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PID controller design for interval load frequency control system with communication time delay

机译:具有通信时间延迟的间隔负载频率控制系统的PID控制器设计

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In load frequency control (LFC), the data from measurements sensors are transmitted from far-off remote terminal units (RTUs) to the controlling center and control signals are transmitted from the controlling center to the plant location. These transmissions of various signals are possible via communication channels which are characterized by constant delays. Modern day power systems are quite complex in the present deregulated environment. This complexity has been further enhanced by the inherent delay introduced by the communication channels. Because of the communication delay, the conventional load frequency control design techniques give unacceptable performance. Further, in case of severe delay, the load frequency control system may become unstable. In view of this, a proportional-integral-derivative (PID) controller is designed using stability boundary locus (SBL) approach for interval single area power system with non-reheated thermal turbine and reheated thermal turbine having communication delay and then the proposed approach is validated on the multi-area IEEE 39-bus New England test system. The simulation results indicate the efficacy of the proposed methodology.
机译:在负载频率控制(LFC)中,来自测量传感器的数据从远程远程终端单元(RTU)发送到控制中心,并且控制信号从控制中心传输到工厂位置。各种信号的这些传输是可以通过恒定延迟特征的通信信道的可能性。现代化的日期电力系统在目前的解除管制环境中非常复杂。通过通信信道引入的固有延迟,已经进一步增强了这种复杂性。由于通信延迟,传统的负载频率控制设计技术提供了不可接受的性能。此外,在严重延迟的情况下,负载频率控制系统可能变得不稳定。鉴于此,使用具有非重新加热的热涡轮机和具有通信延迟的重新加热的热涡轮机和再加热的热涡轮机的稳定性边界基因座(SBL)方法设计了一种比例积分衍生物(PID)控制器。在新英格兰测试系统的多区IEEE 39总线上验证。仿真结果表明所提出的方法的功效。

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