The Microstructure and Corrosion Resistance of Inconel 718 Coating by Plasma-Enhanced High-Velocity Arc Spraying

IF 3.2 3区 材料科学 Q2 MATERIALS SCIENCE, COATINGS & FILMS
Hanbing Zhang, Weiwei Liu, Ming Liu, Rui Gao, Baodan Zhang, Shuying Chen, Guozheng Ma, Haidou Wang
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Abstract

The study aimed to investigate the effect of spraying distance on the microstructure and corrosion resistance of Inconel 718 coatings applied using the plasma-enhanced high-velocity arc spraying (PEHAS) technique, especially under the influence of hydrogen plasma gas. For this purpose, the coatings were produced at four different spraying distances: 100, 150, 180, and 200 mm, and the samples obtained were referred to as SA, SB, SC, and SD, respectively. In addition, the microstructure and phase composition of the coatings were investigated, as well as the corrosion behavior of the coatings when immersed for 0-168 h in a 3.5% wt.% NaCl solution. It was determined that the Inconel 718 coatings consisted mainly of Ni-Cr-Fe solid solutions with small amounts of oxides (NiO, Fe2O3, Cr2O3, Nb2O5). The oxide content within the coatings increased with greater spraying distances. Sample SC featured the lowest porosity (0.88 ± 0.08%) and the highest microhardness (505 ± 25 Hv0.1). Electrochemical assessments, including polarization curves and electrochemical impedance spectroscopy (EIS), showed that samples SA, SB, and SC experienced an initial drop followed by a rise in corrosion potential and an initial increase followed by a decrease in corrosion current density during the immersion cycle. In contrast, the corrosion potential of sample SD consistently decreased. Over time, the formation and accumulation of corrosion products with inerts on the coatings surface helped seal the pores and prevent further corrosion. After a comprehensive analysis, it was concluded that sample SC had the most effective corrosion resistance after 168 h of immersion, evidenced by its elevated resistance to pore penetration (Rp), charge transfer (Rdl), and overall impedance modulus.

Abstract Image

等离子体增强高速电弧喷涂Inconel 718涂层的组织与耐蚀性
研究了等离子体增强高速电弧喷涂技术(PEHAS)喷涂距离对Inconel 718涂层组织和耐蚀性的影响,特别是在氢等离子体气体的影响下。为此,在100、150、180和200 mm四种不同的喷涂距离下生产涂层,获得的样品分别被称为SA、SB、SC和SD。此外,研究了涂层的显微组织和相组成,以及涂层在3.5% wt.% NaCl溶液中浸泡0 ~ 168 h时的腐蚀行为。结果表明,Inconel 718涂层主要由Ni-Cr-Fe固溶体和少量的氧化物(NiO、Fe2O3、Cr2O3、Nb2O5)组成。涂层内氧化物含量随喷涂距离的增加而增加。样品SC的孔隙率最低(0.88±0.08%),显微硬度最高(505±25 Hv0.1)。包括极化曲线和电化学阻抗谱(EIS)在内的电化学评估表明,在浸泡循环中,样品SA、SB和SC的腐蚀电位先下降后上升,腐蚀电流密度先上升后下降。相反,样品SD的腐蚀电位持续下降。随着时间的推移,具有惰性的腐蚀产物在涂层表面的形成和积累有助于密封孔隙,防止进一步腐蚀。经过综合分析,SC样品在浸泡168 h后具有最有效的耐腐蚀性,其抗孔隙渗透(Rp),电荷转移(Rdl)和总阻抗模量均有所提高。
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来源期刊
Journal of Thermal Spray Technology
Journal of Thermal Spray Technology 工程技术-材料科学:膜
CiteScore
5.20
自引率
25.80%
发文量
198
审稿时长
2.6 months
期刊介绍: From the scientific to the practical, stay on top of advances in this fast-growing coating technology with ASM International''s Journal of Thermal Spray Technology. Critically reviewed scientific papers and engineering articles combine the best of new research with the latest applications and problem solving. A service of the ASM Thermal Spray Society (TSS), the Journal of Thermal Spray Technology covers all fundamental and practical aspects of thermal spray science, including processes, feedstock manufacture, and testing and characterization. The journal contains worldwide coverage of the latest research, products, equipment and process developments, and includes technical note case studies from real-time applications and in-depth topical reviews.
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