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Bayesian Networks for Fault Diagnosis of a Large Power Station and its Transmission Lines

机译:大型电站及其输电线路故障诊断的贝叶斯网络

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This article proposes a simplified fault-diagnosis system based on Bayesian networks with noisy-OR/AND nodes to estimate the faulty item/section(s) of a large power station and its transmission lines. The proposed method utilizes the final information of protective relays and corresponding circuit breakers to construct the Bayesian fault diagnosis model for each section. The learning algorithm for Bayesian network parameters takes the sum of the mean-squared error between the expected values and the computed values of certain target variables as the minimizing optimization function to adjust the network parameters continuously. By comparing the result beliefs of possible faulty sections, the faulty item/section(s) becomes a candidate. In order to test the validity and feasibility of that method, a computer simulation of the High Dam power station and its 500-kV transmission lines is used. It is shown that the proposed diagnosis method has many merits, such as rapid reasoning, less storage memory and processing time, easy correctness of diagnosing results, flexibility, and application into a large power station and its transmission lines for real-time fault diagnosis. Finally, it assists and supports the operator of the control room to make the right decision, especially in case of communication loss.
机译:本文提出了一种基于贝叶斯网络的简化的故障诊断系统,该系统具有嘈杂的OR / AND节点,以估计大型电站及其输电线路的故障项目/区段。所提出的方法利用保护继电器和相应断路器的最终信息来构造每个部分的贝叶斯故障诊断模型。贝叶斯网络参数的学习算法将期望值和某些目标变量的计算值之间的均方误差之和作为最小化优化函数,以连续调整网络参数。通过比较可能有故障部分的结果信念,有缺陷的项目将成为候选对象。为了测试该方法的有效性和可行性,对高坝电站及其500 kV输电线路进行了计算机仿真。结果表明,所提出的诊断方法具有推理速度快,存储和处理时间少,诊断结果易于正确性,灵活性强等优点,可应用于大型电站及其输电线路进行实时故障诊断。最后,它可以帮助并支持控制室的操作员做出正确的决定,尤其是在通讯中断的情况下。

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