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In-service inspection of static mechanical equipment on offshore oil and gas production plants: A decision support framework

机译:海上油气生产厂静态机械设备的在役检查:决策支持框架

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Inspection and maintenance decisions are key elements for assuring the technical integrity of oil and gas (O&G) production plants. In this context, the offshore industry is facing a challenge in replacing experienced personnel with new recruitments. The issue is further exacerbated when the job responsibilities involve high risk related decisions. Therefore, it is important to replace the human involvement in decision making processes with intelligent systems. The methods developed in operation research and/or the hybrid systems such as neurofuzzy methodologies provide a backbone for developing such systems. As the personnel working in the inspection planning deals with large amount of data from different data sources, it is vital to develop a mechanism to integrate these data to make the optimum decision. This paper proposes a framework for the mechanization of inspection planning and corresponding decision making processes, focusing on static mechanical equipment in offshore production plants.
机译:检查和维护决策是确保石油和天然气(O&G)生产厂技术完整性的关键要素。在这种情况下,离岸产业面临着以新招聘人员取代经验丰富的人才的挑战。当工作职责涉及与高风险相关的决策时,该问题会进一步加剧。因此,重要的是用智能系统来代替人类参与决策过程。在运筹学中开发的方法和/或诸如神经模糊方法之类的混合系统为开发此类系统提供了基础。由于检查计划中的人员处理来自不同数据源的大量数据,因此开发一种机制来集成这些数据以做出最佳决策至关重要。本文提出了检验计划和相应决策过程机械化的框架,重点是海上生产工厂的静态机械设备。

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