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A Novel Method of Transformer Fault Diagnosis Based on Extension Theory and Information Fusion in Wireless Sensor Networks

机译:一种基于延伸理论的变压器故障诊断方法和无线传感器网络信息融合

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Wireless Sensor Networks (WSN) produce a large amount of data that need to be processed, delivered and assessed according to the application objectives. A WSN may be designed to monitor the working state of power transformer timely, efficiently and remotely by virtue of the sensor nodes placed in transformer oil, gathering the real-time data of the dissolved multi-component gases in oil. The way these data are manipulated by the sensor nodes is a fundamental issue and information fusion arises to process data gathered by sensor nodes and benefits from their processing capability. This paper presents a novel method to diagnose transformer fault making comprehensive use of extension theory and multivariate optimization of fusion theory, which can effectively and intelligently diagnose transformer fault types, providing more convenience for the workers on remote monitoring and improving the intelligent degree of the fault diagnosis.
机译:无线传感器网络(WSN)会根据应用目标产生需要处理,交付和评估的大量数据。可以设计WSN以及时,有效地和远程地监视电力变压器的工作状态,借助于更换变压器油的传感器节点,收集油中的溶解多组分气体的实时数据。这些数据由传感器节点操纵的方式是基本问题,信息融合出现为处理由传感器节点收集的数据并从其处理能力中获益。本文提出了一种诊断变压器故障的新方法,使融合理论综合使用融合理论,可以有效地智能地诊断变压器故障类型,为工作人员提供更多便利,从而提高故障智能程度诊断。

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