转子角度控制对暂态稳定增强的作用分析

Q. Wei, Weimin Guo, Xueshan Han, Tianya Li, Ming Yang
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引用次数: 4

摘要

目前,每台发电机的转子绝对角度是不定时变化的,因此通过测量转子角度来提高暂态稳定性的可能性较小。在绝对转子角度控制器在整个电力系统中部署之后,情况就不再是这样了。电力系统的频率将保持不变,每台发电机的绝对转子角大部分时间将保持在调度中心给出的目标值上。故障发生后,每台发电机都可以通过本地PMU(相量测量单元)测量,知道自己在整个系统中的位置。然后,角度控制器可以命令涡轮阀或电力电子制动装置加速或减速发电机转子,使其回到原来的位置。因此,稳定和秩序将得到恢复。在角度控制器中限制了汽轮机阀门的变化幅度,因此不会对热力系统造成破坏。此外,阀门操作和动态制动可以无缝集成,以获得更好的效果。仿真结果表明,该原理可以提高SMIB和多机系统的临界故障清除时间和暂态稳定性。
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Analysis on the effect of rotor angle control for transient stability enhancement
For the time being, the absolute rotor angle of every generator is changing from time to time, so it's less likely to improve transient stability by use of rotor angle measurement. Things are no longer so after absolute rotor angle controllers are deployed across the power system. The frequency of the power system will remain constant, and the absolute rotor angle of every generator will be kept at the aim value given by dispatching center most of the time. After fault happens, every generator can know its position in entire system through local PMU (phasor measurement unit) measurement. The angle controller can then give order to turbine valve or power electronic braking devices to accelerate or decelerate the generator rotor so that it comes back to its original position. Consequently, stability and order will be restored. The changing magnitude of turbine valve is restricted in the angle controller, so there is no damage to thermal system. Besides, valve operation and dynamic braking can be integrated seamlessly to get better results. Simulations results show that this principle can increase critical fault-clearing time and transient stability in both SMIB and multi machine system.
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