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首页> 外文期刊>International journal of electrical power and energy systems >Contribution of GCSC to regulate the frequency in multi-area power systems considering time delays: A new control outline based on fractional order controllers
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Contribution of GCSC to regulate the frequency in multi-area power systems considering time delays: A new control outline based on fractional order controllers

机译:GCSC对考虑时间延迟的多区域电力系统中频率的贡献:基于分数阶控制器的新控制轮廓

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This paper addresses the application of the gate controlled series capacitor (GCSC) in coordination with automatic generation control (AGC) for providing better dynamic responses in interconnected multi-area power systems. A novel controller scheme called Hybrid controller for modeling the GCSC is proposed. The proposed control model consists of a fractional-order proportional-integral-derivative (FOPID) controller and a tilt -integral-derivative (TID) one. Optimized coefficients of the controllers are obtained by applying the Sine-Cosine algorithm (SCA). The delay in communication links as a common feature in wide area control of power systems may cause instability problem. So, a robust stability criterion is presented to estimate the maximum delay time which allows an AGC scheme embedded with the GCSC damping controller to retain stable. Comprehensive discussions are presented on a deregulated two-area power system and a traditional three-area one. Simulation results confirm that the proposed Hybrid controller is capable to achieve better dynamic responses and provide better coordination between the GCSC and AGC in comparison to the other coordinated controllers including PID-based GCSC-AGC, TID-based GCSC-AGC, and FOPID-based GCSC-AGC ones. Eventually, the sensitivity analysis is accomplished to assess the robustness property of the proposed controller against the variations of the parameters.
机译:本文解决了栅极控制串联电容器(GCSC)在与自动生成控制(AGC)的协调中的应用,用于在互联的多面积电力系统中提供更好的动态响应。提出了一种称为用于建模GCSC的混合控制器的新型控制器方案。所提出的控制模型由分数级比例积分 - 衍生物(FOPID)控制器和倾斜 - 恒星 - 衍生物(TID)组成。通过应用正弦余弦算法(SCA)获得控制器的优化系数。通信链路作为电力系统广域控制中的共同特征的延迟可能导致不稳定问题。因此,提出了一种稳定的稳定性标准来估计允许嵌入与GCSC阻尼控制器嵌入的AGC方案以保持稳定的最大延迟时间。综合讨论展示在解除管制的两域电力系统和传统的三个区域。仿真结果证实,所提出的混合控制器能够实现更好的动态响应,并与其他协调控制器相比,GCSC和AGC之间提供更好的协调,包括基于PID的GCSC-AGC,基于TID的GCSC-AGC和FoPid的基于FoPID GCSC-AGC。最终,实现了灵敏度分析以评估所提出的控制器的鲁棒性特性,以抵抗参数的变化。

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