Seismic Behavior Study of a new Isolated Structure System With Damping Supporter for Nuclear Power Plants in a Cave or Underground

Yixin Feng, Haoqing Xu, Wenguang Liu, Qiang Zhang
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Abstract

There have been heated discussions on how to reduce the earthquake response of NPPs. Generally, isolation technology is one of the most efficient methods but researches on traditional isolated structure and 3D isolated structure for NPPs, to some extent, have deficiencies. Therefore, in this paper, a new structural system which included base isolation system and lateral damping supporters for NPPs (hereinafter referred to as DISO) in a cave or underground was proposed to obtain a positive seismic response, aiming to protect the nuclear island. The motion characteristics of the system have been studied and a simplified mathematical model has been set up. The dynamic equation was deduced and solved. The theoretical analysis results that there is an optimal range of parameter β, the ratio of the damping coefficient of the additional damping support to the equivalent linear damping coefficient of isolation layer, to get a positive response of DISO system. The seismic response of the DISO structural system was analyzed and the correlation that the parameters including damping arrangement coefficient, damping index and damping coefficient have with the seismic response of the structure were discussed. The results show that the acceleration response of the DISO system decreases to minimum value with the increasing of damping coefficient, along with whiplash effect, and then increases regularly. There is a positive correlation between the damping coefficient and displacement decline rate. A case study has been completed. The numerical results show that the DISO system performs more effectively than the ISO system (refer to the traditional isolated structural system). Given that the equipment and pipelines in NPPs are sensitive to large isolation displacement, the displacement response of DISO system is less than that of the traditional isolated structural system without acceleration amplifying. Moreover, both acceleration of superstructure and displacement get decreased. And IDA-based (Incremental Dynamic Analysis) seismic fragility analysis of ISO and DISO system has been performed. DISO system has the smaller probability of failure compared with the ISO system.
洞穴或地下核电站新型隔震减震支座抗震性能研究
关于如何降低核电站的地震反应,人们进行了激烈的讨论。一般来说,隔震技术是最有效的方法之一,但对核电站传统隔震结构和三维隔震结构的研究存在一定的不足。因此,本文提出了一种新的洞穴或地下核电厂(以下简称DISO)的基础隔震系统和侧向阻尼支架的结构体系,以获得积极的地震响应,以保护核岛。研究了系统的运动特性,建立了简化的数学模型。推导并求解了动力方程。理论分析结果表明,附加阻尼支承的阻尼系数与隔震层等效线性阻尼系数之比β参数存在一个最优取值范围,可使DISO系统获得正响应。分析了DISO结构体系的地震反应,讨论了阻尼布置系数、阻尼指数、阻尼系数等参数与结构地震反应的关系。结果表明:随着阻尼系数的增大,DISO系统的加速度响应随鞭动效应的增大而减小到最小值,然后有规律地增大;阻尼系数与位移递减率呈正相关。个案研究已完成。数值计算结果表明,DISO系统比ISO系统(参考传统的隔震结构系统)具有更高的性能。考虑到核电站内的设备和管道对大隔震位移敏感,在没有加速度放大的情况下,DISO系统的位移响应小于传统的隔震结构系统。上部结构的加速度和位移都减小了。并对ISO和DISO系统进行了基于增量动力分析(ida)的地震易损性分析。与ISO系统相比,DISO系统的故障概率更小。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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