Improving the Surface Quality and Mechanical Properties of Selective Laser Sintered PA2200 Components by the Vibratory Surface Finishing Process
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Erişim
info:eu-repo/semantics/openAccessTarih
2021Yazar
Khan, Hamaid M.Sirin, Tolga B.
Tarakçı, Gürkan
Bulduk, Mustafa E.
Coşkun, Mert
Koç, Ebubekir
Kaynak, Yusuf
Üst veri
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KHAN, Hamaid M., Tolga B. ŞİRİN, Gürkan TARAKÇI, Mustafa E. BULDUK, Mert COŞKUN, Ebubekir KOÇ & Yusuf KAYNAK. "Improving the Surface Quality and Mechanical Properties of Selective Laser Sintered PA2200 Components by the Vibratory Surface Finishing Process", SN Applied Sciences, 3.364 (2021).Özet
This paper attempts to improve the physical and mechanical properties of selective laser sintered polyamide PA2200
components through a vibratory surface finishing process by inducing severe plastic deformation at the outer surface
layers. The industrial target of additive manufacturing components is to obtain structures having surface roughness,
hardness, and other mechanical properties equivalent to or better than those produced conventionally. Compared to
the as-built SLS PA2200 samples, vibratory surface finishing treated specimens exhibited a smooth surface microstructure
and more favorable roughness, hardness, and tensile strength. Also, the duration of the vibratory surface finishing
process showed a further improvement in the surface roughness and hardness of the SLS samples. Compared to the asbuilt
state, the roughness and hardness of the surface-treated samples improved by almost 90% and 15%, respectively.
Consequently, microstructural analysis indicates that lower surface roughness and enhanced surface hardness is a crucial
factor in influencing the overall tensile strength of SLS-PA2200 components. We consider that the combination of VSF
and SLS processes can successfully handle a wide range of potential applications. This study also highlights the efficiency
and applicability of the vibratory surface finishing process to other additive manufacturing processes and materials.