锌在氨基磺酸中腐蚀的光谱和表面分析数据-电化学方法

IF 1.1 Q4 ELECTROCHEMISTRY Surface Engineering and Applied Electrochemistry Pub Date : 2023-04-04 DOI:10.3103/S1068375523010131
Mikitha Pais,  Padmalatha Rao
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引用次数: 0

摘要

锌在盐酸、硫酸、氢氧化钠和氯化钠中腐蚀的广泛化学数据可在各自的文献中找到。然而,关于锌在氨基磺酸中的腐蚀的研究很少。本文重点研究了锌在可作为酸洗剂的氨基磺酸中的腐蚀行为。研究在三种不同的酸浓度下进行:0.1,0.25和0.5 M,温度范围为303-323 K。测量是通过动电位极化和电化学阻抗谱技术完成的。此外,应用扫描电子显微镜、能量色散x射线和原子力显微镜技术进行了表面研究。光谱技术如x射线衍射分析和原子吸收光谱被用来证实腐蚀过程。研究表明,腐蚀速率随酸浓度和温度的增加而增加。表面形貌研究和光谱研究证实,在较高的酸浓度下,锌的变质程度增强。
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Spectroscopic and Surface Analysis Data for Corrosion of Zinc in Sulfamic Acid—Electrochemical Approach

Extensive chemical data for the corrosion of zinc in hydrochloric acid, sulphuric acid, sodium hydroxide and sodium chloride are available in the respective literature. However, studies of the corrosion of zinc in sulfamic acid are minimal. The present paper highlights the work on the corrosion behavior of zinc in sulfamic acid, which can be used as a pickling agent. Studies were carried out with three different acid concentrations: 0.1, 0.25, and 0.5 M at a temperature range of 303–323 K. The measurements were done by potentiodynamic polarization and electrochemical impedance spectroscopy techniques. In addition, scanning electron microscopy, energy dispersive X-ray, and atomic force microscopy techniques were applied for the surface studies. Spectroscopic techniques like X-ray diffraction analysis and atomic absorption spectroscopy were used to substantiate the corrosion process. Studies showed that the corrosion rate increased with an increase in the acid concentration and temperature. Surface morphology studies and spectroscopic studies confirmed enhanced deterioration of zinc at higher acid concentrations.

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来源期刊
Surface Engineering and Applied Electrochemistry
Surface Engineering and Applied Electrochemistry Engineering-Industrial and Manufacturing Engineering
CiteScore
1.70
自引率
22.20%
发文量
54
审稿时长
6 months
期刊介绍: Surface Engineering and Applied Electrochemistry is a journal that publishes original and review articles on theory and applications of electroerosion and electrochemical methods for the treatment of materials; physical and chemical methods for the preparation of macro-, micro-, and nanomaterials and their properties; electrical processes in engineering, chemistry, and methods for the processing of biological products and food; and application electromagnetic fields in biological systems.
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