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Phenomena Identification and Ranking Table (PIRT) study for metallic structural materials for advanced High-Temperature reactor

机译:先进高温反应堆金属结构材料的现象识别和排序表(PIRT)研究

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The Fluoride High-Temperature Reactor (FHR) technology promises many benefits including passive safety, proliferation-resistant waste forms, and improved economics. However, selection of reliable structural materials and identification of the possible degradation mechanisms for these is important for the licensure and the safe operation of FHRs. In order to address this task, the Georgia Tech led Integrated Research Project (IRP) hosted a Phenomena Identification and Ranking Table (PIRT) panel of experts to address degradation mechanisms and other materials related issues of importance to the FHRs. Materials, ones that come in contact with FLiBe or FLiNaK molten salts or other related environments like high temperature steam etc., were considered in this PIRT. Focus of this PIRT was the metallic alloys, especially the ones that are permitted for the construction of elevated temperature Class A components by the ASME code. Degradation mechanisms considered in this PIRT included chemical degradation, mechanical degradation, radiation degradation, and synergistic effect of these mechanisms that may negatively impact operations or cause some safety concerns for the major structural components of FHRs. Main components which were considered included vessel and primary piping, primary heat exchangers, steam generator vessel, steam generator tubes, intermediate loop piping, valves and pumps. Welds in all structural components were identified as an important class of material, which varies in composition and properties, and needs more attention. Importance of impurity control in molten fluorides considered for FHR was highlighted throughout PIRT panel discussions. This paper gives a summary of important results from the PIRT panel discussions and report. (C) 2018 Published by Elsevier Ltd.
机译:氟化物高温反应器(FHR)技术有望带来许多好处,包括被动安全性,抗扩散废物形式和改进的经济性。但是,对于FHR的许可和安全操作,选择可靠的结构材料并确定这些材料的可能的降解机制很重要。为了解决此任务,由佐治亚理工学院领导的综合研究项目(IRP)主持了一个由现象识别和排名表(PIRT)组成的专家小组,以探讨降解机制和对FHRs至关重要的其他材料相关问题。在此PIRT中考虑了与FLiBe或FLiNaK熔融盐或其他相关环境(如高温蒸汽等)接触的材料。该PIRT的重点是金属合金,尤其是ASME规范允许用于构造高温A类部件的金属合金。该PIRT中考虑的降解机制包括化学降解,机械降解,辐射降解以及这些机制的协同效应,这些效应可能会对FHR的主要结构部件产生负面影响或引起某些安全隐患。所考虑的主要部件包括容器和主管道,主热交换器,蒸汽发生器容器,蒸汽发生器管,中间回路管道,阀门和泵。所有结构部件中的焊缝均被视为重要的材料类别,其成分和性能各不相同,因此需要更多注意。在整个PIRT小组讨论中,都强调了要进行FHR的熔融氟化物中杂质控制的重要性。本文总结了PIRT小组讨论和报告的重要结果。 (C)2018由Elsevier Ltd.发布

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