Aug 2026· Applied Sciences· Vol 16, pp. 7778· 0 citations· 45 references
Abstract
In powder-based additive manufacturing (AM), thermal exposure during processing can modify powder surface chemistry and promote oxide growth, even under inert atmospheres from residual oxygen contamination. This study investigates the effect of thermal oxidation on the surface chemistry and triboelectric charging behavior of three AM metal alloy powders: AlSi10Mg, 316L stainless steel (SS 316L), and Ti6Al4V. The work examines the evolution of the oxide layer during baking at 100 and 300 °C using triboelectric charging corroborated by X-ray photoelectron spectroscopy (XPS), diffuse-reflectance spectroscopy, and work-function measurements. The results show that heating modifies the surface oxide state of all powders, with changes dependent on the alloy composition and baking temperature. For AlSi10Mg, heating modified the Al2O3-rich surface oxide, with changes consistent with increased oxide ordering and γ-Al2O3-like characteristics, with the work function increasing from 4.34 ± 0.01 eV in the as-received (AR) condition to 4.92 ± 0.03 eV after baking at 300 °C. The corresponding triboelectric n-exponent increased from 0.91 to 1.38. For SS 316L, transformation of Cr(OH)3 to Cr2O3 reduced triboelectric charge accumulation, while the oxygen concentration increased from 49.92 to 54.87 at.% and the work function decreased from 5.74 ± 0.02 to 5.28 ± 0.04 eV after baking at 300 °C. This reflected a drop in the n-exponent from 0.82 for AR to 0.73 at 300 °C. For Ti6Al4V, charging variations were associated with titanium oxide evolution and surface modifications consistent with rutile-related titanium oxide characteristics, with the work function increasing from 5.33 ± 0.01 to 5.44 ± 0.03 eV after baking at 300 °C. The corresponding triboelectric n-exponent increased from 0.49 to 0.52. Overall, triboelectric charging is a sensitive approach for detecting thermally driven surface oxide modifications in additive manufacturing powders.
For nickel–titanium products intended for medical applications, surface stability in physiological environments is one of the key factors determining the long-term performance of the material. Despite the presence of a naturally formed passive layer, TiNi alloys may undergo corrosion degradation, accompanied by changes...
E. A. Bolshevich, S. G. Anikeev· Materials. Technologies. Des...· 0 citations
Alloy steel scale is a large-tonnage metallurgical waste that represents a potential environmental hazard during storage and disposal. This study investigates its recycling as a component of reactive powder mixtures for producing porous cermets by self-propagating high-temperature synthesis (SHS). Titanium carbide was...
M. Kanapinov, Y. Kozhakhmetov, G. Yerbolatova et al.· Materials· 0 citations
The surface chemistry of additively manufactured aluminum alloys plays a critical role in corrosion resistance and joining with external materials. In this work, the near-surface elemental composition of a laser powder bed fusion (PBF-LB/M) processed Al-Mg-Si-Zr alloy was characterized by glow discharge optical emissio...
Zheng-Qing Wei, Philip Grimm, Inna Plyushchay et al.· 0 citations
The present study explores the effect of an electrodeposited nickel layer on Inconel-718 alloy produced using different additive manufacturing (AM) routes, like Laser Powder Bed Fusion (L-PBF), Electron Beam Powder Bed Fusion (EB-PBF), and Laser-Directed Energy Deposition (L-DED). Comparative analyses were conducted...
S. Arulvel, J. Kandasamy, P. Kumaravelu et al.· Journal of materials enginee...· 0 citations
Aluminum alloys are indispensable in industrial applications due to their excellent mechanical properties, but they are prone to corrosion in humid environments. Micro-arc oxidation (MAO) technology can form a ceramic-like oxide layer on their surface, significantly enhancing corrosion resistance and other properties....
Yao Du, Song-Tao Zhu, Ying Xu et al.· Corrosion· 0 citations
This study develops advanced electrochemical synthesis methods for high-performance hard anodic coatings on Al-Cu-Mg alloy (AA2024/D16) substrates. The research systematically investigates the synergistic effects of chemical electrolyte modification via hydrogen peroxide or ozone additions, high-voltage pulse hard anod...
V. Hvozdetskyi, D. Yaremchuk· PROBLEMS OF TRIBOLOGY· 0 citations
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