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Adaptive protection technique for controllable series compensated EHV transmission systems using neural networks

机译:基于神经网络的可控串联补偿超高压输电系统的自适应保护技术

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As is well known, flexible AC transmission systems (FACTS) provide opportunities of better utilizing existing transmission systems by using power electronics based controllers. One of the main FACTS devices is controllable series compensation (CSC), which has an ability to control the compensated impedance by changing the firing angle of thyristors. However, the implementation of this technology will pose new problems to conventional line protection schemes. This paper proposes a novel adaptive protection scheme for CSC transmission systems by using a neural network approach. It places emphasis on the feature extraction, the topology and training of neural networks. Some preliminary test results clearly show the trained neural network is able to make correct trip decisions from abnormal voltage waveforms using associations learned from previous experiences. In addition, the scheme also has the ability to identify faulted phases. The test results successfully demonstrate the feasibility of neural networks based adaptive protection for CSC transmission systems.
机译:众所周知,灵活的交流输电系统(FACTS)通过使用基于电力电子的控制器,提供了更好地利用现有输电系统的机会。 FACTS的主要器件之一是可控串联补偿(CSC),它具有通过改变晶闸管的触发角来控制补偿阻抗的能力。但是,该技术的实施将给传统的线路保护方案带来新的问题。本文采用神经网络方法提出了一种新颖的CSC传输系统自适应保护方案。它着重于神经网络的特征提取,拓扑和训练。一些初步的测试结果清楚地表明,受过训练的神经网络能够使用从以前的经验中学到的关联性,根据异常电压波形做出正确的跳闸决策。另外,该方案还具有识别故障相的能力。测试结果成功地证明了基于神经网络的CSC传输系统自适应保护的可行性。

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