Integrated Safety and Security Analysis of Nuclear Power Plants Using Dynamic Event Trees

被引:3
|
作者
Cohn, Brian [1 ]
Noel, Todd [1 ]
Cardoni, Jeffrey [1 ]
Haskin, Troy [1 ]
Osborn, Douglas [1 ]
Aldemir, Tunc [2 ]
机构
[1] Sandia Natl Labs, POB 5800, Albuquerque, NM 87185 USA
[2] Ohio State Univ, 201 West 19th Ave, Columbus, OH 43210 USA
关键词
Nuclear safety; nuclear security; dynamic probabilistic risk assessment; leading simulator; trailing simulator; METHODOLOGY;
D O I
10.1080/00295639.2023.2177076
中图分类号
TL [原子能技术]; O571 [原子核物理学];
学科分类号
0827 ; 082701 ;
摘要
Nuclear security relies on the method of vital area identification (VAI) to determine which locations within the nuclear power plant (NPP) need to be protected from radiological sabotage. The VAI methodology uses fault trees (FTs) and event trees (ETs) to identify locations in the NPP that contain vital equipment: structures and components that may result in reactor significant core damage if direct or indirect sabotage occurred. However, the traditional FT/ET process cannot fully capture the dynamics of NPP systems and mitigating measures at play. Existing safety systems or possible operator procedures may be able to avert or mitigate core damage despite the loss of one or more vital areas. Dynamic probabilistic risk assessment (DPRA) methodologies are those that, unlike traditional probabilistic risk assessment, explicitly consider time effects when modeling a system. One common DPRA methodology is that of the use of dynamic event trees (DETs) that drive computer models of a system with user-specified branching conditions to account for uncertainties in a scenario. The DPRA process allows analysts to explore the uncertainties and state space of a scenario in a systematic fashion. A scenario was developed that uses the novel leading simulator/trailing simulator methodology to perform a DET analysis of a combined nuclear safety and nuclear security analysis. The scenario under consideration models the successful sabotage of a vital area by adversaries and determines the effects of timing and the extent of sabotage, as well as possible recovery actions, on the state of the plant. The results of this integrated analysis include the timing and extent of core damage as well as the extent of any radiological release that may occur as a result of sabotage.
引用
收藏
页码:S45 / S56
页数:12
相关论文
共 50 条
  • [31] SAFETY OF NUCLEAR-POWER-PLANTS
    RAM, KS
    IYER, K
    SADHANA-ACADEMY PROCEEDINGS IN ENGINEERING SCIENCES, 1987, 11 : 263 - 272
  • [32] Cybersecurity Assessment Framework for Digital Interface Between Safety and Security at Nuclear Power Plants
    Silva, R. A. Busquim e
    Piqueira, J. R. C.
    Cruz, J. J.
    Marques, R. P.
    INTERNATIONAL JOURNAL OF CRITICAL INFRASTRUCTURE PROTECTION, 2021, 34
  • [33] Hazard trees: A complement to event trees and fault trees for safety analysis
    Fankhauser, HR
    SAFETY AND RELIABILITY, VOLS 1 & 2, 1999, : 1343 - 1348
  • [34] The differential dynamic model for the implicit safety culture dissemination in nuclear power plants
    Yuan, Da
    Wang, Hanqing
    Zhu, Hui
    Xiao, Wangping
    Yu, Chuck W.
    INDOOR AND BUILT ENVIRONMENT, 2022, 31 (06) : 1530 - 1539
  • [35] Dynamic Event Tree Analysis as a Tool for Risk Assessment in Nuclear Fusion Plants Using RAVEN and MELCOR
    D'Onorio, Matteo
    Glingler, Tommaso
    Giannetti, Fabio
    Caruso, Gianfranco
    IEEE TRANSACTIONS ON PLASMA SCIENCE, 2022, 50 (11) : 4514 - 4520
  • [36] Risk-Informed Safety Margin Evaluation Approach of Nuclear Power Plant Integrated with Adaptive Dynamic Event Tree Algorithm
    Xu, Anqi
    Yang, Ming
    Dong, Xiaomeng
    Yin, Yuan
    Chen, Sijuan
    Wang, Jipu
    Li, Lei
    Wang, He
    2022 4TH INTERNATIONAL CONFERENCE ON SYSTEM RELIABILITY AND SAFETY ENGINEERING, SRSE, 2022, : 145 - 153
  • [37] Application of the Integrated Safety Assessment methodology to safety margins. Dynamic Event Trees, Damage Domains and Risk Assessment
    Ibanez, L.
    Hortal, J.
    Queral, C.
    Gomez-Magan, J.
    Sanchez-Perea, M.
    Fernandez, I.
    Melendez, E.
    Exposito, A.
    Izquierdo, J. M.
    Gil, J.
    Marrao, H.
    Villalba-Jabonero, E.
    RELIABILITY ENGINEERING & SYSTEM SAFETY, 2016, 147 : 170 - 193
  • [38] NUCLEAR SAFETY - BASIC PRINCIPLES FOR SAFETY OF NUCLEAR-POWER-PLANTS
    SKJOELDEBRAND, R
    ENERGIA ES ATOMTECHNIKA, 1991, 44 : 312 - 316
  • [39] Probabilistic safety analysis of the initiating event of multi-module nuclear power plants under full operating conditions
    Liu A.
    Liu T.
    Tong J.
    Harbin Gongcheng Daxue Xuebao/Journal of Harbin Engineering University, 2021, 42 (12): : 1826 - 1831
  • [40] Online preventive dynamic security of isolated power systems using decision trees
    Karapidakis, ES
    Hatziargyriou, ND
    IEEE TRANSACTIONS ON POWER SYSTEMS, 2002, 17 (02) : 297 - 304