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Real Time Alarm Processing for Predictive Failure Diagnosis in Petrochemical Plants

机译:实时警报处理,用于石化厂的预测性故障诊断

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摘要

In this paper it is proposed a methodology for real time processing of alarms as a way to point out possible abnormal operating condition predictively. The proposed methodology consists of a knowledge base regarding critical scenarios. The critical scenarios are modeled by rules with expected alarm sequences for each deviation process. Each monitored scenario is assigned an occurrence index, which measures how close these scenarios are from happening. Finally, the system ranks the most probable critical scenario based on the similarity index with the expected scenario. In order to validate the proposal, a study was carried out using a simulated case in typical oil refining industrial plant.
机译:本文提出了一种实时处理警报的方法,以预测性地指出可能的异常运行状况。拟议的方法包括有关关键方案的知识库。关键情景通过规则进行建模,并为每个偏差过程提供预期的警报序列。每个受监视的方案都分配有一个发生率索引,该索引衡量这些方案与发生情况的距离。最后,系统根据与预期情景的相似性指数对最可能的关键情景进行排名。为了验证该建议,在典型的炼油工业工厂中使用模拟案例进行了研究。

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