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Health index calculation for power transformers using technical and economical parameters

机译:使用技术和经济参数计算电力变压器的健康指数

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摘要

In this study technical diagnostic tests and economical lifetime assessment of transformers are investigated to evaluate the overall health condition of working transformers. Two artificial intelligence models including artificial neural network and adaptive neuro-fuzzy inference system models are presented to determine the health index for transformers. The technical and economical parameters are used as input parameters to develop the models. Technical parameters are extracted from oil characteristics and dissolved gas analysis of different transformers. Economical parameters are constructed with transformer capital investments, maintenance and operating costs. The models are developed using 226 experimental field datasets of transformers technical and economical parameters. The models are trained using 80% of the experimental datasets. The remaining 20% is used to evaluate the performance and applicability of the models. The results prove that the models can be used to determine the health condition of transformers with high accuracy.
机译:在这项研究中,对变压器的技术诊断测试和经济寿命评估进行了研究,以评估工作中的变压器的总体健康状况。提出了两种人工智能模型,包括人工神经网络模型和自适应神经模糊推理系统模型,以确定变压器的健康指标。技术和经济参数用作模型开发的输入参数。从不同变压器的油特性和溶解气体分析中提取技术参数。经济参数由变压器的资本投资,维护和运营成本构成。该模型是使用226个变压器技术和经济参数的实验现场数据集开发的。使用80%的实验数据集对模型进行训练。剩余的20%用于评估模型的性能和适用性。结果证明,该模型可用于高精度确定变压器的健康状况。

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