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Use of a static var compensator for generator negative-sequence current reduction

机译:使用静态无功补偿器降低发电机负序电流

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摘要

The presence of negative-sequence current in a generator, due to system imbalance, induces double-frequency currents in the rotor iron. These currents may cause rotor overheating and serious damage if permitted to persist. Negative-sequence current relaying practices that alarm or trip the generator before damage can occur are well established in the power industry. However, tripping major generation facilities may create social, security, and economic problems. In addition, for an isolated system with relatively poor frequency regulation, the combination of negative-sequence current and frequency perturbation may cause supersynchronous resonance in turbine blades if one of the mechanical resonance frequencies of the turbine blade is close to double the system frequency (60 Hz). This paper presents a method for correcting the problem at source by reducing the negative-sequence current through a specially designed delta-connected static var compensator (SVC). The derivation of the mathematical model and computer simulations verify and explain the capability of this approach. In addition, a scaled-down model is implemented in a physical simulation laboratory. Some laboratory test results are also presented.
机译:由于系统不平衡,发电机中出现的负序电流会在转子铁芯中感应出双频电流。如果允许这些电流持续存在,可能会导致转子过热并造成严重损坏。电力行业中已经建立起负序电流继电器的做法,可以在发生损坏之前对发电机进行报警或跳闸。但是,绊倒主要发电设施可能会造成社会,安全和经济问题。此外,对于频率调节相对较差的隔离系统,如果涡轮叶片的机械共振频率之一接近系统频率的两倍,则负序电流和频率扰动的组合可能会在涡轮叶片中引起超同步共振(60赫兹)。本文提出了一种通过在经过专门设计的三角形连接的静态无功补偿器(SVC)上减小负序电流来从源头纠正问题的方法。数学模型和计算机仿真的推导证实并解释了这种方法的能力。另外,在物理模拟实验室中实现了按比例缩小的模型。还介绍了一些实验室测试结果。

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