钝化316L不锈钢表面聚氨酯/聚吡咯复合涂层在盐水介质中的防腐作用

Arumugam Madhan Kumar, A. Adesina, Jothi Veeramani, M. Rahman, J. S. Nirmal Ram
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引用次数: 4

摘要

由表面改性和随后的保护涂层组成的混合处理在各种结构金属材料的缓蚀方法中得到了广泛的关注。本研究旨在研究聚氨酯(PU)涂层在316L不锈钢(SS)试件上增强防腐性能的方法。这是通过两步策略处理来实现的,首先是电化学钝化,然后在PU复合涂层上沉积不同进料比的合成聚吡咯(PPy)纳米颗粒。采用表面表征技术和NaCl溶液中的动电位极化试验,系统研究了不同外加电压对钝化SS表面特征和腐蚀行为的影响。表面形态学图像显示钝化表面有多孔结构。从地形表面结果可以推断,施加电压为5 V时,表面粗糙度均匀。红外光谱结果证实了PU/PPy复合涂层的形成以及PU和PPy之间的分子间化学相互作用。此外,腐蚀测量证实了PU/30PPy涂层的耐蚀性有所提高,电荷转移电阻Rct (1.0869 × 107 Ω cm2)和膜电阻Rf (2.258 × 105 Ω cm2)值更高,腐蚀icorr (4.7 × 10−3µA cm−2)值最低。综上所述,钝化表面增强了PU涂层SS的耐腐蚀性能,并且随着PPy颗粒的加入,这种性能进一步提高。
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Hybrid Polyurethane/Polypyrrole Composite Coatings on Passivated 316L SS for Surface Protective Action against Corrosion in Saline Medium
Hybrid treatments consisting of surface modification and subsequent protective coatings have gained extensive attention among corrosion mitigation approaches for a wide variety of structural metallic materials. This study aims to review the enhancement of the corrosion protection performance of polyurethane (PU) coatings on 316L stainless steel (SS) specimens. This was achieved via a two-step strategic treatment, primarily by electrochemical passivation and subsequent deposition of PU composite coatings with the different feed ratio of synthesized polypyrrole (PPy) nanoparticles. The effect of different applied voltage on the surface features and the corrosion behavior of the passivated SS surfaces was systematically investigated using surface characterization techniques and a potentiodynamic polarization test in a NaCl solution. Surface morphological images revealed the porous structure on the passivated surface. It is inferred from the topographical surface results that homogeneous surface roughness was achieved with the applied voltage of 5 V. Infra-red spectroscopic results validate the formation of PU/PPy composite coatings and the intermolecular chemical interaction between the PU and PPy moieties. Furthermore, corrosion measurements corroborate the improved corrosion resistance of PU/30PPy coatings with higher values of charge transfer resistance, Rct (1.0869 × 107 Ω cm2), and film resistance, Rf (2.258 × 105 Ω cm2), with the lowest values of corrosion, icorr (4.7 × 10−3 µA cm−2) compared to that of the PU/Bare specimen. In conclusion, it is confirmed that the passivated surface enhances the corrosion resistance performance of PU coated SS, and this performance is further increased with the incorporation of PPy particles.
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