| [1] |
侯本伟, 元明豪, 吴珊, 等. 基于状态树模型的给水处理厂体系震后功能评估[J/OL]. 工程力学:1-11.[2025-04-15]. http://kns.cnki.net/kcms/detail/11.2595.O3.20240305.0843.002.html.
|
|
Hou Benwei, Yuan Minghao, Wu Shan, et al. Post-earthquake functionality assessment of water treatment plant system based on state tree model[J/OL]. Engineering Mechanics:1-11.[2025-04-15]. http://kns.cnki.net/kcms/detail/11.2595.O3.20240305.0843.002.html.
|
| [2] |
王威, 宋卓, 侯本伟, 等. 震后供水管网剩余能量熵的蒙特卡罗模拟分析[J]. 中国安全科学学报, 2020, 30(9):188-194.
|
|
Wang Wei, Song Zhuo, Hou Benwei, et al. Monte Carlo simulation analysis on surplus power entropy of water supply network after earthquake[J]. China Safety Science Journal, 2020, 30(9):188-194.
|
| [3] |
王威, 龚玉涿, 朱峻佚, 等. 城市建筑群抗震韧性集成评估方法[J]. 中国安全科学学报, 2025, 35(4):219-226.
doi: 10.16265/j.cnki.issn1003-3033.2025.04.1116
|
|
Wang Wei, Gong Yuzhuo, Zhu Junyi, et al. Integrated evaluation methods of seismic resilience of urban group buildings[J]. China Safety Science Journal, 2025, 35(4): 219-226.
doi: 10.16265/j.cnki.issn1003-3033.2025.04.1116
|
| [4] |
武佳佳, 王威, 朱强强, 等. 基于QRNN模型的生命年损失概率密度预测[J]. 中国安全科学学报, 2019, 29(5):37-43.
doi: 10.16265/j.cnki.issn1003-3033.2019.05.007
|
|
Wu Jiajia, Wang Wei, Zhu Qiangqiang, et al. Lifeyears loss probability density prediction based on QRNN model[J]. China Safety Science Journal, 2019, 29(5): 37-43.
doi: 10.16265/j.cnki.issn1003-3033.2019.05.007
|
| [5] |
李诗尧. 落地通信基站地震易损性及功能失效概率评估[D]. 哈尔滨: 中国地震局工程力学研究所, 2017.
|
|
Li Shiyao. Seismic vulnerability and functional failure probability assessment of landing communication station[D]. Harbin: Institute of Engineering Mechanics, China Earthquake Administration, 2017.
|
| [6] |
毛晨曦, 冯利飞. 基于振动台试验的移动通信节点机房蓄电池组地震易损性分析[J]. 世界地震工程, 2019, 35(3):10-20.
|
|
Mao Chenxi, Feng Lifei. Seismic fragility analysis of storage batteries in mobile communication node room based on shaking table test[J]. World Earthquake Engineering, 2019, 35(3): 10-20.
|
| [7] |
李帆. 通信系统抗震韧性评估方法研究[D]. 哈尔滨: 中国地震局工程力学研究所, 2022.
|
|
Li Fan. Assessment method of seismic resilience of communication system[D]. Harbin: Institute of Engineering Mechanics, China Earthquake Administration, 2022.
|
| [8] |
穆志炜. 通信系统震后连通性分析及恢复过程模拟研究[D]. 哈尔滨: 中国地震局工程力学研究所, 2023.
|
|
Mu Zhiwei. Connectivity analysis and recovery process simulation of communication system after earthquake[D]. Harbin: Institute of Engineering Mechanics, China Earthquake Administration, 2023.
|
| [9] |
Cardoni A, Borlera S L, Malandrino F, et al. Seismic vulnerability and resilience assessment of urban telecommunication networks[J]. Sustainable Cities and Society, 2022, 77: DOI: 10.1016/j.scs.2021.103540.
|
| [10] |
白鹏飞, 段倩倩, 张小咏. 地震灾害下通信基础设施损毁的故障树模型研究[J]. 数学的实践与认识, 2017, 47(21):1-7.
|
|
Bai Pengfei, Duan Qianqian, Zhang Xiaoyong. Research on fault tree model of communication infrastructure damage under earthquake disaster[J]. Mathematics in Practice and Theory, 2017, 47(21):1-7.
|
| [11] |
Ke S S, Wu B R, Hsu C H. Damage assessment of mobile communication facilities subjected to major earthquakes[J]. Journal of the Chinese Institute of Engineers, 2022, 45(6): 501-512.
doi: 10.1080/02533839.2022.2078415
|
| [12] |
Li Xueming, Wei Yao, Ming Zheng, et al. Reliability prediction and evaluation of communication base stations in earthquake prone areas[J]. Scientific Reports, 2023, 13(1): DOI: 10.1038/s41598-023-35841-x.
|
| [13] |
Li Fan, Zhai Changhai, Qin Hao. Post-earthquake functional state assessment of communication base station using Bayesian network[J]. Reliability Engineering & System Safety, 2024, 252: DOI: 10.1016/j.ress.2024.110482.
|
| [14] |
姚成玉, 陈东宁. T-S故障树理论及其应用[M]. 北京: 国防工业出版社,2020:13-80.
|
|
Yao Chengyu, Chen Dongning. T-S fault tree theory and applications[M]. Beijing: National Defense Industry Press, 2020:13-80.
|
| [15] |
李波, 郭恩栋, 毛晨曦. 四川长宁县6.0级地震通信系统结构震害调查与分析[J]. 世界地震工程, 2020, 36(2):172-179.
|
|
Li Bo, Guo Endong, Mao Chenxi. Seismic damage survey and analysis of communication system in Changning Ms6.0 earthquake[J]. World Earthquake Engineering, 2020, 36(2):172-179.
|
| [16] |
RISN—TG041—2022 城市工程系统抗震韧性评价导则[S].
|
|
RISN-TG041-2022 Guideline for evaluation of seismic resilience assessment of urban engineering systems[S].
|
| [17] |
Barbat A H, Moya F Y, Canas J A. Damage scenarios simulation for seismic risk assessment in urban zones[J]. Earthquake Spectra, 1996, 12(3): 371-394.
doi: 10.1193/1.1585889
|
| [18] |
刘如山, 闫路鹏, 姜立新, 等. 110 kV及以上变电站地震易损性研究[J]. 中国地震, 2023, 39(2):290-298.
|
|
Liu Rushan, Yan Lupeng, Jiang Lixin, et al. Seismic vulnerability study of 110 kV and above substations[J]. China Earthquake, 2023, 39(2): 290-298.
|
| [19] |
GB/T 38591—2020 建筑抗震韧性评价标准[S].
|
|
GB/T 38591—2020 Standard for seismic resilience assessment of buildings[S].
|