Susceptibility of chloride ion concentration, temperature, and surface roughness on pitting corrosion of CoCrFeNi medium‐entropy alloy

Dongpeng Wang, Xin Li, Z. Chen, Shuai Wang, Yuxin Wang, Wei-hong Liu, Weili Li, R. Xue, C. Liu
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引用次数: 7

Abstract

The influence and susceptibility of chloride ion concentration, temperature, and surface roughness on corrosion behavior of single‐phase CoCrFeNi medium‐entropy alloy (MEA) was examined in NaCl solution. Potentiodynamic polarization results revealed that the corrosion performance of the sample deteriorated with an increase of the chloride ion concentration, temperature, and surface roughness. The pitting potential decreased drastically for samples with higher surface roughness. According to electrochemical impedance spectroscopy, the charge transfer resistance decreased when chloride ion concentration, temperature, and surface roughness increased. Scanning electron micrographs also indicated an increased extent of corrosion damage, especially for the sample with higher surface roughness. It is found that the corrosion resistance is closely related to the wettability of samples, and the surface with the highest roughness shows higher hydrophilicity. The combined results suggested that the pitting damage is more sensitive to surface roughness. Our findings provide a further understanding of the corrosion mechanism of MEAs and guide their applications as structural materials.
氯离子浓度、温度和表面粗糙度对CoCrFeNi中熵合金点蚀的影响
研究了氯离子浓度、温度和表面粗糙度对单相CoCrFeNi中熵合金(MEA)在NaCl溶液中的腐蚀行为的影响及其敏感性。动电位极化结果表明,样品的腐蚀性能随着氯离子浓度、温度和表面粗糙度的增加而恶化。对于表面粗糙度较高的样品,点蚀电位急剧下降。电化学阻抗谱分析表明,随着氯离子浓度、温度和表面粗糙度的增加,电荷转移电阻减小。扫描电子显微图也表明腐蚀损伤程度增加,特别是对于表面粗糙度较高的样品。发现耐蚀性与样品的润湿性密切相关,粗糙度最高的表面亲水性更高。综合结果表明,点蚀损伤对表面粗糙度更为敏感。我们的研究结果为进一步了解mea的腐蚀机理和指导其作为结构材料的应用提供了依据。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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