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Fault detection in copper-rotor SEIG system using artificial neural network for distributed wind power generation

机译:基于人工神经网络的铜转子SEIG系统故障检测

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Too much dependence on large, polluting and expensive generation is no longer an option that Canadians would endorse in this era of distributed generation through renewable energy systems. Understanding the significance and prospects of self-excited induction generators (SEIGs) in distributed wind power generation, this paper presents an exclusive study of fault and a artificial neural network (ANN) based technique for its detection across the stator terminals of the SEIG. Firstly, two-axis model of a 7.5 hp industrial copper-rotor SEIG is developed to perform numerical investigations under static loading conditions, faulty conditions and hence derive data for designing the ANN based detection scheme. Fault tolerant capability of the machine is experimentally elicited by applying a short-circuit fault across the terminals of the machine and the need for fault detection in the SEIG system is discussed. Lastly, a novel ANN based scheme is developed for fault detection and numerical investigations are performed to illustrate the performance of the developed scheme. This paper aims to provide a good study to understand and develop a ANN based device for fault detection in a SEIG system.
机译:在这个通过可再生能源系统进行分布式发电的时代,过分依赖大型,污染和昂贵的发电不再是加拿大人认可的选择。了解自励感应发电机(SEIG)在分布式风力发电中的意义和前景,本文提出了故障的独家研究和基于人工神经网络(ANN)的SEIG定子接线端检测技术。首先,建立了一个7.5 hp工业铜转子SEIG的两轴模型,以在静态载荷条件,故障条件下进行数值研究,并由此得出用于设计基于ANN的检测方案的数据。通过在机器的端子之间施加短路故障来通过实验得出机器的容错能力,并讨论了SEIG系统中故障检测的需求。最后,针对故障检测开发了一种基于ANN的新颖方案,并进行了数值研究以说明所开发方案的性能。本文旨在为理解和开发基于ANN的SEIG系统中的故障检测设备提供良好的研究。

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