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Miscellaneous Energy Profile Management Scheme for Optimal Integration of Electric Vehicles in a Distribution Network Considering Renewable Energy Sources

机译:用于考虑可再生能源的分销网络中电动汽车最佳集成的杂项能量轮廓管理方案

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The integration of renewable energy and electric vehicles in smart grids aims to improve the grid network and reduce carbon emissions. In this regard, this study presents a new Energy Management Scheme (EMS) for the optimal charging and discharging of electric vehicles in a photovoltaic-present distribution network based on the availability of solar energy and power from the grid. For effective scheduling, the model splits a distribution network into residential and commercial areas, which are handled separately by two Electric Vehicle (EV) aggregators. A newly developed hybrid algorithm, named Chaotic Whale optimization Algorithm and Gravitational Search Algorithm (CWOAGSA), is integrated into a multiobjective framework to simultaneously minimize power loss, improve voltage stability, and reduce carbon emissions. Simulation results show that the proposed model can inject real power at a 60% EV penetration level without destabilizing the distribution network. The comparison of the CWOAGSA to the WOA, PSO, and GA shows a better minimization of real power loss. The CWOAGSA minimizes the total real power network losses with a 55% margin from the increased power loss due to the uncoordinated scheduling, and a 7% margin to the WOA.
机译:可再生能源和电动汽车在智能电网中的集成旨在改善网格网络并减少碳排放。在这方面,本研究提出了一种新的能量管理方案(EMS),用于基于太阳能和来自电网的电力的光伏目的分布网络中的电动车辆的最佳充电和放电。为了有效调度,该模型将分销网络分配到住宅和商业区域,由两个电动车辆(EV)聚合器分开处理。一种新开发的混沌鲸优化算法和重力搜索算法(CWoagsa)的新开发的混合算法集成到多目标框架中,以同时最小化功率损耗,提高电压稳定性和减少碳排放。仿真结果表明,该模型可以以60%的EV穿透水平注入实际功率,而不会破坏分配网络。 CWoagsa对WOA,PSO和GA的比较显示了实际功率损耗的更大最小化。 CWoagsa通过不协调的调度导致的功率损耗增加了55%的实际功率网络损失,以及WOA的7%。

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