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Identifying significant earthquake intensity measures for evaluating seismic damage and fragility of nuclear power plant structures

机译:确定重要的地震烈度措施以评估核电厂结构的地震破坏和脆弱性

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Seismic design practices and seismic response analyses of civil structures and nuclear power plants (NPPs) have conventionally used the peak ground acceleration (PGA) or spectral acceleration (Sa) as an intensity measure (IM) of an earthquake. However, there are many other earthquake IMs that were proposed by various researchers. The aim of this study is to investigate the correlation between seismic responses of NPP components and 23 earthquake IMs and identify the best IMs for correlating with damage of NPP structures. Particularly, low- and high-frequency ground motion records are separately accounted in correlation analyses. An advanced power reactor NPP in Korea, APR1400, is selected for numerical analyses where containment and auxiliary buildings are modeled using SAP2000. Floor displacements and accelerations are monitored for the non- and base-isolated NPP structures while shear deformations of the base isolator are additionally monitored for the base-isolated NPP. A series of Pearson's correlation coefficients are calculated to recognize the correlation between each of the 23 earthquake IMs and responses of NPP structures. The numerical results demonstrate that there is a significant difference in the correlation between earthquake IMs and seismic responses of non-isolated NPP structures considering low- and high-frequency ground motion groups. Meanwhile, a trivial discrepancy of the correlation is observed in the case of the base-isolated NPP subjected to the two groups of ground motions. Moreover, a selection of PGA orSafor seismic response analyses of NPP structures in the high-frequency seismic regions may not be the best option. Additionally, a set of fragility curves are thereafter developed for the base-isolated NPP based on the shear deformation of lead rubber bearing (LRB) with respect to the strongly correlated IMs. The results reveal that the probability of damage to the structure is higher for low-frequency earthquakes compared with that of high-frequency ground motions.
机译:传统上,民用建筑和核电站(NPP)的抗震设计实践和地震响应分析使用峰值地面加速度(PGA)或频谱加速度(Sa)作为地震的强度度量(IM)。但是,许多研究人员提出了许多其他地震IM。这项研究的目的是调查NPP组件的地震响应与23个地震IM之间的相关性,并确定与NPP结构损伤相关的最佳IM。特别是,低频和高频地面运动记录在相关性分析中分别进行说明。选择了韩国先进的动力堆NPP APR1400进行数值分析,其中使用SAP2000对安全壳和辅助建筑物进行建模。监测非隔离和基础隔离的NPP结构的地板位移和加速度,同时监视隔离器的基础变形的NPP结构的剪切变形。计算了一系列的Pearson相关系数,以识别23个地震IM和NPP结构响应之间的相关性。数值结果表明,考虑到低频和高频地面运动群,非孤立NPP结构的地震IM与地震响应之间的相关性存在显着差异。同时,在经历了两组地震动的基础隔离NPP的情况下,观察到相关性的微小差异。此外,选择PGA或Sa进行高频地震区域中NPP结构的地震响应分析可能不是最佳选择。此外,此后基于铅橡胶轴承(LRB)相对于强相关IM的剪切变形,为基础隔离的NPP建立了一组脆性曲线。结果表明,与高频地震动相比,低频地震破坏结构的可能性更高。

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