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Insulation condition assessment of high-voltage rotating machines using hybrid techniques

机译:使用混合技术评估高压旋转电机的绝缘状况

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摘要

The enduring life span of the machine insulation will be decided based on degradation level in motor and generator stator windings. The non-destructive diagnostic tools like dielectric loss and capacitance test and partial discharge (PD) analysis, recognized to access the deterioration in the insulation system of rotating machines. The experiments reveal various characteristic parameters such as leakage current, dielectric dissipation factor, the capacitance value, and PD magnitude. The integrity of the rotating machine can be find out by analyzing these parameters. This research study shows the hybrid method for prediction of insulation condition in the stator winding by utilizing the artificial neural network (ANN) with gravitational search algorithm in comparison with ANN and ANN-genetic algorithm. The advent of expert systems ensures the quality assurance and service life assessment of the high-voltage assets. It offers a predictive maintenance solution to personnel dealt with power utilities thereby increasing the uptime, reliability, and productivity, which in turn reducing the operating costs, downtime and unplanned outages. For testing and predicting the insulation status, several 11 kV machines are considered. The predicted results using hybrid techniques extend a close agreement with reference to the data obtained from the experiments performed. The proposed method indicate the competent and trustworthy, by the presented test results.
机译:电机绝缘的使用寿命取决于电动机和发电机定子绕组的退化程度。诸如介电损耗和电容测试以及局部放电(PD)分析之类的无损诊断工具被认为可以解决旋转机械绝缘系统中的劣化问题。实验揭示了各种特征参数,例如泄漏电流,介电损耗因子,电容值和PD幅值。通过分析这些参数可以找到旋转机器的完整性。这项研究表明,与人工神经网络和人工遗传算法相比,利用人工神经网络和重力搜索算法的混合预测定子绕组绝缘状态的方法。专家系统的出现确保了高压资产的质量保证和使用寿命评估。它为处理电力公用事业的人员提供了预测性维护解决方案,从而增加了正常运行时间,可靠性和生产率,进而减少了运营成本,停机时间和计划外的停机。为了测试和预测绝缘状态,考虑了几台11 kV机器。使用混合技术的预测结果与从执行的实验中获得的数据有着密切的一致性。通过给出的测试结果,所提出的方法表明了能力和可信度。

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