Dynamic risk-based process design and operational optimization via multi-parametric programming

IF 3 Q2 ENGINEERING, CHEMICAL Digital Chemical Engineering Pub Date : 2023-06-01 DOI:10.1016/j.dche.2023.100096
Moustafa Ali , Xiaoqing Cai , Faisal I. Khan , Efstratios N. Pistikopoulos , Yuhe Tian
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引用次数: 4

Abstract

We present a dynamic risk-based process design and multi-parametric model predictive control optimization approach for real-time process safety management in chemical process systems. A dynamic risk indicator is used to monitor process safety performance considering fault probability and severity, as an explicit function of safety–critical process variables deviation from nominal operating conditions. Process design-aware risk-based multi-parametric model predictive control strategies are then derived which offer the advantages to: (i) integrate safety–critical variable bounds as path constraints, (ii) control risk based on multivariate process dynamics under disturbances, and (iii) provide model-based risk propagation trend forecast. A dynamic optimization problem is then formulated, the solution of which can yield optimal risk control actions, process design values, and/or real-time operating set points. The potential and effectiveness of the proposed approach to systematically account for interactions and trade-offs of multiple decision layers toward improving process safety and efficiency are showcased in a real-world example, the safety–critical control of a continuous stirred tank reactor at T2 Laboratories.

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基于多参数规划的动态风险工艺设计与运行优化
提出了一种基于动态风险的过程设计和多参数模型预测控制优化方法,用于化工过程系统的实时安全管理。考虑故障概率和严重程度,采用动态风险指标作为安全关键过程变量偏离标称运行条件的显式函数,监测过程安全性能。然后推导出基于过程设计感知风险的多参数模型预测控制策略,该策略具有以下优点:(i)将安全关键变量边界作为路径约束;(ii)基于扰动下的多变量过程动力学控制风险;(iii)提供基于模型的风险传播趋势预测。然后制定一个动态优化问题,其解决方案可以产生最佳的风险控制措施、工艺设计值和/或实时操作设定点。在T2实验室的连续搅拌槽式反应器的安全关键控制中,系统地考虑了多个决策层之间的相互作用和权衡,从而提高了过程安全性和效率,该方法的潜力和有效性得到了展示。
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