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首页> 外文期刊>Industrial and organizational psychology >Characterization of PTFE Film on 316L Stainless Steel Deposited through Spin Coating and Its Anticorrosion Performance in Multi Acidic Mediums
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Characterization of PTFE Film on 316L Stainless Steel Deposited through Spin Coating and Its Anticorrosion Performance in Multi Acidic Mediums

机译:通过旋转涂层沉积的316L不锈钢PTFE膜的表征及其在多酸性介质中的抗腐蚀性能

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摘要

Polytetrafluoroethylene (PTFE) was coated on 316L stainless steel (SS) substrate through a spin coating technique to enhance its corrosion resistance properties in hydrochloric acid (HCl) and nitric acid (HNO3) medium. Scanning electron microscopy (SEM) revealed the morphology of the coated and uncoated substrates and showed a uniform and crack-free PTFE coating on 316L SS substrate, while a damaged surface with thick corrosive layers was observed after the electrochemical test on the uncoated sample. However, an increased concentration of HCl and HNO3 slightly affected the surface morphology by covering the corrosive pits. An atomic force microscope (AFM) showed that the average surface roughness on 316L SS and PTFE coating was 26.3 nm and 24.1 nm, respectively. Energy dispersive X-ray spectroscopy (EDS) was used for the compositional analysis, which confirmed the presence of PTFE coating. The micro Vickers hardness test was used to estimate the hardness of 316L SS and PTFE-coated substrate, while the scratch test was used to study the adhesion properties of PTFE coating on 316L SS. The anticorrosion measurements of 316L SS and PTFE-coated substrates were made in various HCl and HNO3 solutions by using the electrochemical corrosion test. A comparison of the corrosion performance of PTFE-coated substrate with that of bare 316L SS substrate in HCl medium showed a protection efficiency (PE) of 96.7%, and in the case of HNO3 medium, the PE was 99.02%, by slightly shifting the corrosion potential of the coated sample towards the anodic direction.
机译:通过旋涂技术在316L不锈钢(SS)底物上涂覆聚四氟乙烯(PTFE),以增强其盐酸(HCl)和硝酸(HNO3)培养基中的耐腐蚀性能。扫描电子显微镜(SEM)揭示了涂覆和未涂覆的基材的形态,并在316LS衬底上显示出均匀和无裂缝的PTFE涂层,而在未涂覆的样品上的电化学测试之后,观察到具有厚腐蚀性层的受损表面。然而,通过覆盖腐蚀性凹坑,HCl和HNO3的浓度增加略微影响了表面形态。原子力显微镜(AFM)显示316LS和PTFE涂层上的平均表面粗糙度分别为26.3nm和24.1nm。能量分散X射线光谱(EDS)用于组合物分析,证实了PTFE涂层的存在。微维克斯硬度试验用于估计316LS和PTFE涂覆的基材的硬度,而划痕试验用于研究PTFE涂层对316LSS的粘附性。通过使用电化学腐蚀试验,在各种HCl和HNO 3溶液中制备了316LS和PTFE涂覆的基材的防腐测量。在HCl培养基中具有裸316LSS衬底的PTFE涂覆衬底的腐蚀性性能的比较显示了96.7%的保护效率(PE),并且在HNO 3培养基的情况下,通过略微移位,PE为99.02%涂覆样品朝向阳极方向的腐蚀电位。

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