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SEISMIC QUALIFICATION OF NUCLEAR PLANT COMPONENTS USING PSHA-BASED SPECTRA

机译:基于PSHA的光谱对核植物成分的地震定性

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摘要

With the prospect of a revival of nuclear power industry after a long hiatus, there is an emphasis on designing the next breed of nuclear plants in the US using seismic spectra derived from a probabilistic seismic hazard analysis (PSHA). The methods available in guidance documents to establish Safe Shutdown Earthquake (SSE) spectral shapes at a site using PSHA invariably show that the risk-based spectra have high peaks, high zero period accelerations (ZPA), and significant energy content at higher frequencies when compared to the previous deterministic spectra at the same site. It is well known that earthquakes in Central and Eastern United States (CEUS) will typically contain some high frequency energy. While the early site permit applications and reactor supplier's design certifications for new plants are expected to use the PSHA-based spectra for their seismic design, existing nuclear plants designed to deterministic spectra may also need to be reviewed for the probabilistic seismic spectra at their sites. This paper considers the implications of a probabilistic hazard spectrum for the seismic qualification of equipment and components for an operating plant and suggests a procedure for conducting a review. Amplification of ground spectra through nuclear plant structures and other intervening systems such as a piping system or an electrical cabinet are calculated using conventional linear dynamic analysis methods in much the same way as was done in the past for high frequency hydrodynamic loads in the Boiling Water Reactor (BWR) containments. Electrical and mechanical equipment, including devices such as relays that may be sensitive to high frequency vibratory loads are evaluated. While the spectral peaks at equipment mounting location are high at higher frequencies, the damage potential is considerably low. For an existing plant, a limited review of the previous seismic analyses and testing with the redefined seismic spectra concludes that the previous design has sufficient seismic margin. Implications of the PSHA based spectra for seismic qualification of equipmentrnfor new plants is not expected to be as severe as once believed. Additional assurance of safety can be obtained by updating or conducting a plant-specific seismic probabilistic risk analysis.
机译:长期中断后,核电行业有望复苏,因此,重点放在使用从概率地震危险性分析(PSHA)得出的地震谱设计美国下一代核电站。指南文件中使用PSHA在现场建立安全关机地震(SSE)频谱形状的可用方法始终显示,基于风险的频谱具有较高的峰值,较高的零周期加速(ZPA),并且与较高频率相比具有较高的能量含量到同一站点上以前的确定性光谱。众所周知,美国中部和东部(CEUS)的地震通常会包含一些高频能量。预计新工厂的早期现场许可证申请和反应堆供应商的设计认证将在其抗震设计中使用基于PSHA的频谱,但还可能需要检查设计用于确定频谱的现有核电站的现场概率地震频谱。本文考虑了概率危险谱对于运营中的设备和组件的抗震鉴定的意义,并提出了进行审查的程序。通过核电厂结构和其他介入系统(例如管道系统或电气柜)的地谱放大倍数,是使用常规线性动力分析方法计算的,其方式与过去对沸水反应堆中高频流体动力负荷的计算方式相同(BWR)密闭。评估电气和机械设备,包括可能对高频振动负载敏感的设备,例如继电器。设备安装位置的频谱峰值在较高的频率下较高,而损坏的可能性却很低。对于现有工厂,对先前的地震分析和重新定义的地震谱进行测试的有限审查得出的结论是,先前的设计具有足够的地震余量。基于PSHA的光谱对新工厂设备的抗震鉴定的影响不会像从前那样严重。通过更新或进行工厂特定的地震概率风险分析,可以获得额外的安全保证。

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