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Physical security analysis and simulation of the multi-layer security system for the Offshore Nuclear Plant (ONP)

机译:海上核电站多层安全系统的物理安全分析和仿真

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This research has investigated the effectiveness of the proposed security plan for the ONP-300 through the use of a simulation software developed by ARES Security Corporation which evaluates the plant design and security plan. This paper updates the security strategy in the earlier 2016 paper (ICONE24-61029, Charlotte, NC, Kindfuller et. al.) with the following significant additions: a modification of the plant design for security optimization, changes in the guard force based on simulations, placement of the protective barrier to prevent damage from ship explosions, and establishment of the shore station guard force, response team and key facilities.Different attack scenarios were investigated, and four design-basis threats were formulated based on guidance from industry professionals. Through the use of ARES software, results indicated that the initial platform design for the ONP 300 had line-of-sight issues for security officers on the top deck of the plant resulting in an unacceptable performance. This realization led to changes in the ONP 300's security configuration and structural layout. Additional sensitivity analysis resulted in reduction of guard force size and emphasized the importance of redundant radar systems.The major contributions of this work are two-fold. First, implementation of security-enhancing features have been accomplished at the very early stage of the ONP design when innovative features can be best identified and implemented in a cost-effective manner. Second, application of a Monte Carlo numerical tool has helped confirm the effectiveness of the design to defeat a wide range of threat scenarios proving the robustness of the security design.
机译:这项研究通过使用由ARES Security Corporation开发的模拟软件来评估ONP-300提议的安全计划的有效性,该软件可以评估工厂的设计和安全计划。本文对2016年早期论文(ICONE24-61029,Charlotte,NC,Kindfuller et al。)中的安全策略进行了更新,其中包括以下重要内容:为优化安全性而对工厂设计进行了修改,基于模拟改变了警卫队,设置防止船舶爆炸造成的损害的防护屏障以及建立岸上站的警卫部队,响应团队和关键设施。调查了不同的攻击场景,并在行业专家的指导下制定了四种基于设计的威胁。通过使用ARES软件,结果表明ONP 300的初始平台设计对工厂顶层甲板的安全人员存在视线问题,从而导致性能无法接受。这种认识导致ONP 300的安全配置和结构布局发生了变化。额外的灵敏度分析导致了护卫部队规模的减少,并强调了冗余雷达系统的重要性。这项工作的主要贡献有两个方面。首先,安全增强功能的实现已在ONP设计的最早期阶段完成,当时可以以经济高效的方式最好地识别和实现创新功能。其次,蒙特卡洛数值工具的应用帮助确认了该设计在克服各种威胁情况下的有效性,证明了安全设计的可靠性。

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