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Predicting SCC Susceptibility of Austenitic Stainless Steel by Rapid Scratching Electrode Technique

机译:用快速划痕电极技术预测奥氏体不锈钢的SCC敏感性

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The repassivation kinetics of rapidly scratched scars on surfaces of austenitic stainless steel in a chloride solution was examined using an ampero-chronometric method, and their relationship to SCC susceptibility measured by slow strain rate tests (SSRT) was explored. Repassivation kinetics was analyzed in terms of the current density flowing from the scratch, i(t), as function of the charge density that has flowed from the scratch, q(t). The log i(t) has a linear relationship with 1/q(t) in which the slope determined from the linear relationship was found to be very effective as a measure of repassivation rate. The alloy/environment system with a lower value of the slope showed the faster repassivation rate and also caused the thinner and more protective passive film to be formed during the repassivation. With an increase in applied potential, the slope increased gradually and reached asymptotically a limiting value beyond which an inflection point appeared in the log i(t) vs. 1/q(t) plots. The change in the slope with applied potential was correlated with the SCC susceptibility. Based on this correlation, a new method is proposed for the prediction of SCC susceptibility in terms of repassivation kinetics.
机译:使用电流-计时法研究了奥氏体不锈钢在氯化物溶液中迅速划伤的疤痕的再钝化动力学,并通过慢应变速率测试(SSRT)探索了它们与SCC敏感性的关系。根据从划痕流出的电流密度i(t),作为从划痕流出的电荷密度q(t)的函数,分析了再钝化动力学。 log i(t)与1 / q(t)呈线性关系,其中发现根据线性关系确定的斜率非常有效,可作为重新钝化率的量度。具有较低斜率值的合金/环境体系显示出更快的再钝化速率,并且还导致在再钝化期间形成更薄且更具保护性的钝化膜。随着施加电势的增加,斜率逐渐增加并渐近达到极限值,超过该极限值时,对数i(t)与1 / q(t)曲线中出现拐点。斜率随施加电势的变化与SCC磁化率相关。基于这种相关性,提出了一种新的方法,用于从钝化动力学方面预测SCC的敏感性。

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