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A Method of Fault Diagnosis for Secondary Loop in Intelligent Substation Based on Bayesian Algorithm

机译:基于贝叶斯算法的智能变电站次级回路故障诊断方法

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In order to improve the accuracy and maintenance efficiency of fault diagnosis for secondary loop in intelligent substation, this paper proposes a fault diagnosis method based on improved Bayesian algorithm. Firstly, the physical loop and virtual loop models of the secondary loop are established according to the SCD file, and their mapping relationship is established. Secondly, the set of suspicious fault components in the secondary loop is obtained according to the abnormal degree table of physical components. Then, the improved Bayesian algorithm is used to evaluate the components in the set of suspicious fault components. Finally, the output of the Bayesian algorithm is the Bayesian anomaly degree of the suspicious fault components. The component with the highest Bayesian anomaly degree is considered as the fault component. In order to detect the effectiveness and the feasibility of the proposed method, this paper conducts a fault diagnosis case and the diagnosis results demonstrate that the proposed diagnosis method can obtain good discriminant result.
机译:为了提高智能变电站中次循环故障诊断的准确性和维护效率,提出了一种基于改进贝叶斯算法的故障诊断方法。首先,根据SCD文件建立辅循环的物理循环和虚拟循环模型,并且建立其映射关系。其次,根据物理组件的异常表获得辅助循环中的一组可疑故障组件。然后,改进的贝叶斯算法用于评估可疑故障组件集中的组件。最后,贝叶斯算法的输出是贝叶斯异常的可疑故障组件。具有最高贝叶斯异常程度的组件被认为是故障组件。为了检测所提出的方法的有效性和可行性,本文进行了故障诊断情况,诊断结果表明,所提出的诊断方法可以获得良好的判别结果。

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