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Transient Stability Enhancement Brought by Rotor Angle Droop Control When Tie-line Faults Happen

机译:转子角度下降控制当扎线故障发生时,通过转子角度控制带来的瞬态稳定性增强

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In order to use remote wind power/solar energy, the scale of power grid interconnection grow rapidly. If transient stability can be increased when faults happen on tie lines, the transmission capacity can be increased too. Dynamic braking can increase transient stability by increasing deceleration area, but it's difficult to coordinate several braking devices and calculate braking amount in real time. Things are no longer so after rotor angle droop (RAD) controllers are deployed across the power system. Since all rotor angles of generators will be fixed in rotating coordination system determined by global position system (GPS) pulse per second (PPS) signal, dynamic braking amount can be calculated by RAD controller by using local speed and rotor measurement. This paper shows the revised equal area criteria (EAC) when this kind of dynamic braking is used. The relationships between RAD controller parameter (saturation threshold) and the braking effect are also investigated. Simulation results in IEEE 68 nodes system show that, by applying dynamic braking on several generators simultaneously, critical clearing time can be increased dramatically when faults happen on tie lines.
机译:为了使用远程风电/太阳能,电网互连的规模迅速生长。如果在扎带上发生故障时可以增加瞬态稳定性,则可以增加传输容量。动态制动可以通过增加减速区域提高瞬态稳定性,但是难以协调若干制动装置并实时计算制动量。在转子角度下垂(RAD)控制器跨电力系统上部署后,事情不再是。由于发电机的所有转子角度将固定在由全局位置系统(GPS)脉冲(PPS)信号确定的旋转配合系统中,因此可以通过使用局部速度和转子测量来计算动态制动量。本文显示了使用这种动态制动时的修订式等区域标准(EAC)。还研究了RAD控制器参数(饱和阈值)与制动效果之间的关系。 IEEE 68节点系统的仿真结果表明,通过同时在多个发电机上施加动态制动,当绑定线上发生故障时,可以显着提高临界清算时间。

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