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Experimental simulation of crevice corrosion of a functionally graded composite system of F91 and Fe-12Cr-2Si exposed to high-temperature lead-bismuth eutectic coolant

机译:F91和Fe-12Cr-2si功能梯度复合体系暴露于高温铅铋共晶冷却剂缝隙腐蚀的实验模拟

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摘要

In a system in which metal corrosion is of concern to its long-term structural integrity, crevice corrosion can be a significant cause of damage. Small crevices in a metal exposed to a working fluid (such as a reactor's coolant) may be prone to the development of a localized, aggressive reducing environment. If the metal relies on a passivating layer of oxides for corrosion protection, it may be vulnerable to corrosion attack within the crevice due to a drastically reduced oxygen potential and low pH. Furthermore, in a liquid metal environment, the reducing conditions combined with typically high solubilities of alloy components in the liquid metal can result in severe, localized crevice corrosion that surpasses that which might occur in the aqueous environment of a LWR. In this study, F91 and Fe-12Cr-2Si, two alloys used in previous experiments were exposed to lead-bismuth eutectic maintained at 715*C with a cover gas of pure hydrogen for thirty hours. The conditions were kept extremely reducing, via the initial removal of oxygen and the subsequent maintenance of an environment of pure hydrogen gas, in order to simulate conditions inside a crevice. Following the experiment, the materials were analyzed for corrosion damage via optical microscopy, scanning electron microscopy, and energy-dispersive x-ray spectroscopy. F91 was found to have sustained significant corrosion damage, as expected based on previous experiments, in addition to chromium depletion at the sample surface. Fe-12Cr-2Si was also found to have sustained corrosion damage as a result of lead-bismuth attack. No significant oxide formation or alloying element depletion was observed at the Fe-12Cr-2Si surface. The observed damage in Fe-12Cr-2Si was not entirely expected due to its excellent corrosion resistance in less reducing environments. This raises the concern that crevice corrosion could be an important damage mechanism in applications of the Fe-12Cr-2Si/F91 composite if crevices are present, either due to design flaws or due to cracking during service.
机译:在金属腐蚀与其长期结构完整性有关的系统中,缝隙腐蚀可能是造成损坏的重要原因。暴露于工作流体(例如反应堆冷却剂)的金属中的细小裂缝可能易于形成局部的,腐蚀性的还原环境。如果金属依赖于氧化物的钝化层进行腐蚀保护,则由于氧势的急剧降低和低pH值,它可能容易受到缝隙内腐蚀的攻击。此外,在液态金属环境中,还原条件与液态金属中合金成分的典型高溶解度相结合,可导致严重的局部缝隙腐蚀,其超过在轻水堆水环境中可能发生的缝隙腐蚀。在这项研究中,将先前实验中使用的两种合金F91和Fe-12Cr-2Si暴露于保持在715 * C的铅-铋共晶下,并用纯氢气作为覆盖气体,历时30小时。为了模拟缝隙内的条件,通过最初除去氧气并随后维持纯氢气环境,使条件得以极大降低。实验之后,通过光学显微镜,扫描电子显微镜和能量色散X射线光谱分析了材料的腐蚀损伤。根据先前的实验,发现F91除样品表面的铬耗竭外,还遭受了严重的腐蚀破坏。还发现由于铅-铋侵蚀,Fe-12Cr-2Si具有持续的腐蚀破坏。在Fe-12Cr-2Si表面未观察到明显的氧化物形成或合金元素耗尽。由于Fe-12Cr-2Si在还原性较低的环境中具有出色的耐腐蚀性,因此不能完全预期到Fe-12Cr-2Si的损坏。这就引起了人们的担忧:如果存在缝隙,缝隙腐蚀可能是Fe-12Cr-2Si / F91复合材料在应用中的一个重要破坏机理,这可能是由于设计缺陷或维修过程中的裂纹所致。

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    Ferry Sara Elizabeth;

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  • 年度 2011
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