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Effect of Alloying Nitrogen on Crevice Corrosion of Austenitic Stainless Steels

机译:氮合金化对奥氏体不锈钢缝隙腐蚀的影响

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The effect of alloying nitrogen was investigated on crevice corrosion of the 10%Mn-25%Ni-25%Cr-(0~0.36)%N austenitic steels. From the immersion test results for the multiple crevice specimens in natural seawater, the probability of the occurrence of the crevice corrosion was not dependent upon the nitrogen content, while the penetration depth was decreased with increased nitrogen content. The electrochemical measurements were carried out to clarify the effect of nitrogen on each stage: initiation, propagation and repassivation. The acidification of anolyte and the active dissolution were suppressed by the addition of nitrogen. Also, the transient current for passivation after polishing revealed that the nitrogen kinetically accelerated the passivation in acidic chloride environments. On the other hand, the nitrogen was found to have no effect on the depassivation pH (pH_D) and the repassivation potential (E_R). The concentration of ammonium ion in the anolyte was increased with increasing nitrogen content. The beneficial effect of nitrogen was considered to be in prolonging the incubation period and decreasing the penetration rate by' the formation of ammonium ion from the alloyed nitrogen.
机译:研究了氮合金化对10%Mn-25%Ni-25%Cr-(0〜0.36)%N奥氏体钢缝隙腐蚀的影响。从天然海水中多个缝隙试样的浸入测试结果来看,缝隙腐蚀发生的可能性与氮含量无关,而渗透深度随氮含量的增加而降低。进行电化学测量以阐明氮在每个阶段的影响:引发,扩散和再钝化。通过添加氮抑制了阳极电解液的酸化和活性溶解。同样,抛光后钝化的瞬态电流表明,在酸性氯化物环境中,氮在动力学上加速了钝化。另一方面,发现氮对钝化pH值(pH_D)和钝化电位(E_R)没有影响。阳极液中铵离子的浓度随氮含量的增加而增加。氮的有益作用被认为是通过从合金化的氮形成铵离子而延长了孵育时间并降低了渗透速率。

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