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Hybrid Fuzzy and Flower Pollination Optimization Algorithm for Optimal Dispatch of Generating Units in the Existence of Electric Vehicles

机译:电动汽车中发电机组最优调度的模糊与花粉授粉混合优化算法

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The primary aim of the utility must be delivering of power supply to the utility customers with the minimal cost. Therefore, it is essential to prepare the optimal load dispatch strategy for minimization of generation cost. However, with the increase in environmental consciousness and impact of global warming, the emission dispatch from the generating stations should be viewed seriously along with generation cost reduction. The joined optimization of generation cost and emission cost has been referred as Dynamic Economic and Emission Dispatch (DEED). The combined objective function is subject to power flow, generator limit and ramp rate constraints for providing better operating conditions at the generation and transmission system. Additionally, the rapid increase of Plug-in Electric Vehicles (PEV's) in power networks makes the allocation of generating units more dynamic. The allocation of generating units under the dynamic behavior of PEV's at the energy network requires a dynamic optimization procedure. This paper proposes a hybrid Fuzzy and Flower Pollination Optimization Algorithm (FFPOA) for optimal load and emission dispatching. FFPOA is used to find the optimal solution and fuzzy is used to combine both economic and emission dispatch together. In addition, the solution process addresses the presence of PEV's in the power network along with the normal electric loads. The validation of the proposed algorithm is done with two benchmark test cases.
机译:公用事业的主要目标必须是以最小的成本为公用事业客户提供电源。因此,必须准备最佳的负荷分配策略,以最大程度地降低发电成本。但是,随着环境意识的增强和全球变暖的影响,在降低发电成本的同时,应认真考虑发电站的排放调度。发电成本和排放成本的联合优化被称为动态经济和排放调度(DEED)。组合的目标函数受功率流,发电机极限和斜坡率约束的影响,以便在发电和输电系统上提供更好的运行条件。此外,电力网络中插电式电动汽车(PEV)的快速增长使发电机组的分配更加动态。 PEV在能源网络中的动态行为下的发电机组分配需要动态优化程序。本文提出了一种混合的模糊与花粉授粉优化算法(FFPOA),以实现最佳的负荷和排放调度。 FFPOA用于找到最佳解决方案,而模糊则用于将经济调度和排放调度结合在一起。此外,解决方案还解决了电网中存在PEV以及正常的电力负荷的问题。所提出算法的验证是通过两个基准测试用例完成的。

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