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APPLICATION OF IN-LINE INSPECTION AND FAILURE DATA TO REDUCE SUBJECTIVITY OF RISK MODEL SCORES FOR UNINSPECTED PIPELINES

机译:在线检查和故障数据在减少未检验管道的风险模型得分中的应用

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Pipeline risk models are used to prioritize integrity assessments and mitigative actions to achieve acceptable levels of risk. Some of these models rely on scores associated with parameters known or thought to contribute to a particular threat. For pipelines without in-line inspection (ILI) or direct assessment data, scores are often estimated by subject matter experts and as a result, are highly subjective. This paper describes a methodology for reducing the subjectivity of risk model scores by quantitatively deriving the scores based on ILI and failure data. This method is applied to determine pipeline coating and soil interaction scores in an external corrosion likelihood model for uninspected pipelines. Insights are drawn from the new scores as well as from a comparison with scores developed by subject matter experts.
机译:管道风险模型用于确定完整性评估和缓解措施的优先级,以达到可接受的风险水平。这些模型中的某些模型依赖于与已知或认为对特定威胁有贡献的参数相关的分数。对于没有在线检查(ILI)或直接评估数据的管道,分数通常由主题专家估算,因此,它们是高度主观的。本文介绍了一种方法,该方法可通过基于ILI和失败数据定量得出分数来降低风险模型分数的主观性。该方法用于确定未检查管道的外部腐蚀可能性模型中的管道涂层和土壤相互作用评分。从新分数以及与主题专家开发的分数的比较中得出见解。

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