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首页> 外文期刊>Journal of loss prevention in the process industries >Optimization of gas detector placement considering scenario probability and detector reliability in oil refinery installation
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Optimization of gas detector placement considering scenario probability and detector reliability in oil refinery installation

机译:考虑炼油厂安装方案概率和探测器可靠性的气体探测器优化

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摘要

Gas detection system is a critical layer of protection in process safety. Leak scenario probability and detector reliability are two key factors in the optimization of gas detector placement. However, they are easily neglected in previous studies, which may lead to an inaccurate evaluation of the optimization solutions. In this study, a stochastic programming (SP) optimization method is proposed considering these two factors. In order to quantitatively represent the probability of leak scenarios, a complete accident scenario set (CASS) is built combining leak sources and wind fields. Then, the computational fluid dynamics (CFD) method is adopted for consequence modeling of gas dispersion. The Markov model is developed to predict the detector reliability. With the objective of minimal cumulative detection time (MCDT), the SP formulation considering scenario probability and detector reliability (MCDT-SPR) is proposed. By introducing the particle swarm optimization (PSO) algorithm, the optimization formulations can be solved. A case study is investigated on a diesel hydrogenation refining unit. Results validate this approach is promising to improve the detection efficiency. This method is more practical and matching with the actual industrial environment, where the leak scenarios and the detector reliability can change dynamically in real process setting.
机译:气体检测系统是过程安全性的关键保护层。泄漏方案概率和探测器可靠性是燃气探测器优化中的两个关键因素。然而,在以前的研究中,它们很容易被忽视,这可能导致对优化解决方案的不准确评估。在本研究中,考虑到这两个因素,提出了一种随机编程(SP)优化方法。为了定量表示泄漏方案的概率,建立了完整的事故方案(CASS),建立了泄漏源和风场。然后,采用计算流体动力学(CFD)方法进行气体分散的后果建模。 Markov模型是开发的,以预测探测器的可靠性。累计累积检测时间(MCDT)的目的是,提出了考虑方案概率和检测器可靠性(MCDT-SPR)的SP配方。通过引入粒子群优化(PSO)算法,可以解决优化制剂。在柴油氢化精制单元上研究了案例研究。结果验证此方法很有希望提高检测效率。该方法与实际的工业环境更实用,匹配,其中泄漏方案和检测器可靠性可以在实际过程设置中动态地改变。

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