Article ID Journal Published Year Pages File Type
587018 Journal of Loss Prevention in the Process Industries 2006 5 Pages PDF
Abstract

Currently, failure-based risk assessments in the process industry do not empirically take into account the type of chemicals processed in equipment, mainly because chemical-specific failure rate data barely exist. This paper suggests a methodology to calibrate failure-based risk assessment predicated on the chemical being processed in equipment. The methodology uses a data mining tool known as the association rule. Specifically, the lift association rule is utilized (the Lift Methodology). By extracting equipment failure information from incident databases based on the chemical involved in the process, the Lift Methodology leads to more accurate equipment-related risk assessment.

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Physical Sciences and Engineering Chemical Engineering Chemical Health and Safety
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