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ANALYTICAL STUDY ON FAILURE MECHANISMS BY EXTREME LOADINGS UNDER DESIGN EXTENSION CONDITIONS

机译:设计扩展条件下极限载荷破坏机理的解析研究。

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As the important lessons learned from Fukushima-nuclear power plant accident, mitigation of failure consequences and prevention of catastrophic failure were strongly recognized against severe accidents (SA) and excessive earthquake conditions. To improve mitigation measures and accident management, clarification of failure behaviors with locations is premised under design extension conditions (DEC) such as severe accidents and earthquakes. Design extension conditions induce some different failure modes from design conditions. Furthermore, the best estimation for these failure modes is required for preparing countermeasures and management. Therefore, this study focused on identification failure modes under design extension conditions. To realize best estimation, it is prerequisite to clarify failure modes with ultimate structural strength under extreme loadings such as very high temperature, pressure and great earthquakes. The authors attempt to clarify unclear failure mechanisms by extreme loadings under DEC using numerical simulations. In this paper, relations between failure modes and extreme loadings were investigated by the numerical simulation using the cylindrical model which is a typical structure of nuclear reactor structures(for example, Formed Head, Nozzle, Instrument Tube, Guide Tube, Support Skirt, etc.). Moreover, it was shown that failure modes change with an effect of structural discontinuities. Local failure dominates than ductile fracture at locally constraint portions where stress triaxiality becomes high.
机译:作为从福岛 - 核电站事故中学到的重要教训,对严重事故(SA)和过度地震条件强烈认识到失败后果和防止灾难性失败的缓解。为改善缓解措施和事故管理,在设计延伸条件(DEC)等严重事故和地震下,有所面积的失败行为的澄清。设计扩展条件从设计条件诱导一些不同的故障模式。此外,准备对策和管理需要对这些故障模式进行最佳估计。因此,本研究专注于设计扩展条件下的识别失效模式。为了实现最佳估计,可以在极端载荷下阐明具有极限结构强度的故障模式,如非常高的温度,压力和大地震。作者试图通过使用数值模拟的DEC下的极端负载来阐明不明确的失效机制。本文采用了使用圆柱形模型的数值模拟研究了失效模式和极端负荷的关系,该模拟是核反应堆结构的典型结构(例如,形成的头部,喷嘴,仪器管,导管,支撑裙等。 )。此外,结果表明,失效模式随结构不连续性的影响而变化。局部故障在局部约束部分的延性骨折中占主导地位,其中应力三轴分度变高。

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