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Biobjective Optimization-Based Frequency Regulation of Power Grids with High-Participated Renewable Energy and Energy Storage Systems

机译:基于Biobjective优化的高参与可再生能量和能量存储系统电网频率调节

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Large-scale renewable energy sources connected to the grid bring new problems and challenges to the automatic generation control (AGC) of the power system. In order to improve the dynamic response performance of AGC, a biobjective of complementary control (BOCC) with high-participation of energy storage resources (ESRs) is established, with the minimization of total power deviation and the minimization of regulation mileage payment. To address this problem, the strength Pareto evolutionary algorithm is employed to quickly acquire a high-quality Pareto front for BOCC. Based on the entropy weight method (EWM), grey target decision-making theory is designed to choose a compromise dispatch scheme that takes both of the operating economy and power quality into account. At last, an extended two-area load frequency control (LFC) model with seven AGC units is taken to verify the effectiveness and the performance of the proposed method.
机译:连接到电网的大型可再生能源为电力系统的自动生成控制(AGC)带来了新的问题和挑战。 为了提高AGC的动态响应性能,建立了互补控制(BOCC)的生物页,具有高能量存储资源(ESRS)的互补性(ESRS),最大限度地减少了总功率偏差和最小化监管里程付款。 为了解决这个问题,采用强度帕圈进化算法来快速获取BOCC的高质量帕累托前面。 基于熵权法(EWM),灰色目标决策理论旨在选择一个折衷调度方案,以考虑其运营经济和电能质量。 最后,采用七个AGC单位的扩展两扇区负载频率控制(LFC)型号来验证所提出的方法的有效性和性能。

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