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考虑土-结构相互作用的核电安全壳结构地震响应分析

吴利华 蒋迪 姚迪 吴杨周 赵密 高经纬 高志懂

吴利华,蒋迪,姚迪,吴杨周,赵密,高经纬,高志懂,2025. 考虑土-结构相互作用的核电安全壳结构地震响应分析. 震灾防御技术,20(1):108−118. doi:10.11899/zzfy20240008. doi: 10.11899/zzfy20240008
引用本文: 吴利华,蒋迪,姚迪,吴杨周,赵密,高经纬,高志懂,2025. 考虑土-结构相互作用的核电安全壳结构地震响应分析. 震灾防御技术,20(1):108−118. doi:10.11899/zzfy20240008. doi: 10.11899/zzfy20240008
Wu Lihua, Jiang Di, Yao Di, Wu Yangzhou, Zhao Mi, Gao Jingwei, Gao Zhidong. Study on Seismic Response of Nuclear Containment Structure under Consideration of the Soil-structure Interaction[J]. Technology for Earthquake Disaster Prevention, 2025, 20(1): 108-118. doi: 10.11899/zzfy20240008
Citation: Wu Lihua, Jiang Di, Yao Di, Wu Yangzhou, Zhao Mi, Gao Jingwei, Gao Zhidong. Study on Seismic Response of Nuclear Containment Structure under Consideration of the Soil-structure Interaction[J]. Technology for Earthquake Disaster Prevention, 2025, 20(1): 108-118. doi: 10.11899/zzfy20240008

考虑土-结构相互作用的核电安全壳结构地震响应分析

doi: 10.11899/zzfy20240008
基金项目: 中国核电工程有限公司自主科研项目(KY22115)
详细信息
    作者简介:

    吴利华,女,生于1991年。工程师,博士。主要从事核电结构抗震研究。E-mail:wulihua199102@163.com

    通讯作者:

    赵密,男,生于1980年。教授,博导。主要从事抗震研究。E-mail:zhaomi@bjut.edu.cn

Study on Seismic Response of Nuclear Containment Structure under Consideration of the Soil-structure Interaction

  • 摘要: 随着核电适建厂址减少,核电厂址的选择将不可避免地遇到非基岩场地,因此需要研究土-结构相互作用(SSI)对核电结构地震响应的影响。本研究建立了包括核安全壳结构、附属厂房和土体的精细化三维整体有限元模型,采用施加自由场荷载和黏弹性人工边界的波动输入方法,研究了不同频谱特性的地震动作用下SSI效应和附属厂房对核电安全壳结构地震响应的影响。结果表明,相较于基岩场地,考虑SSI效应会增大结构的位移响应,对加速度响应的影响与输入地震动频谱特性相关,对楼面谱峰值附近的频段影响显著。SSI效应显著时,周围附属厂房的存在会增大结构的地震响应。当土体剪切波速大于1500 m/s时,SSI效应对结构地震响应的影响较小。
  • 图  1  核岛厂房平面图和立面图

    Figure  1.  Plan and elevation of the nuclear power plant

    图  2  结构有限元模型

    Figure  2.  Structural finite element model

    图  3  Housner模型示意图

    Figure  3.  Schematic diagram of the Housner model

    图  4  土-结构整体分析模型

    Figure  4.  Soil-structure analysis model

    图  5  地震动信息

    Figure  5.  Earthquake vibration information

    图  6  参考点位置示意图

    Figure  6.  Schematic diagram of the location of the reference point

    图  7  考虑SSI效应的PFA响应

    Figure  7.  PFA response considering SSI effects

    图  8  考虑SSI效应的PRFD响应

    Figure  8.  PRFD response considering SSI effects

    图  9  考虑SSI效应的FRS响应

    Figure  9.  FRS response considering SSI effects

    图  10  考虑SSI效应对FRS响应影响

    Figure  10.  Consideration of SSI effects on FRS response impact rates

    图  11  结构PFA和PRFD峰值响应

    Figure  11.  Structural PFA and PRFD peak response

    图  12  考虑厂房间相互作用影响的结构FRS响应

    Figure  12.  Structural FRS response considering the effects of interactions between ancillary plant

    图  13  考虑厂房间相互作用对FRS响应影响

    Figure  13.  Considering the effect of plant interactions on the RFS response

    表  1  地震动信息

    Table  1.   Earthquake information

    编号年份地震动记录台站PGA/PGV卓越频率/Hz
    L11995Kobe_JapanKobe University0.4990.83
    L21999Kocaeli-TurkeyYarimca0.2010.13
    L31989Loma_PrietaBRAN0.6132.25
    I11987Whittier Narrows-01Pasadena-CIT Kresge Lab1.0831.44
    I21985Nahanni-CanadaSite_11.0651.48
    I31979Imperial_Valley-06Chihuahua1.0881.36
    H11970Lytle_CreekCedar Springs_Allen Ranch3.2377.39
    H21992Cape_MendocinoCape_Mendocino5.0438.88
    H31992Cape_MendocinoRio_Dell_Overpass-FF2.6204.58
    下载: 导出CSV

    表  2  土体信息

    Table  2.   Soil information

    编号VS/(m·s−1Ρ/(kg·m−3E/GPav
    190023005.120.37
    21500245014.850.35
    32000260027.220.31
    42400270040.070.29
    下载: 导出CSV
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出版历程
  • 收稿日期:  2024-01-08
  • 录用日期:  2024-06-05
  • 修回日期:  2024-06-03
  • 网络出版日期:  2025-04-18
  • 刊出日期:  2025-03-30

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