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Predictive Diagnosis of High-Power Transformer Faults by Networking Vibration Measuring Nodes With Integrated Signal Processing

机译:通过将振动测量节点与集成信号处理网络连接,可以对大功率变压器故障进行预测诊断

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This paper addresses the problem of predictive diagnostic in high-power transformers. Particularly, this paper is focused on their use in uninterruptible power supply systems for safety critical applications, such as railway interlocking signaling installations. With respect to the state of the art, where typically only thermal and electrical faults are monitored, this work proposes a distributed network of measuring nodes where also vibration-based mechanical stress diagnosis is implemented. Mechanical degradation is tracked through vibration measures, using multichannel accelerometers, with sensitivity down to 0.5 mg and local signal processing in the transformed frequency domain, up to 1 kHz. A compact hardware-software implementation of the nodes is also presented. The performances of the diagnostic system are assessed through experimental measurements on real three-phase high-power transformers used in railway applications.
机译:本文解决了大功率变压器中的预测诊断问题。特别是,本文重点介绍了它们在安全关键应用(如铁路互锁信号装置)中不间断电源系统中的使用。关于现有技术,通常仅监视热和电气故障,这项工作提出了分布式的测量节点网络,在该网络中还实施了基于振动的机械应力诊断。使用多通道加速度计通过振动测量来跟踪机械性能下降,灵敏度低至0.5 mg,变换后的频域中的本地信号处理高达1 kHz。还介绍了节点的紧凑硬件软件实现。通过对铁路应用中使用的实际三相大功率变压器进行实验测量,可以评估诊断系统的性能。

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