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Linearized Hybrid Stochastic/Robust Scheduling of Active Distribution Networks Encompassing PVs

机译:包含PV的有源配电网的线性混合随机/鲁棒调度

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摘要

This paper proposes an optimization framework to deal with the uncertainty in a day-ahead scheduling of smart active distribution networks (ADNs). The optimal scheduling for a power grid is obtained such that the operation costs of distributed generations (DGs) and the main grid are minimized. Unpredictable demand and photovoltaics (PVs) impose some challenges such as uncertainty. So, the uncertainty of demand and PVs forecasting errors are modeled using a hybrid stochastic/robust (HSR) optimization method. The proposed model is used for the optimal day-ahead scheduling of ADNs in a way to benefit from the advantages of both methods. Also, in this paper, the ac load flow constraints are linearized to moderate the complexity of the formulation. Accordingly, a mixed-integer linear programming (MILP) formulation is presented to solve the proposed day-ahead scheduling problem of ADNs. To evaluate the performance of the proposed linearized HSR (LHSR) method, the IEEE 33-bus distribution test system is used as a case study.
机译:本文提出了一种优化框架,用于处理智能主动配电网(ADN)的日前调度中的不确定性。获得用于电网的最佳调度,从而使分布式发电(DG)和主电网的运行成本最小化。不可预测的需求和光伏(PV)带来了一些挑战,例如不确定性。因此,使用混合随机/鲁棒(HSR)优化方法对需求不确定性和PV预测误差进行建模。所提出的模型可用于ADN的最佳提前​​日调度,从而从两种方法的优点中受益。同样,在本文中,交流潮流约束被线性化以缓和配方的复杂性。因此,提出了混合整数线性规划(MILP)公式来解决提出的ADN日提前调度问题。为了评估提出的线性化HSR(LHSR)方法的性能,以IEEE 33总线配电测试系统为例。

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