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Multi-objective energy management in microgrids with hybrid energy sources and battery energy storage systems

机译:具有混合能源和电池储能系统的微电网中的多目标能量管理

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Microgrid with hybrid renewable energy sources is a promising solution where the distribution network expansion is unfeasible or not economical. Integration of renewable energy sources provides energy security, substantial cost savings and reduction in greenhouse gas emissions, enabling nation to meet emission targets. Microgrid energy management is a challenging task for microgrid operator (MGO) for optimal energy utilization in microgrid with penetration of renewable energy sources, energy storage devices and demand response. In this paper, optimal energy dispatch strategy is established for grid connected and standalone microgrids integrated with photovoltaic (PV), wind turbine (WT), fuel cell (FC), micro turbine (MT), diesel generator (DG) and battery energy storage system (ESS). Techno-economic benefits are demonstrated for the hybrid power system. So far, microgrid energy management problem has been addressed with the aim of minimizing operating cost only. However, the issues of power losses and environment i.e., emission-related objectives need to be addressed for effective energy management of microgrid system. In this paper, microgrid energy management (MGEM) is formulated as mixed-integer linear programming and a new multi-objective solution is proposed for MGEM along with demand response program. Demand response is included in the optimization problem to demonstrate it's impact on optimal energy dispatch and techno-commercial benefits. Fuzzy interface has been developed for optimal scheduling of ESS. Simulation results are obtained for the optimal capacity of PV, WT, DG, MT, FC, converter, BES, charging/discharging scheduling, state of charge of battery, power exchange with grid, annual net present cost, cost of energy, initial cost, operational cost, fuel cost and penalty of greenhouse gases emissions. The results show that CO2 emissions in standalone hybrid microgrid system is reduced by 51.60% compared to traditional system with grid only. Simulation results obtained with the proposed method is compared with various evolutionary algorithms to verify it's effectiveness.
机译:微电网与混合再生能源是一个有希望的解决方案,其中分布网络扩张是不可行的或不经济的。可再生能源的整合提供了能源安全,大量成本节约和温室气体排放的减少,使国家能够满足排放目标。微电网能源管理是微电网运营商(MGO)的具有挑战性的任务,以便在微电网中的优化能量利用,具有可再生能源,能量存储装置和需求响应的渗透。在本文中,建立了最佳能量调度策略,用于与光伏(PV),风力涡轮机(WT),燃料电池(FC),微涡轮机(MT),柴油发电机(DG)和电池储能器和电池储能器集成的网格连接和独立微电网。系统(ESS)。用于混合动力系统的技术经济效益。到目前为止,已经解决了微电网能源管理问题,目的是最小化运营成本。然而,需要解决权力损失和环境的问题,以便为微电网系统的有效能量管理解决。在本文中,将微电网能量管理(MGEM)配制成混合整数线性规划,并为MGEM提出了新的多目标解决方案以及需求响应程序。需求响应包含在优化问题中,以证明它对最佳能源派遣和技术益处的影响。已经开发了模糊界面以获得ESS的最佳调度。仿真结果是为PV,WT,DG,MT,FC,转换器,BES,充电/放电调度,电池的充电状态,电力交换,电力交换,年度净成本,能源成本,能源成本,初始成本,运营成本,温室气体排放的燃料成本和罚款。结果表明,与电网的传统系统相比,独立杂种微电网系统中的二氧化碳排放减少了51.60%。使用该方法获得的仿真结果与各种进化算法进行比较,以验证其有效性。

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