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Multi-Stage Planning of Distribution Networks with Application of Multi-Objective Algorithm Accompanied by DEA Considering Economical, Environmental and Technical Improvements

机译:考虑经济,环境和技术改进的配电网多阶段规划,应用多目标算法并结合DEA

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The regards to widespread impact of distribution networks and ever increasing demand for electricity, some strategies must be devized in order to well operate the distribution networks. In this paper, to enhance the accountability of the power system and to improve the system performance parameters, simultaneous placement of renewable energy generation (REG) sources (e.g., wind, solar and dispatchable distributed generators (DGs)) and capacitors are investigated in a modified radial distribution network with considering ZIP loads. To enhance all network parameters simultaneously to the best possible condition multi-objective functions are proposed and solved using non-dominated sorting genetic algorithm (NSGA II). The employed objectives contain all economical, environmental and technical aspects of distribution network. One of the most important advantages of the proposed multi-objective formulation is that it obtains non-dominated solutions allowing the system operator (decision maker) to exercise his/her personal preference in selecting each of those solutions based on the operating conditions of the system and the costs. It is clear that the implementation of each non-dominated solution needs related costs according to the technology used and the system performance characteristics. However, there is a paucity of objective methodologies for ranking the obtained non-dominated solutions considering economical, environmental and technical aspects. So, in this paper, data envelopment analysis (DEA) is suggested for this purpose. In other words, in this paper, first NSGA II is applied to the siting and sizing problem, and then the obtained non-dominated solutions are prioritized by DEA. The significant advantage of using DEA is that there is no need to impose the decision maker's idea into the model and ranking is done based on the efficiencies of the non-dominated solutions. The most efficient solution is the one which has improved network parameters considerably and has lowest costs. So, using DEA gives a realistic view of solutions and the provided results are for all, not for a specific decision maker. To validate the effectiveness of the proposed scheme, the simulations are carried out on a modified test case 33-bus radial distribution network.
机译:考虑到配电网的广泛影响和不断增长的电力需求,必须设计一些策略才能使配电网正常运行。在本文中,为了增强电力系统的责任感并改善系统性能参数,我们在可再生能源发电(REG)源(例如风能,太阳能和可调度分布式发电机(DGs))和电容器的同时布置中进行了研究。考虑ZIP负载的改进型径向配电网。为了将所有网络参数同时提高到最佳条件,提出了非目标排序遗传算法(NSGA II)并解决了多目标函数。所采用的目标包含配电网络的所有经济,环境和技术方面。所提出的多目标公式的最重要的优点之一是,它获得了非主导的解决方案,从而使系统操作员(决策者)可以根据系统的运行条件在选择每个解决方案时行使自己的个人偏好。和费用。显然,根据所使用的技术和系统性能特征,每个非主要解决方案的实施都需要相关成本。但是,考虑到经济,环境和技术方面,缺乏用于对获得的非支配解决方案进行排名的客观方法。因此,在本文中,为此提出了数据包络分析(DEA)。换句话说,在本文中,首先将NSGA II应用于选址和选型问题,然后将获得的非支配解通过DEA进行优先排序。使用DEA的显着优势在于,无需将决策者的想法强加到模型中,并且基于非支配解决方案的效率进行排名。最有效的解决方案是大大改善了网络参数并且成本最低的解决方案。因此,使用DEA可以给出解决方案的真实视图,所提供的结果适用于所有人,而不是特定的决策者。为了验证所提出方案的有效性,在修改后的测试用例33总线径向配电网上进行了仿真。

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