采用IHBMO方法求解考虑不确定性的模糊随机长期模型

A. Arash, S. Safavipour, Meysam Pandeh, Mostafa Sohrabi Gilani
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摘要

提出了一种改进的基于交互式蜜蜂交配优化(IHBMO)的模糊随机长期方法来确定分布式能源(DERs)的最佳位置和规模。采用蒙特卡罗模拟方法对长期负荷预测中的不确定性进行建模。在目标函数中考虑几个目标的适当组合。同时考虑降低电力市场的损耗和购电、降低峰值负荷水平的损耗和降低电压偏差作为目标函数。首先对这些目标进行模糊化,使它们具有可比性,然后将它们引入到IHBMO算法中,以求得综合目标函数值最大的解。der的输出功率在每个负载级别上进行调度。本文还提出了一种改进的经济模型来证明对分布式存储的投资是合理的。以IEEE 30总线径向分布测试系统为例,验证了该方法的有效性。
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Using IHBMO method for fuzzy stochastic long-term model with considered uncertainties for deployment of Distributed Energy Resources
This paper presents a new modified Interactive Honey Bee Mating Optimization (IHBMO) base fuzzy stochastic long term approach for determining optimum location and size of Distributed Energy Resources (DERs). The Monte Carlo simulation method is used to model the uncertainties associated with long-term load forecasting. A proper combination of several objectives is considered in the objective function. Reduction of loss and power purchased from the electricity market, loss reduction in peak load level and reduction in voltage deviation are considered simultaneously as the objective functions. At first these objectives are fuzzified and designed to be comparable with each other and then they are introduced to a IHBMO algorithm in order to obtain the solution which maximizes the value of integrated objective function. The output power of DERs is scheduled for each load level. An enhanced economic model is also proposed to justify investment on DER. IEEE 30-bus radial distribution test system is used as an illustrative example to show the effectiveness of the proposed method.
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