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Risk reduction concept to provide design criteria for Emergency Systems for onshore LNG plants

机译:降低风险的概念为陆上液化天然气工厂的应急系统提供设计标准

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摘要

The functional safety requirement is widely applied in the process plant industry in accordance with the international standards, such as IEC and ISA. The requirement is defined as safety integrity level (SIL) based on the risk reduction concept for protection layers, from original process risk to tolerable risk level. Although the standards specify both, the Prevention System and the Emergency System, as level of protection layers, the standards specify in detail only the use of the Prevention System (i.e., Safety Instrumented System (SIS)). The safety integrity level is not commonly allocated to the Emergency System (e.g., Fire and Gas System, Emergency Shutdown System and Emergency Depressuring System). This is because the required risk reduction can be normally achieved by only the Prevention System (i.e., SIS and Pressure Safety Valve (PSV)). Further, the risk reduction level for the Emergency System is very difficult to be quantified by the actual SIL application (i.e., evaluated based on the single accident scenario, such as an accident from process control deviation), since the escalation scenarios after Loss of Containment (LOC) greatly vary depending on the plant design and equipment. Consequently, there are no clear criteria for evaluating the Emergency System design. This paper aims to provide the functional safety requirement (i.e., required risk reduction level based on IEC 61508 and 61511) as design criteria for the Emergency System. In order to provide clear criteria for the Emergency System evaluation, a risk reduction concept integrated with public's perception of acceptable risk criteria is proposed and is applied to identify the required safety integrity level for the Emergency System design. Further, to verify the safety integrity levels for the Emergency Systems, the probabilistic model of the Emergency Systems was established considering each Emergency System (e.g., Fire and Gas System, Emergency Shutdown System and Emergency Depressuring System) relation as the Overall Emergency System. This is because the Overall Emergency System can achieve its goal by the combined action of each individual system, including inherent safe design, such as separation distance. The proposed approach applicability was verified by conducting a case study using actual onshore Liquefied Natural Gas Plant data. Further, the design criteria for Emergency Systems for LNG plants are also evaluated by sensitivity analysis.
机译:根据国际标准(例如IEC和ISA),功能安全要求已广泛应用于过程工厂行业。根据保护层的风险降低概念,将要求定义为安全完整性等级(SIL),从原始过程风险到可容忍的风险等级。尽管标准将预防系统和应急系统都指定为保护层级别,但是标准仅详细规定了预防系统(即安全仪表系统(SIS))的使用。安全完整性级别通常不分配给应急系统(例如,消防和煤气系统,应急关机系统和应急降压系统)。这是因为通常只能通过预防系统(即SIS和压力安全阀(PSV))来实现所需的风险降低。此外,由于失去密封性之后的升级方案,很难通过实际的SIL应用程序来量化紧急系统的风险降低水平(即,基于单个事故场景进行评估,例如来自过程控制偏差的事故)。 (LOC)因工厂设计和设备而异。因此,没有明确的标准来评估应急系统设计。本文旨在提供功能安全要求(即,基于IEC 61508和61511的要求降低风险等级)作为应急系统的设计标准。为了为应急系统评估提供明确的标准,提出了将降低风险的概念与公众对可接受风险标准的理解相结合的概念,并将其应用于确定应急系统设计所需的安全完整性等级。此外,为了验证应急系统的安全完整性等级,建立了应急系统的概率模型,将每个应急系统(例如,消防和煤气系统,应急关机系统和应急降压系统)关系视为整体应急系统。这是因为总体应急系统可以通过每个单独系统的综合动作来实现其目标,包括固有的安全设计,例如分隔距离。通过使用实际的陆上液化天然气工厂数据进行案例研究,验证了该方法的适用性。此外,还通过敏感性分析评估了液化天然气工厂应急系统的设计标准。

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