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A Systematic Stochastic Petri Net Based Methodology for Transformer Fault Diagnosis and Repair Actions

机译:基于系统随机Petri网的变压器故障诊断和修复方法

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Transformer fault diagnosis and repair is a complex task that includes many possible types of faults and demands special trained personnel. Moreover, the minimization of the time needed for transformer fault diagnosis and repair is an important task for electric utilities, especially in cases where the continuity of supply is crucial. In this paper, Stochastic Petri Nets are used for the simulation of the fault diagnosis process of oil-immersed transformers and the definition of the actions followed to repair the transformer. Transformer fault detection is realized using an integrated safety detector, in case of sealed type transformer that is completely filled with oil, while a Buchholz relay and an oil thermometer are used, in case of transformer with conservator tank. Simulation results for the most common types of transformer faults (overloading, oil leakage, short-circuit and insulation failure) are presented. The proposed Stochastic Petri Net based methodology provides a systematical determination of the sequence of fault diagnosis and repair actions and aims at identifying the transformer fault and estimating the duration for transformer repair.
机译:变压器故障诊断和维修是一项复杂的任务,其中包括许多可能的故障类型,并需要经过专门培训的人员。此外,最大限度地减少变压器故障诊断和维修所需的时间对于电力公司而言是一项重要任务,尤其是在电源的连续性至关重要的情况下。在本文中,随机Petri网用于模拟油浸式变压器的故障诊断过程,并定义了维修变压器的动作。对于完全注满油的密封式变压器,使用集成的安全检测器可实现变压器故障检测,而对于带有储油箱的变压器,则使用Buchholz继电器和油温度计。给出了最常见的变压器故障类型(过载,漏油,短路和绝缘故障)的仿真结果。所提出的基于随机Petri网的方法为故障诊断和修复动作的顺序提供了系统的确定,旨在识别变压器故障并估计变压器修复的持续时间。

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