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Discriminating Between Loss of Excitation and Power Swings in Synchronous Generator Based on ANN

机译:基于ANN的同步发电机损失与电力摇摆损失之间的影响

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摘要

This paper presents a newly designed scheme based on neural networks to detect loss of excitation (LOE) in synchronous generators. The proposed scheme uses more accurate mechanism and needs fewer parameters in order to achieve fast and reliable detection of LOE. Furthermore, being able to discriminate between LOE and stable power swings is a major concern to enhance the performance of traditional LOE protection. Therefore, the designed network is trained to discriminate between both cases clearly. For training and testing the proposed neural network, MATLAB program has been used for simulation. In addition, by using comparison analysis between the designed network and the previous ones and the traditional MHO relay, the results ensure that the proposed scheme has more secure and fast characters in detecting and discriminating LOE.
机译:本文介绍了一种基于神经网络的新设计方案,以检测同步发电机中的激励(LOE)的损失。 该方案采用更准确的机制,需要更少的参数,以实现对LOE的快速可靠的检测。 此外,能够区分LOE和稳定的功率摇摆是提高传统焊盘保护性能的主要关注点。 因此,设计的网络培训以清楚地区分两种情况。 为了培训和测试所提出的神经网络,Matlab程序已被用于模拟。 此外,通过在设计的网络和之前的比较分析以及传统的MHO继电器之间,结果确保所提出的方案在检测和辨别焊接中具有更安全和快速的特征。

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