Multiparametric resilience assessment of chemical process systems incorporating process dynamics and independent protection layers

IF 7.8 2区 环境科学与生态学 Q1 ENGINEERING, CHEMICAL Process Safety and Environmental Protection Pub Date : 2025-03-10 DOI:10.1016/j.psep.2025.107018
Hao Sun , Meng Qi , Ming Yang , Fuyu Wang , Heping Wang
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Abstract

Chemical Process Systems (CPSs) exhibit complex characteristics and inherent dangers that can lead to serious accidents when disrupted. Accurate quantification and assessment of system resilience are crucial for effectively responding to potential undesired events. To address this, we propose a multiparametric resilience assessment methodology for CPSs that considers system dynamics and Independent Protection Layers (IPLs). This method integrates multiple CPS parameters using the Best Worst Method (BWM) to establish a comprehensive performance indicator. A dynamic simulation model incorporating IPLs is developed to monitor real-time changes in system parameters under disruptive influences. Additionally, a resilience metric is introduced, utilizing time-varying parameters to quantify system resilience under various disruptions. A case study involving a two-column pressure-swing distillation process with top recycling, designed to separate a minimum-boiling azeotrope of tetrahydrofuran and water, demonstrates the applicability of this method to complex CPSs. The results indicate that, compared to traditional resilience assessment methods based on reliability, the proposed approach provides time-dependent process parameters, reducing the uncertainty of reliability data. Furthermore, by considering IPLs, this method offers valuable decision support for the design and optimization of these protective layers.
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包含工艺动态和独立保护层的化学工艺系统多参数复原力评估
化学过程系统(cps)表现出复杂的特性和固有的危险,当被破坏时可能导致严重的事故。系统弹性的准确量化和评估对于有效响应潜在的意外事件至关重要。为了解决这个问题,我们提出了一种考虑系统动力学和独立保护层(ipl)的cps多参数弹性评估方法。该方法采用BWM (Best - Worst method)方法,将多个CPS参数进行综合,建立一个综合的性能指标。建立了一个包含ipl的动态仿真模型,用于监测系统参数在破坏性影响下的实时变化。此外,还引入了弹性度量,利用时变参数量化系统在各种中断下的弹性。一个涉及顶部循环的两柱变压蒸馏过程的案例研究,旨在分离四氢呋喃和水的最低沸点共沸物,证明了该方法对复杂cps的适用性。结果表明,与传统的基于可靠性的弹性评估方法相比,该方法提供了随时间变化的过程参数,降低了可靠性数据的不确定性。此外,该方法考虑了ipl,为保护层的设计和优化提供了有价值的决策支持。
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来源期刊
Process Safety and Environmental Protection
Process Safety and Environmental Protection 环境科学-工程:化工
CiteScore
11.40
自引率
15.40%
发文量
929
审稿时长
8.0 months
期刊介绍: The Process Safety and Environmental Protection (PSEP) journal is a leading international publication that focuses on the publication of high-quality, original research papers in the field of engineering, specifically those related to the safety of industrial processes and environmental protection. The journal encourages submissions that present new developments in safety and environmental aspects, particularly those that show how research findings can be applied in process engineering design and practice. PSEP is particularly interested in research that brings fresh perspectives to established engineering principles, identifies unsolved problems, or suggests directions for future research. The journal also values contributions that push the boundaries of traditional engineering and welcomes multidisciplinary papers. PSEP's articles are abstracted and indexed by a range of databases and services, which helps to ensure that the journal's research is accessible and recognized in the academic and professional communities. These databases include ANTE, Chemical Abstracts, Chemical Hazards in Industry, Current Contents, Elsevier Engineering Information database, Pascal Francis, Web of Science, Scopus, Engineering Information Database EnCompass LIT (Elsevier), and INSPEC. This wide coverage facilitates the dissemination of the journal's content to a global audience interested in process safety and environmental engineering.
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