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Empirical Formulas for the Design of Reinforced Concrete Nuclear Power Plants to Resist the Effects of Wind-Borne Missile Impact: A Critical Review

机译:抵抗风弹导弹撞击的钢筋混凝土核电站设计经验公式:综述

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The U.S. Nuclear Regulatory Commission's (NRC's) NUREG-0800, "Standard Review Plan for the Review of Safety Analysis Reports for Nuclear Power Plants: LWR Edition-Design of Structures, Components, Equipment, and Systems," and the U.S. Department of Energy's (DOE's) DOE-STD-1020-2016, "Natural Phenomena Hazards Analysis and Design Criteria for DOE Facilities," provide guidance for the design of exterior reinforced concrete roof and wall panels against wind-borne missile impact. These documents point to Regulatory Guide (RG) 1.76, "Design-Basis Tornado and Tornado Missiles for Nuclear Power Plants"; RG 1.221, "Design-Basis Hurricane and Hurricane Missiles for Nuclear Power Plants"; and ANSI/ANS-2.3-2011(R2016), " Estimating Tornado, Hurricane, and Extreme Straight Line Wind Characteristics at Nuclear Facility Sites," for the definition of missiles and impact velocities. Empirical formulas are used to calculate local responses of reinforced concrete walls and slabs impacted by missiles, where these formulas were calibrated using test data that are no longer available for reinterpretation. This critical review analyzes the accuracy of these empirical formulas using data collected from impact tests conducted by the Electric Power Research Institute and Calspan Corporation in the 1970s. Schedule 40 pipes are used as the impacting missile for this review because it is referenced in both NRC and DOE guidance. Outer and effective diameters of the pipe are used to compare empirical predictions and experimental results. None of the empirical relationships predict the local response of reinforced concrete walls and slabs impacted by tornado-and hurricane-borne missiles with the level of accuracy expected for analysis of a nuclear power plant. More accurate design equations are needed, which could be developed by impact analysis of reinforced concrete panels using numerical models that have been rigorously validated using test data. New experiments will be needed to enable validation of numerical models.
机译:美国核监管委员会(NRC)的NUREG-0800,“核电厂安全分析报告审查的标准审查计划:LWR版-结构,部件,设备和系统的设计”和美国国务院能源部(DOE)的DOE-STD-1020-2016,“ DOE设施的自然现象危害分析和设计标准”,为设计外部钢筋混凝土屋顶和墙板抵抗风导弹的撞击提供了指导。这些文档指向监管指南(RG)1.76,“核电厂的设计基础龙卷风和龙卷风导弹”; RG 1.221,“核电站的设计基础飓风和飓风导弹”;和ANSI / ANS-2.3-2011(R2016),“估计核设施场的龙卷风,飓风和极端直线风的特性”,用于定义导弹和撞击速度。经验公式用于计算受导弹撞击的钢筋混凝土墙和楼板的局部响应,其中这些公式使用不再可用于重新解释的测试数据进行了校准。这篇重要的评论使用从电力研究所和Calspan公司在1970年代进行的冲击试验中收集的数据分析了这些经验公式的准确性。附表40的管道用作这次审查的影响导弹,因为NRC和DOE指南均引用了它。管道的外径和有效直径用于比较经验预测和实验结果。没有任何经验关系能够预测出受龙卷风和飓风导弹影响的钢筋混凝土墙和楼板的局部响应,其准确度预期可用于分析核电站。需要更精确的设计方程,可以通过使用数值模型对钢筋混凝土面板进行冲击分析来开发公式,该数值模型已使用测试数据进行了严格验证。将需要进行新的实验来验证数值模型。

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