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Comparison of selective oxidation in Ni-based alloys exposed to PWR primary water and Rhines Pack environments

机译:暴露于PWR初级水和莱茵包装环境的Ni基合金中选择性氧化的比较

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A mechanistic understanding of corrosion andoxidation processes is crucial to ensure long-termresistance to stress corrosion cracking of Ni-basedstructural alloys in PWR primary and secondarysystems. Aqueous corrosion of complex Ni-basedalloys under PWR water conditions as well asgaseous oxidation of low-solute Ni binary alloys athigh temperatures (>800 °C) have been studiedextensively. However, a significant knowledge gapexists between response of Ni-based alloys inaqueous and gaseous environmental conditions.Selective oxidation at different temperatures wasinvestigated in a series of gaseous Rhines Packexperiments for a high-purity Ni-5Cr binary alloyand a commercial Ni-18Cr-9Fe Alloy 600. Focusedion beam milling enabled the extraction of sitespecificspecimens containing high-energy grainboundaries. Analytical transmission electronmicroscopy was employed to analyze themicrostructure and chemical composition of theresulting localized oxidation. The oxidationmechanism in the gaseous Rhines Pack atmosphereat 420 °C included the formation of a protective Croxidecap above grain boundaries in all cases. Athigher temperatures (600 and 800 °C), penetrativeintergranular and transgranular internal oxidationwas observed. Direct comparisons are made tocorrosion response for these same materials insimulated PWR primary water at 320-360 °C. Theseresults reveal a temperature dependence for gaseousoxidation and indicate mechanistic differencesbetween aqueous and gaseous degradation in Ni-Cralloys. These results imply that selectiveintergranular corrosion in PWR water is governed byprocesses beyond mere oxidation. Consideration ofcomplex corrosion/dissolution processes at surfacesand in open cracks is essential for the betterunderstanding of stress corrosion crackingmechanisms in PWR primary water.
机译:对腐蚀的机械理解氧化过程至关重要,以确保长期Ni基应力腐蚀破裂的抵抗力PWR初级和中学的结构合金系统。复杂Ni的水性腐蚀PWR水条件下的合金以及低溶质Ni二元合金的气态氧化已经研究过高温(> 800°C)广泛。但是,重要的知识差距存在于Ni基合金的响应之间的存在水性和气态环境条件。不同温度的选择性氧化是在一系列气态校鸣包中调查高纯度Ni-5CR二元合金的实验和商业Ni-18cr-9Fe合金600。聚焦离子束铣削使临时的提取含有高能晶粒的标本边界。分析传输电子使用显微镜分析微观结构和化学成分导致局部氧化。氧化气体校鸣包气氛中的机制在420℃下,包括形成保护性十字氧化物在所有情况下谷物边界上方的帽。在更高的温度(600和800°C),穿透晶间和跨晶内氧化被观测到。直接比较这些相同材料的腐蚀响应模拟PWR初级水在320-360°C。这些结果揭示了气态的温度依赖性氧化并表明机械差异Ni-Cr的水性和气态降解之间合金。这些结果意味着选择性PWR水中的晶间腐蚀由超出氧化的过程。考虑在表面的复杂腐蚀/溶解过程在开放的裂缝中对于更好的裂缝至关重要了解压力腐蚀裂缝PWR初级水中的机制。

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