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Application of Hierarchical Colored Petri Nets for Real-Time Condition Monitoring of Internal Blowout Prevention (IBOP) in Top Drive Assembly System

机译:彩色有色Petri网在顶驱装配系统内部防喷器(IBOP)实时状态监测中的应用

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Offshore oil drilling is a complex process that requires a careful coordination of hardware and control systems. Fault monitoring systems play an important role in such systems for safe and profitable operations. Thus, predictive maintenance and monitoring signs of changes in operating conditions of a machine are critical to the overall oil production cycle. In this paper we are addressing the topic of condition monitoring of a critical part in the process of oil drilling, the Internal Blowout Preventer (IBOP) system in the top drive assembly in offshore oil drilling. In our work we aim to design an intelligent system for monitoring the health of IBOP system based using multisensory data. The process comprises two steps: 1) produce IBOP system logical behavior analysis using Hierarchical Colored Petri Nets (HCPN) approach; 2) develop a pattern recognition Neural Networks system for activity monitoring and fault detection for the top drive assembly. HCPN allows simulation and graphical visualization of dynamic discrete process and provides means to identify bottlenecks, deadlocks and optimization parameters. This work presents preliminary results of a model in Petri Nets used to simulate a monitoring system for IBOP vale in top drive assembly. The effects of failure rate and repair time of each component on system performance are researched.
机译:海上石油钻井是一个复杂的过程,需要对硬件和控制系统进行仔细的协调。故障监视系统在此类系统中扮演着重要角色,以确保安全和有利可图的运营。因此,机器的运行状况变化的预测性维护和监视信号对于整个采油周期至关重要。在本文中,我们将解决石油钻井过程中关键部分的状态监控问题,即海上石油钻井中顶部驱动组件中的内部防喷器(IBOP)系统。在我们的工作中,我们旨在设计一种基于多传感器数据的智能系统,以监控IBOP系统的运行状况。该过程包括两个步骤:1)使用分层有色Petri网(HCPN)方法进行IBOP系统逻辑行为分析; 2)开发模式识别神经网络系统,用于活动监视和顶部驱动器组件的故障检测。 HCPN允许对动态离散过程进行仿真和图形可视化,并提供识别瓶颈,死锁和优化参数的方法。这项工作介绍了Petri Nets中的模型的初步结果,该模型用于模拟顶部驱动器组件中IBOP阀的监控系统。研究了每个组件的故障率和维修时间对系统性能的影响。

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