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An artificial intelligence based model for implementation in the petroleum storage industry to optimize maintenance

机译:一种基于人工智能的模型,可在石油存储行业中实施以优化维护

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Sporadic equipment breakdowns and unplanned downtime due to the predominant use of Reactive Maintenance and Preventive Maintenance at Company X necessitate the enhancement of the maintenance management system. This paper presents an Artificial Intelligence based model for optimizing the conventional maintenance strategies currently employed. Critical equipment at the fuel depot was identified through the Nowlan and Heap risk analysis matrix procedure. The critical equipment identified was pumps, storage tanks, valves and the standby power supply system. Ishikawa diagrams and FMECA analysis were then used in optimizing the Preventive Maintenance strategy and developing the Intelligent Maintenance model for each critical equipment. The focus of the AI Maintenance model was on pumps, as pumps were identified to be the most critical equipment. An Expert System was developed, tested and run for the pumps. The pump diagnosis application developed was programmed using Jess, a rule based system that accepts input from the operators.
机译:由于X公司主要使用被动维护和预防性维护而导致的零星设备故障和计划外停机,因此有必要增强维护管理系统。本文提出了一种基于人工智能的模型,用于优化当前采用的常规维护策略。通过Nowlan和Heap风险分析矩阵程序确定了燃料库中的关键设备。确定的关键设备是泵,储罐,阀门和备用电源系统。然后,使用Ishikawa图和FMECA分析来优化预防性维护策略,并为每个关键设备开发智能维护模型。 AI维护模型的重点是泵,因为泵被认为是最关键的设备。开发,测试并运行了泵的专家系统。开发的泵诊断应用程序使用Jess编程,Jess是一个基于规则的系统,可以接受操作员的输入。

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