Svarka (Automatic Welding), #10, 2023, pp. 45-52
Additive manufacturing of structural elements on a thin-walled base: challenges and difficulties (Review)
M.V. Sokolovskyi1, A.V. Bernatskyi1, N.O. Shamsutdinova1, Yu.V. Yurchenko1, O.O. Danileiko2
1E.O. Paton Electric Welding Institute of the NAS of Ukraine.
11 Kazymyr Malevych Str., 03150, Kyiv, Ukraine. E-mail: office@paton.kiev.ua
2E.O. Paton Education&Research Institute of Materials Science and Welding of the National Technical University of Ukraine
“Igor Sikorsky Kyiv Polytechnic Institute”. 37 Beresteysky Ave. (Peremohy), 03056, Kyiv
In the work, a literary review of materials was conducted, devoted to different areas of studying selective laser melting (SLM)
and selective laser sintering (SLS) technologies in order to analyze the processes associated with selective laser surfacing
occurring during SLM and SLS, as well as the impact of technological measures on the final structure, mechanical and service
characteristics of a manufactured part in the additive manufacturing of structural elements on a thin-walled base. The main tasks
of research works analyzed in the review were studies focused on the features of structural elements formation on a thin-walled
by means of SLM and SLS technologies: modelling of additive manufacturing processes; aspects of planning experiments and
manufacturing processes; studying the course of SLM and SLS processes in the given conditions; need in pre- or post-treatment
of material; as well as analysis of the end microstructure and characteristics of specimens manufactured using these technologies.
Based on the results of literary analysis, problems were identified and the prospects of using SLM and SLS processes were
considered during the formation of structural elements on a thin-walled base. A number of aspects were justified, on which it
is necessary to pay attention during studies of SLM and SLS processes when working with a thin-walled base. 36 Ref., 9Fig.
Keywords: selective laser melting (SLM), additive manufacturing, selective laser sintering (SLS), thin-walled products
Received: 10.07.2023
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