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Studies on Pitting Corrosion of Al-Cu-Li Alloys Part I: Effect of Li Addition by Microstructural Electrochemical In-situ and Pit Depth Analysis

机译:Al-Cu-Li合金点蚀的研究第一部分:微结构电化学原位和坑深分析对添加锂的影响

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摘要

To analyze the effect of lithium and microstructure on the pitting corrosion behavior of aluminum alloys, three types of aluminum alloys were studied via scanning electron microscopy, transmission electron microscopy, electrochemical polarization, and by immersion tests coupled with in-situ observation of pitting and statistical analysis of pit depths measured by surface profilometry. It was found that, with increasing lithium content, the resistance to pitting corrosion was enhanced and the passive range was enlarged. In-situ observation revealed that the development of pitting corrosion exhibited three stages, including an initial slow nucleation stage (Stage I), a fast development stage (Stage II), and a stabilized growth stage (Stage III). Higher lithium content contributed to shorter time periods of Stages I and II, resulting in faster pitting evolution and a higher number of pits. However, the pits were generally shallower for the specimen with the highest lithium content, which is in agreement with the results of the electrochemical analysis.
机译:为了分析锂和微观结构对铝合金点蚀腐蚀行为的影响,通过扫描电子显微镜,透射电子显微镜,电化学极化,浸没试验以及点蚀的原位观察和统计研究了三种类型的铝合金表面轮廓仪测量的坑深的分析。发现随着锂含量的增加,抗点蚀的能力增强,钝化范围扩大。原位观察表明,点蚀的发展表现为三个阶段,包括初始的缓慢成核阶段(第一阶段),快速的发展阶段(第二阶段)和稳定的生长阶段(第三阶段)。较高的锂含量有助于缩短阶段I和阶段II的时间,从而加快点蚀的发展和增加点蚀的数量。但是,对于锂含量最高的样品,凹坑通常较浅,这与电化学分析的结果一致。

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