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QUANTIFICATION OF HYPO EUTECTIC B-C-Fe-O UNDER SEVERE ACCIDENT CONDITIONS IN NUCLEAR MATERIAL BY EPMA

机译:EPMA对核材料中严重事故条件下低共晶B-C-Fe-O的定量

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In the framework of a JAEA and CEA collaboration agreement, experimental and modelling studies have been focussed on the investigation of the solidification behaviour of a melt representative of the in-vessel conditions of Fukushima Dai'chi Unit 2 (1-F2). Boron was initially present in Unit 1-F2 under B_4C phase (control rod). During and after the accident, boron was able to react with the different oxide/metallic melts to form complex liquid mixtures and then solid phases after cooling (possible eutectic phase). The eventual presence of boron in the solid phases is a key point for the future corium extraction operations in Fukushima Daiechi 1-F2 NPP and for the material storage options, to accurately evaluate the potential risk of re-criticality whatever the configuration. This contribution focussed on the interaction between boron and steel. It concerned three interactive thermal tests of boron oxide and boron carbide samples with iron, in order to identify the Fe-C-B system formed at high temperature. Small-scale experiments were carried out at CEA Cadarache (PLINIUS/VITI) to characterise and model the solidification of the melt for materials containing B-C-Fe-O elements under different conditions representative of SA scenarios. Fe, B4C, Fe_2O_3, and/or B_2O_3 powders were heat-treated in an inductive furnace with the material compositions and temperature histories determined from the hypothetical scenario of the 1-F2 accident. Characterisation of the microstructure and distribution of boron in the solidified melt was then investigated using SEM/EDS with a field emission gun. The analyses of eutectic compositions in the B-C-Fe-0 system were carried out by EPMA /WDS. XRD was used to allow and confirm the potential phases. EPMA/WDS was performed taking into account the chemical shift of boron and carbon in the different states of the material detected by using LPC3 and PC2 crystal. The results indicated that the final solid is separated into metal phases (Fig. 1) based on Fe with borides or boron-carbides compounds or solid solutions, and a vitrified part with oxide phase formed from B_2O_3. The following solid phase have been identified by SEM/EPMA: Fe + Fe_2B and eutectic formation as Fe_3(B,C), Fe_(23)(B,C)_6 included in the metal matrix. The oxide part, which was a vitrified solid based on XRD spectra, was partially contaminated by the crucible material in alumina, consisting of mixed oxides of Al_2O_3-B_2O_3-FeO_x compositions and small precipitates of pure Fe. XRD confirmed the presence of a metallic phase (cubic iron with dendritic microstructure), a tetragonal Fe_2B and a cubic Fe_(23)(C,B)_6 with eutectic microstructure in agreement with SEM/EPMA. A measurement of the amorphous structure was observed at the low angle may be the result of the BO_(1.5)-rich oxide phase measured by EPMA. The identification of the formed solids is also important because it will play an important role for the decommissioning of Fukushima Daiichi reactors.
机译:在JAEA和CEA合作协议的框架内,实验和模型研究的重点是对代表福岛第一核电站2(1-F2)容器内条件的熔体的凝固行为进行研究。硼最初存在于B_4C相(控制棒)下的1-F2单元中。在事故期间和之后,硼能够与不同的氧化物/金属熔体反应,形成复杂的液体混合物,然后在冷却后形成固相(可能为共晶相)。固相中最终存在的硼是福岛大江1-F2核电厂未来进行Cor提取操作以及材料存储选项的关键点,以准确评估无论何种配置的重新临界的潜在风险。该贡献集中在硼与钢之间的相互作用上。它涉及到氧化硼和碳化硼样品与铁的三个交互式热测试,以鉴定在高温下形成的Fe-C-B系统。在CEA Cadarache(PLINIUS / VITI)进行了小型试验,以表征和模拟包含SA情景的不同条件下含B-C-Fe-O元素的材料的熔体凝固。 Fe,B4C,Fe_2O_3和/或B_2O_3粉末在感应炉中进行了热处理,其材料组成和温度历史记录是根据1-F2事故的假想场景确定的。然后使用带有场发射枪的SEM / EDS研究了凝固熔体中硼的微观结构和分布特征。通过EPMA / WDS对B-C-Fe-0系统中的共晶成分进行分析。 XRD被用来允许和确认潜在的阶段。在进行EPMA / WDS时,考虑到了使用LPC3和PC2晶体检测到的材料在不同状态下硼和碳的化学位移。结果表明,最终的固体与硼化物或碳化硼化合物或固溶体分离成基于铁的金属相(图1),以及由B_2O_3形成的氧化物相的玻璃化部分。通过SEM / EPMA已鉴定出以下固相:Fe + Fe_2B和共晶形成为金属基质中所含的Fe_3(B,C),Fe_(23)(B,C)_6。氧化物部分是基于XRD光谱的玻璃化固体,被氧化铝中的坩埚材料部分污染,该坩埚材料由Al_2O_3-B_2O_3-FeO_x组成的混合氧化物和少量纯Fe沉淀组成。 XRD证实与SEM / EPMA一致,存在金属相(具有树枝状显微结构的立方铁),四方Fe_2B和具有共晶显微结构的立方Fe_(23)(C,B)_6。在低角度观察到无定形结构的测量可能是通过EPMA测量的富含BO_(1.5)的氧化物相的结果。形成的固体的鉴定也很重要,因为它将对福岛第一核反应堆的退役发挥重要作用。

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