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A Regression Algorithm for Transformer Fault Detection

机译:变压器故障检测的回归算法

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A transformer’s failure can lead to disruption in power, decrease in system reliability and monetary loss to the utility and distribution companies. Fault detection of transformers is a critical step for improving the reliability of distribution systems. Regular maintenance checks can detect most of faulty conditions, but due to high cost and difficulty, the maintenance checked can only be performed annually. This paper proposes a simple on-line monitoring algorithm that uses a minimum set of sensor information, including ambient temperature, hot spot temperature, and load, to estimate several system parameters such as oil and thermal properties of the transformer and detect abnormal behavior. Fault can be detected when these parameter estimations experience sudden changes or the estimated values have sufficient deviation from their nominal values.
机译:变压器的失败可能导致功率中断,减少系统可靠性和公用事业和配送公司的货币损失。变压器故障检测是提高分配系统可靠性的关键步骤。定期维护检查可以检测到大部分故障条件,但由于高成本和困难,检查检查只能每年执行。本文提出了一种简单的在线监测算法,使用最小的传感器信息集,包括环境温度,热点温度和负载,以估算若干系统参数,例如变压器的油和热性能,并检测异常行为。当这些参数估计经历突然变化或估计值具有足够的偏差时,可以检测到故障。

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