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Information fusion method of multi-data resources and its application to fault diagnosis in power system

机译:多数据资源的信息融合方法及其在电力系统故障诊断中的应用

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Fast and accurate fault diagnosis is a necessary precondition of isolating fault components and restoring a faulted power system. The existent fault diagnosis methods based on the protective relay and circuit breaker acting information do not take full advantage of the electrical measurements. The electrical measurements can provide more direct information for fault diagnosis, but they have been rarely used in the existing fault diagnosis methods. A new fault diagnosis method using both two kinds of information and the D-S theory is presented. Following the idea of information fusion, PN fault degree obtained by fuzzy Petri net while wavelet energy variation degree and wavelet singularity variation degree by wavelet transform are extracted for power system fault diagnosis. Then fault diagnosis is conducted by using information fusion based on D-S evidence theory and the basic probability assignment is set up. While a decision-making method based on the basic probability number is used to diagnose the fault elements. Simulations of a practical system show that the proposed diagnosis method can effectively diagnose the fault elements, when errors occur in the protective relay and circuit-breaker alarm messages.
机译:快速准确的故障诊断是隔离故障组件并恢复故障电源系统的必要前提。基于保护继电器和断路器作用信息的存在故障诊断方法不充分利用电测量。电测量可以为故障诊断提供更直接的信息,但它们很少用于现有的故障诊断方法。介绍了使用两种信息和D-S理论的新故障诊断方法。在信息融合的思想之后,通过模糊Petri网获得的PN故障程度,而通过小波变换的小波能量变化度和小波奇异性变化度进行电力系统故障诊断。然后通过基于D-S证据理论使用信息融合来进行故障诊断,并建立了基本概率分配。虽然使用基于基本概率编号的决策方法来诊断故障元素。实际系统的仿真表明,当在保护继电器和断路器报警消息中发生错误时,所提出的诊断方法可以有效地诊断故障元素。

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