[1] 陈国明. 海洋油气工程安全风险评价研究[M]. 东营: 中国石油大学出版社, 2018: 1-10. [2] 陈国明, 朱高庚, 朱渊. 深水油气开采安全风险评估与管控研究进展[J]. 中国石油大学学报: 自然科学版, 2019, 43(5): 136-145. CHEN Guoming, ZHU Gaogeng, ZHU Yuan. Advances in safety assessment and risk management for deepwater oil and gas exploitation[J]. Journal of China University of Petroleum: Edition of Natural Science, 2019, 43(5): 136-145. [3] VINNEM J E. Offshore risk assessment[M]. London: Springer, 2014: 71-92. [4] YOON Y S, HAM D, YOON W C. Application of activity theory to analysis of human-related accidents: method and case studies[J]. Reliability Engineering & System Safety, 2016, 150: 22-34. [5] KHAKZAD N, KHAN F, AMYOTTE P. Quantitative risk analysis of offshore drilling operations: a Bayesian approach[J]. Safety Science, 2013, 57: 108-117. [6] SHI Jihao, LI Xinhong, KHAN F, et al. Artificial bee colony based Bayesian regularization artificial neural network approach to model transient flammable cloud dispersion in congested area[J]. Process Safety and Environmental Protection, 2019, 128: 121-127. [7] BUCELLI M, LANDUCCI G, HAUGEN S, et al. Assessment of safety barriers for the prevention of cascading events in oil and gas offshore installations operating in harsh environment[J]. Ocean Engineering, 2018, 158: 171-185. [8] NECCI A, TARANTOLA S, VAMANU B, et al. Lessons learned from offshore oil and gas incidents in the Arctic and other ice-prone seas[J]. Ocean Engineering, 2019, 185: 12-26. [9] BUBBICO R, LEE S, MOSCATI D, et al. Dynamic assessment of safety barriers preventing escalation in offshore oil & gas[J]. Safety Science, 2020, 121: 319-330. [10] 李小鹏, 李存斌, 刘定, 等. 基于DEMATEL-ISM的电力CPS事故构模分析[J]. 华北电力大学学报: 自然科学版, 2018, 45(4): 67-77. LI Xiaopeng, LI Cunbin, LIU Ding, et al. Power CPS fault modeling analysis based on DEMATEL-ISM[J]. Journal of North China Electric Power University: Natural Science Edition, 2018, 45(4): 67-77. [11] 李新宏, 韩子月, 卢才武, 等. 老龄城镇油气管道失效风险评价方法[J]. 中国安全科学学报, 2020, 30(2): 93-98. LI Xinhong, HAN Ziyue, LU Caiwu, et al. Research on failure risk evaluation methodology of aging urban oil and gas pipeline[J]. China Safety Science Journal, 2020, 30(2): 93-98. [12] 陈一洲, 张无敌, 晏风, 等. 暴恐事件下机场航站楼疏散能力研究[J]. 中国安全科学学报, 2020, 30(2): 86-92. CHEN Yizhou, ZHANG Wudi, YAN Feng, et al. Study on evacuation ability of airport terminals to violent terrorist attacks[J]. China Safety Science Journal, 2020, 30(2): 93-98. [13] WANG Linlin, CAO Qinggui, ZHOU Lujie. Research on the influencing factors in coal mine production safety based on the combination of DEMATEL and ISM[J]. Safety Science, 2018, 103: 51-61. [14] Energo Engineering. Assessment of damage and failure mechanisms for offshore structures and pipelines in hurricanes Gustav and Ike[R]. Mineral Management Service, 2010. [15] 赵贤利. 机场跑道安全风险演化机理研究[D]. 武汉: 武汉理工大学, 2017. ZHAO Xianli. Research on the evolution mechanism of airport runway safety risk[D]. Wuhan: Wuhan University of Technology, 2017. [16] 吴毅, 吴刚, 马颂歌. 扎根理论的起源、流派与应用方法述评:基于工作场所学习的案例分析[J]. 远程教育杂志, 2016, 34(3): 32-41. WU Yi, WU Gang, MA Songge. Review on the origin, genre and application of the grounded theory method[J]. Journal of Distance Education, 2016, 34(3): 32-41. [17] 孟祥坤, 陈国明, 朱高庚, 等. 基于DEMATEL-BN 的海洋平台泄漏脆弱性动态分析[J]. 中国安全科学学报, 2018, 28(5): 111-116. MENG Xiangkun, CHEN Guoming, ZHU Gaogeng, et al. DEMATEL-BN based dynamic analysis of vulnerability of offshore platforms to leakage[J]. China Safety Science Journal, 2018, 28(5): 111-116. [18] 潘丹, 李永周, 罗帆, 等. 民用机场飞行区安全风险识别及作用机制[J]. 中国安全科学学报, 2019, 29(4): 152-157. PAN Dan, LI Yongzhou, LUO Fan, et al. Risk identification and action mechanism of flying area in civil airport[J]. China Safety Science Journal, 2019, 29(4): 152-157. |