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首页> 外文期刊>Journal of loss prevention in the process industries >Model-based information fusion investigation on fault isolation of subsea systems considering the interaction among subsystems and sensors
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Model-based information fusion investigation on fault isolation of subsea systems considering the interaction among subsystems and sensors

机译:基于模型的信息融合研究,用于考虑子系统和传感器互动的海底系统的故障隔离

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摘要

The offshore oil industry has expanded to deep water and Arctic. The harsh operating conditions (e.g., ice and strong wind) and increasing complicated system raise the occurrence likelihood of system faults. This requires timely fault isolation and management in the subsea system. However, the offshore oil industry mainly relies on humans to isolate faults based on alarms. With harsh operating conditions and increasing complicated system, this industry urgently needs research on more efficient fault isolation and cause diagnosis methods. Unfortunately, limited research is conducted on fault isolation method in the offshore oil industry. Furthermore, in industry 4.0 era, large amounts of information are obtained. This provides precondition for the application of information fusion technique which aims to improve diagnosis results. However, to the authors' knowledge, information fusion has not been much studied in the fault isolation of the offshore oil industry. Moreover, the interaction of different subsystems contains valuable information. How the interaction of different subsystems can influence the fault diagnosis has not been explored. This paper proposes a Bayesian network (BN) based method for timely fault isolation and cause diagnosis for the offshore oil industry. The work fuses different information, and it also includes the dependency among different subsystems in the fault diagnosis. As an important alarm source, false alarms are also taken into account in the model. A case study on the subject of the subsea wellhead and chemical injection systems is conducted to demonstrate the functions and merits of the proposed method.
机译:海上石油工业扩展到深水和北极。苛刻的操作条件(例如,冰和强风)和增加复杂的系统提高了系统故障的发生可能性。这需要在海底系统中及时的故障隔离和管理。然而,海上石油工业主要依赖于人类,以基于警报隔离故障。通过恶劣的运行条件和增加复杂的系统,该行业迫切需要研究更有效的故障隔离和导致诊断方法。不幸的是,有限的研究是在海上石​​油工业中的故障隔离方法进行的。此外,在工业4.0时代,获得了大量信息。这提供了应用信息融合技术的前提,该技术旨在改善诊断结果。然而,对于提交人的知识,信息融合在海上石油工业的故障隔离中没有很多研究。此外,不同子系统的相互作用包含有价值的信息。如何探讨不同子系统的互动可能影响故障诊断。本文提出了一种基于贝叶斯网络(BN)的及时故障隔离方法,导致海上石油工业诊断。工作融合了不同的信息,它还包括故障诊断中不同子系统之间的依赖性。作为一个重要的警报源,模型中也考虑了误报。对海底井口和化学喷射系统的主题进行了一个案例研究,以证明所提出的方法的功能和优点。

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