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Safety analysis in process facilities: Comparison of fault tree and Bayesian network approaches
Authors:Nima KhakzadFaisal Khan  Paul Amyotte
Affiliation:a Process Engineering, Faculty of Engineering & Applied Science, Memorial University, St. John’s, NL, Canada A1B 3X5
b Department of Process Engineering & Applied Science, Dalhousie University, Halifax, NS, Canada B3J 2X4
Abstract:Safety analysis in gas process facilities is necessary to prevent unwanted events that may cause catastrophic accidents. Accident scenario analysis with probability updating is the key to dynamic safety analysis. Although conventional failure assessment techniques such as fault tree (FT) have been used effectively for this purpose, they suffer severe limitations of static structure and uncertainty handling, which are of great significance in process safety analysis. Bayesian network (BN) is an alternative technique with ample potential for application in safety analysis. BNs have a strong similarity to FTs in many respects; however, the distinct advantages making them more suitable than FTs are their ability in explicitly representing the dependencies of events, updating probabilities, and coping with uncertainties. The objective of this paper is to demonstrate the application of BNs in safety analysis of process systems. The first part of the paper shows those modeling aspects that are common between FT and BN, giving preference to BN due to its ability to update probabilities. The second part is devoted to various modeling features of BN, helping to incorporate multi-state variables, dependent failures, functional uncertainty, and expert opinion which are frequently encountered in safety analysis, but cannot be considered by FT. The paper concludes that BN is a superior technique in safety analysis because of its flexible structure, allowing it to fit a wide variety of accident scenarios.
Keywords:Bayesian network  Fault tree analysis  Accident analysis  Uncertainty modeling
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