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Economic dispatch of energy storage systems in dc microgrids employing a semidefinite programming model

机译:采用半定规划模型的直流微电网中储能系统的经济调度

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A mathematical optimization approach for the optimal operation focused on the economic dispatch for dc microgrid with high penetration of distributed generators and energy storage systems (ESS) via semidefinite programming (SDP) is proposed in this paper. The SDP allows transforming the nonlinear and non-convex characteristics of the economic dispatch problem into a convex approximation which is easy for implementation in specialized software, i.e., CVX. The proposed mathematical approach contemplates the efficient operation of a dc microgrid over a period of time with variable energy purchase prices, which makes it a practical methodology to apply in real-time operating conditions. A nonlinear autoregressive exogenous (NARX) model is employed for training an artificial neural network (ANN) for forecasting solar radiation and wind speed for renewable generation integration and dispatch considering periods of prediction of 0.5 h. Four scenarios are proposed to analyze the inclusion of ESS in a dc microgrid for economic dispatch studies. Additionally, the results are compared with GAMS commercial optimization package, which allows validating the accuracy and quality of the proposed optimizing methodology.
机译:本文提出了一种数学优化的优化方法,该方法通过半定规划(SDP)着重研究具有分布式电源和储能系统(ESS)高渗透率的直流微电网的经济调度。 SDP允许将经济调度问题的非线性和非凸特性转换为凸近似值,该凸值近似值易于在专用软件(即CVX)中实现。所提出的数学方法考虑了在一定的时间段内以可变的能源购买价格有效运行直流微电网的方法,这使其成为一种适用于实时运行条件的实用方法。非线性自回归外生(NARX)模型用于训练人工神经网络(ANN),以预测太阳辐射和风速,以实现可再生能源发电的集成和调度,并考虑0.5 h的预测时间。为了经济调度研究,提出了四种方案来分析ESS在直流微电网中的包含情况。此外,将结果与GAMS商业优化套件进行了比较,该套件可验证所提出的优化方法的准确性和质量。

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