Effects of different post surface treatments on the surface characteristics, corrosion resistance and metal migration from L-PBF additively manufactured 316L stainless steel
Влияние различных постобработок поверхности на характеристики поверхности, коррозионную стойкость и миграцию металлов из аддитивно изготовленной методом L-PBF нержавеющей стали 316L
2025-08-13
SCID: 54.1/shjj2usa
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316L stainless steelASTM G61HirtizationL-PBFartificial tap water with chloridescorrosion resistancehot isostatic pressing (HIP)isotropic super finishing (C.A.S.E.)metal dissolutionpicklingpitting corrosionpost surface treatmentsshot peening (SP)surface oxide compositionsurface roughness
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Abstract (AI)
Additive manufacturing (AM) using Laser Powder Bed Fusion (L-PBF) enables the fabrication of complex metal components with high precision. However, the as-printed surfaces often exhibit high roughness, residual stresses, and partially fused particles, which can negatively impact the mechanical performance, corrosion resistance, and fatigue life. Surface treatments are therefore required to improve surface integrity, reduce defects, and enhance functional properties such as corrosion resistance. This study explores the impact of chemical and mechanical post-processing methods including pickling, clean hot isostatic pressure (HIP), Hirtization, shot peening (SP), and isotropic super finishing (C.A.S.E.) on the microstructure, surface composition and topography of L-PBF printed HIP treated 316L stainless steel surfaces in relation to their corrosion resistance and extent of metal dissolution in artificial tap water with and without chlorides (1 and 3 wt% Cl − ). Corrosion studies were also performed in NaCl (2.1 wt% Cl − ) based on the ASTM G61 standard. The utilization of a combination of electrochemical, chemical, microscopic, and spectroscopic techniques discerned notable differences for the differently surface treated AM 316L in terms of microstructure, surface topography, surface roughness, surface oxide composition and barrier properties, metal dissolution, corrosion resistance as well as pitting corrosion resistance. • Surface treatment of L-PBF 316L affects both the surface composition and topology. • Surface treatments variably affect the corrosion resistance and metal dissolution. • Mechanical post-processing can change the near-surface microstructure. • Corrosion and metal dissolution is highly connected to the surface characteristics. • The Cr + Mo surface content linked to the corrosion performance in low-corrosive media.
Key Findings
1
Corrosion and pitting resistance were assessed in artificial tap water with 1 and 3 wt% Cl− and in NaCl (2.1 wt% Cl−) per ASTM G61 to reveal treatment-dependent differences in metal dissolution and pitting susceptibility.
2
Corrosion behavior and metal dissolution are strongly correlated with measured surface characteristics (topography, roughness, oxide composition).
3
Corrosion resistance and extent of metal dissolution vary with the type of surface treatment applied.
4
Different chemical and mechanical post-processing methods (pickling, clean HIP, Hirtization, shot peening, C.A.S.E.) produce notable differences in microstructure, surface topography, roughness, oxide composition, and barrier properties of L-PBF HIP-treated 316L stainless steel.
5
Mechanical post-processing can modify the near-surface microstructure of AM 316L stainless steel.
6
Surface Cr + Mo content is linked to corrosion performance in low-corrosive media.
7
Surface treatment of L-PBF 316L directly alters both surface chemical composition and surface topology, impacting functional properties.
Research Object
L-PBF (Laser Powder Bed Fusion) additively manufactured HIP-treated 316L stainless steel surfaces subjected to different post-print surface treatments (pickling, clean HIP, Hirtization, shot peening, isotropic super finishing C.A.S.E.)
Research Subject
How different chemical and mechanical post-surface treatments modify surface microstructure, composition, topography and roughness, and how these changes affect corrosion resistance, pitting resistance and metal dissolution/migration in chloride-containing aqueous environments
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2025-08-13
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