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Optimal planning of wind and PV capacity in provincial power systems based on two-stage optimization algorithm

机译:基于两阶段优化算法的省级电力系统风与PV容量的最佳规划

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With the rapid development of wind power and photovoltaic (PV) power industry, the curtailment of wind power or PV power in `Three North' areas is serious, due to their short planning and construction time period, as well as being disjoined with the regional generation and grid plan. A novel formulation based on two-stage optimization under low-carbon economy is proposed in present paper to optimize the proportion of wind and PV capacity for provincial power systems, in which, carbon emissions of generator units and features of renewable resources are all taken into account. In the lower-level formulation, a time-sequence production simulation (TSPS) model that is suitable for actual power system has been adopted. In order to maximize benefits of energy-saving and emissions reduction resulted from renewable power generation, General Algebraic Modeling System (GAMS), a commercial software, is employed to optimize the annual operation of the power system. In the upper-level formulation, a hybrid bacterial foraging algorithm and particle swarm optimization (BFAPSO) algorithm is utilized to optimize the proportion of wind and PV capacity. The objective of the upper-level formulation is to maximize benefits of energy conservation and carbon emissions reductions optimized in the lower-level problem. Simulation results in practical provincial power systems validate the proposed model and corresponding solving algorithms. The optimization results can provide support to policy makers to make renewable energy related policies.
机译:随着风电和光伏(PV)发电产业,风电和光伏发电的'三北”地区削减的快速发展是严重的,由于其短期规划和建设时间,以及与区域被脱开发电和电网规划。基于低碳经济下两阶段的优化的一种新制剂在本文提出,以优化风力和PV容量为省电力系统的比例,其中,发电机单元和可再生资源的特征的碳排放量都考虑帐户。在较低级别的制剂,时间序列生产模拟(TSPS)模型,其适合于实际电力系统已经被采用。为了最大限度地源于可再生能源发电的节能减排效益,一般代数建模系统(GAMS),商业软件,采用优化电力系统的年度经营。在上一级的制剂,混合细菌觅食算法和粒子群优化(BFAPSO)算法来优化风力和PV容量的比例。上层配制剂的目的是最大限度地提高在较低级别的问题优化的能量节约和减少碳排放的益处。在实际的省电力系统仿真结果验证了模型和相应的解决算法。优化结果可以提供给决策者的支持,使可再生能源相关的政策。

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