Effect of Irradiation on Corrosion Behavior of 316L Steel in Lead-Bismuth Eutectic with Different Oxygen Concentrations

IF 1.3 Q3 INSTRUMENTS & INSTRUMENTATION
N. Okubo, Y. Fujimura, Masakatsu Tomobe
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引用次数: 4

Abstract

In an accelerator-driven system (ADS), the beam window material of the spallation neutron target is heavily irradiated under severe conditions, in which the radiation damage and corrosion co-occur because of high-energy neutron and/or proton irradiation in the lead–bismuth flow. The materials used in ADSs must be compatible with the liquid metal (lead–bismuth eutectic (LBE)) to prevent issues such as liquid metal embrittlement (LME) and liquid metal corrosion (LMC). This study considers the LMC behavior after ion irradiation of 316L austenitic steel for self-ion irradiations followed by the corrosion tests in LBE with critical oxygen concentration. The 316L samples were irradiated by 10.5 MeV-Fe3+ ions at a temperature of 450 °C, up to 50 displacements per atom (dpa). After the corrosion test performed at 450 °C in LBE with low oxygen concentration, a surface of the nonirradiated area was not oxidized but appeared with locally corrosive morphology, Ni depletion, whereas an iron/chromium oxide layer fully covered the irradiated area. In the case of the corrosion surface with high oxygen concentration in LBE, the surface of the nonirradiated area was covered by an iron oxide layer only, whereas the irradiated area was covered by the duplex layers comprising iron and iron/chromium oxides. It is suggested that irradiation can enhance the oxide layer formation because of the enhancement of Fe and/or oxygen diffusion induced by the radiation defects in 316L steel.
辐照对316L钢在不同氧浓度铅铋共晶中腐蚀行为的影响
在加速器驱动系统(ADS)中,散裂中子靶的束窗材料在恶劣的条件下受到强烈的辐射,在铅铋流中由于高能中子和/或质子的照射,辐射损伤和腐蚀同时发生。ads中使用的材料必须与液态金属(铅铋共晶(LBE))兼容,以防止液态金属脆化(LME)和液态金属腐蚀(LMC)等问题。研究了316L奥氏体钢自离子辐照后的LMC行为,并在临界氧浓度的LBE中进行了腐蚀试验。在450°C的温度下,用10.5 MeV-Fe3+离子辐照316L样品,每原子最多50个位移(dpa)。在450°C低氧浓度的LBE中进行腐蚀试验后,未辐照区表面未被氧化,但出现局部腐蚀形态,Ni耗尽,而铁/铬氧化层完全覆盖了辐照区。在LBE中氧浓度高的腐蚀表面,未辐照区表面仅被氧化铁层覆盖,而辐照区表面由铁和铁/铬氧化物组成的双相层覆盖。结果表明,辐照可以促进316L钢氧化层的形成,这是由于辐照缺陷导致铁和/或氧的扩散增强所致。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
2.80
自引率
28.60%
发文量
27
审稿时长
11 weeks
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