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Optimal operation management of microgrids using the point estimate method and firefly algorithm while considering uncertainty

机译:考虑不确定性的点估计和萤火虫算法优化微电网运行管理

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This paper analyzes the behavior of Hong's point estimate method to account for uncertainties in probabilistic energy management systems to optimize the operation of a microgrid (MG). These uncertainties may arise from different sources, such as the market prices, load demands, and electric power generation of wind farms and photovoltaic systems. Point estimate methods constitute a remarkable tool to handle stochastic power system problems because good results can be achieved using the same routines as those corresponding to deterministic problems, while keeping the computational burden low. The problem is formulated as a nonlinear constraint optimization problem to minimize the total operating cost. Weibull, beta, and normal distributions are used to model the uncertain input variables in this study. Moreover, the firefly algorithm is applied to achieve optimal operational planning with regard to cost minimization. The efficiency of Hong's point estimate method is validated on a typical MG. Results for the case study are presented and compared against those obtained from the Monte Carlo simulation. Specifically, this paper shows that the use of the 2m + 1 scheme provides the best performance when a high number of random variables, both continuous and discrete, are considered.
机译:本文分析了洪氏点估计方法的行为,以解决概率能源管理系统中的不确定性,从而优化微电网(MG)的运行。这些不确定性可能来自不同的来源,例如市场价格,负荷需求以及风电场和光伏系统的发电量。点估计方法是处理随机电力系统问题的出色工具,因为使用与确定性问题相对应的例程可以使例程获得良好的结果,同时保持较低的计算负担。该问题被公式化为非线性约束优化问题,以最大程度地降低总运营成本。在这项研究中,使用Weibull,β和正态分布对不确定的输入变量进行建模。此外,萤火虫算法可用于实现成本最小化的最佳运营计划。 Hong的点估计方法的效率在典型的MG上得到了验证。提出了案例研究的结果,并将其与从蒙特卡洛模拟获得的结果进行了比较。具体而言,本文表明,当考虑大量连续和离散的随机变量时,使用2m +1方案可提供最佳性能。

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