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Development of innovative steels and thermo-mechanical treatments for DEMO high operating temperature blanket options

机译:开发用于DEMO高工作温度防护层选件的创新钢和热处理技术

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Highlights ? Effectiveness of “Ausforming” TMT to improve tensile and creep properties. ? No direct correlation between tensile and creep properties for the same material. ? Susceptibility of the DBTT to tempering temperature and W content. ? Conservation of room temperature ductility hinders the enhancement of creep resistance. Abstract Among the options currently taken into account for the realization of the first DEMO reactor there are the “helium-cooled” and the “dual coolant” breeding blanket. Therefore the high temperature (650?°C) behavior of the proposed innovative martensitic alloys should be improved, namely the frame of the hereby reported activities is the development of martensitic alloys more resistant to creep, suitable to tolerate such a high operating temperature. In order to improve the high temperature mechanical properties, concerning the alloy design strategies, two alternative routes are proposed; the effect of Nitrogen and Tungsten increase are taken into account as well as the addition of carbo-nitride forming elements, like Vanadium, combined with the “ausforming” thermo-mechanical treatments. Two alloys have been designed and a special thermo-mechanical treatment on Eurofer 97-2 is proposed. The “ausforming” treatment, consisting in a sort of hot-working at a lower temperature with respect to the austenitization one after the austenitization stage, is aimed at the achievement of a beneficial dislocation “pinning” at high temperature due to carbide precipitation. Generally the improvement of tensile properties is associated to the hardening of the steel due to dislocation network and precipitation effects. This hardening is accompanied by a DBTT increase to markedly higher values with respect to Standard Eurofer. The proposed materials should be, in any case, at least room temperature ductile in order to undergo safe manufacturing and assembling processes. Therefore the issue of the DBTT increase has been taken into account by tuning the tempering temperature adequately. The two variations from chemical composition of Eurofer 97 have been casted and the thermo-mechanical treatments have been selected by means of SEM and hardness measurements to tune grain size and precipitation of carbides. The outcomes of the preliminary mechanical characterization (tensile, creep and impact tests) will be discussed in this paper.
机译:强调 ? “ Ausforming” TMT的有效性,可改善拉伸性能和蠕变性能。 ?相同材料的拉伸性能和蠕变性能之间没有直接关系。 ? DBTT对回火温度和W含量的敏感性。 ?保持室温延展性阻碍了抗蠕变性的提高。摘要当前考虑实现第一个DEMO反应堆的选择中有“氦冷却”和“双冷却液”繁殖毯。因此,应该改进提出的创新马氏体合金的高温(650℃)性能,即特此报告的活动框架是开发出更耐蠕变,适合于承受如此高的工作温度的马氏体合金。为了提高高温力学性能,关于合金的设计策略,提出了两种替代方法:考虑了氮和钨增加的影响,以及添加了碳氮化物形成元素(如钒),并结合了“奥氏体”热机械处理。已经设计了两种合金,并提出了在Eurofer 97-2上进行特殊的热机械处理。 “奥氏体化”处理包括在奥氏体化阶段之后相对于奥氏体化在较低温度下进行的一种热加工,其目的在于实现由于碳化物沉淀而在高温下实现有益的位错“钉扎”。通常,由于位错网络和沉淀效应,拉伸性能的改善与钢的硬化有关。与标准Eurofer相比,这种硬化伴随DBTT增加到明显更高的值。在任何情况下,建议的材料应至少在室温下具有延展性,以便进行安全的制造和组装过程。因此,已经通过适当调节回火温度来考虑DBTT增加的问题。已铸造出Eurofer 97的两种化学成分,并通过SEM和硬度测量选择了热机械处理方法,以调节晶粒尺寸和碳化物的析出。初步的机械表征(拉伸,蠕变和冲击测试)的结果将在本文中进行讨论。

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