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Linear Quadratic Regulator Technique for Optimal Load Frequency Controller Design of Interconnected Linear Power Systems

机译:互联线性电源系统最优负载频率控制器设计的线性二次调节器技术

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Frequency is a significant criterion for the reliability of large-scale multi-area power systems. Active power balance and steady frequency are necessary to provide stability for the interconnected power system. It is interesting to note that frequency relies on active power balance. Therefore, in order to enhance the reliability of the power networks, a load frequency control (LFC) system must be designed to control the power generation and the active power at the tie lines. In this paper, a subset of classical control theory regarded as an optimal control concept was utilized to design controls for the complex power systems by minimizing a performance index based on the system variables. The goal of optimal regulator design is to determine the optimal control law of a two-area power system that can shift the system from an initial state to the final state in such a way that a given performance index is significantly mitigated. The performance indicator is chosen to offer the best possible trade-off between performance and control costs. In the optimal control method used in this paper, a quadratic performance index is used, and it is based on minimum energy criteria and minimal error. The MATLAB / Simulink environment was used to simulate the overall system structure.
机译:频率是大规模多区电力系统可靠性的重要标准。有效功率平衡和稳态频率是为互联电力系统提供稳定性的必要条件。值得注意的是,频率依赖于有效功率平衡。因此,为了提高电力网络的可靠性,必须设计负载频率控制(LFC)系统以控制带线处的发电和有功功率。在本文中,通过基于系统变量最小化性能索引来利用所谓的最佳控制概念的经典控制理论的子集来设计用于复杂电力系统的控制。最优稳压器设计的目的是确定两域电力系统的最佳控制定律,可以以初始状态将系统从初始状态转换到最终状态,使得给定的性能指数显着减轻。选择绩效指标,以提供性能和控制成本之间的最佳权衡。在本文使用的最佳控制方法中,使用二次性能指数,并且基于最小能量标准和最小误差。 MATLAB / SIMULINK环境用于模拟整体系统结构。

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