An Update on the Investigation of Fracture Toughness Properties of the High Flux Reactor Vessel From Surveillance Test Campaign in 2017

M. Kolluri, F. Wilde, H. Nolles, A. D. Jong
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Abstract

The reactor vessel of the High Flux Reactor (HFR) in Petten has been fabricated from Al 5154-O alloy grade with a maximum Mg content of 3.5 wt. %. The vessel experiences large amount of neutron fluences (notably at hot spot), of the order of 1027 n/m2, during its operational life. Substantial damage to the material’s microstructure and mechanical properties can occur at these high fluence conditions. To this end, a dedicated surveillance program: SURP (SURveillance Program) is executed to understand, predict and measure the influence of neutron radiation damage on the mechanical properties of the vessel material. In the SURP program, test specimens fabricated from representative HFR vessel material are continuously irradiated in two specially designed experimental rigs. A number of surveillance specimens are periodically extracted and tested to evaluate the changes in fracture toughness properties of the vessel as function neutron fluence. The surveillance testing results of test campaigns performed until 2015 were published previously in [1, 2]. The current paper presents fracture toughness and SEM results from the recent surveillance campaign performed in 2017. The fracture toughness specimen tested in this campaign received a thermal neutron fluence of 13.56 x1026 n/m2, which is ∼8.9 × 1025 n/m2 more than the thermal fluence received by the specimen tested in SURP 2015 campaign. These results from this campaign have shown no change in the fracture toughness from the values measured in the previous SURP campaign. The SEM observations are performed to study the fracture surface, to measure (by WDS) the transmutation Si formed near crack tip and to investigate various inclusions in the microstructure. SEM fracture surface investigation revealed a tortuous (bumpy) fracture surface constituting micro-scale dimples over majority of the fracture area. Islands of cleavage facets and secondary cracks have been observed as well. EDS analysis of various inclusions in the microstructure revealed presence of Fe rich inclusions and Mg-Si rich precipitates. Additionally, inclusions rich in Al-Mg-Cr-Ti were identified. Finally, changes in mechanical properties of Al 5154-O alloy with an increase in neutron fluence (or transmutation Si) are discussed in correlation with SEM microstructure and fracture morphology observed in SEM. TEM investigation of precipitate microstructure is ongoing and those results will be published in future.
2017年监测试验高通量反应堆容器断裂韧性研究进展
Petten高通量反应器(HFR)的反应器容器由Al 5154-O合金级制造,最大Mg含量为3.5 wt. %。在其使用寿命期间,该容器经历了大量的中子影响(特别是在热点处),约为1027 n/m2。在这些高通量条件下,材料的微观结构和机械性能会受到严重破坏。为此,执行了一个专门的监视程序:SURP(监视程序),以了解、预测和测量中子辐射损伤对容器材料机械性能的影响。在SURP程序中,由代表性HFR容器材料制成的试件在两个专门设计的实验台上连续辐照。一些监测样本定期提取和测试,以评估随中子通量的容器断裂韧性特性的变化。截至2015年开展的检测活动的监测检测结果已在之前的文献[1,2]中公布。本文介绍了2017年最近进行的监测活动的断裂韧性和SEM结果。在该活动中测试的断裂韧性样品收到的热中子通量为13.56 × 1026 n/m2,比在SURP 2015活动中测试的样品收到的热通量高~ 8.9 × 1025 n/m2。该作业的结果显示,与之前的SURP作业相比,断裂韧性没有变化。利用扫描电镜对断口表面进行了研究,用WDS测量了裂纹尖端附近的相变Si,并研究了显微组织中的各种夹杂物。扫描电镜断裂面调查显示,在大部分断裂区域,弯曲(凹凸不平)的断裂面构成了微尺度的韧窝。还观察到解理面岛和次生裂缝。对各种夹杂物的微观结构进行EDS分析,发现存在富Fe夹杂物和富Mg-Si相。此外,还鉴定出富含Al-Mg-Cr-Ti的包裹体。最后,讨论了Al - 5154-O合金力学性能随中子通量(或嬗变Si)的增加而发生的变化,以及SEM显微组织和断口形貌的关系。对析出相组织的透射电镜研究正在进行中,这些结果将在未来发表。
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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