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A Fault Diagnosis Method of Transmission Network Based on Bayesian Network and Fault Decision Table

机译:基于贝叶斯网络和故障决策表的输电网络故障诊断方法

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In view of the complexity and low accuracy of existing fault diagnosis methods for transmission network, this paper proposes a novel transmission network fault diagnosis method combining simplified Bayesian network and fault decision table. First, using the information from Supervisory Control and Data Acquisition (SCADA) system, there develop a fault area identification method, which utilizes circuit breaker (CB) information to isolate the components to build a fault area. In fault area, there creates the simplified Bayesian network to associate components with CBs. Further, the paper proposes a calculation method to calculate the fault probability of components in fault area, which is able to determine the suspicious component set. According to the sequence of relay actions, a fault decision table for the suspicious component set can be established. Finally, the fault condition of components, CBs and protection devices are diagnosed by comparing the local fault decision table. The above method greatly simplifies the complexity of Bayesian network, and the test results show that the speed and accuracy of its fault diagnosis have been significantly improved.
机译:针对现有输电网络故障诊断方法的复杂性和准确性低的问题,提出一种结合简化贝叶斯网络和故障决策表的输电网络故障诊断方法。首先,利用来自监督控制和数据采集(SCADA)系统的信息,开发了一种故障区域识别方法,该方法利用断路器(CB)信息隔离组件以构建故障区域。在故障区域,创建简化的贝叶斯网络以将组件与CB相关联。此外,本文提出了一种计算故障区域中组件故障概率的计算方法,该方法能够确定可疑组件集。根据中继动作的顺序,可以建立可疑组件集的故障决策表。最后,通过比较本地故障决策表来诊断组件,断路器和保护装置的故障状况。上述方法大大简化了贝叶斯网络的复杂度,测试结果表明,其故障诊断的速度和准确性得到了显着提高。

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