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Optimal Wind Farm Allocation in Multi-Area Power Systems using Distributionally Robust Optimization Approach

机译:基于分布稳健优化方法的多区域电力系统风电场优化分配

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This paper presents a distributionally robust planning model to determine the optimal allocation of wind farms in a multi-area power system, so that the expected energy not served (EENS) is minimized under uncertain wind power and generator forced outages. Unlike conventional stochastic programming approaches that rely on detailed information of the exact probability distribution, the proposed method attempts to minimize the expectation term over a collection of distributions characterized by accessible statistical measures, so it is more practical in cases where the detailed distribution data is unavailable. This planning model is formulated as a two- stage problem, where the wind power capacity allocation decisions are determined in the first stage, before the observation of uncertainty outcomes, and operation decisions are made in the second stage under specific uncertainty realizations. In this paper, the second-stage decisions are approximated by linear decision rule functions, so that the distributionally robust model can be reformulated into a tractable second-order cone programming problem. Case studies based on a five-area system are conducted to demonstrate the effectiveness of the proposed method.
机译:本文提出了一种分布稳健的规划模型,用于确定多区域电力系统中风电场的最佳分配,以便在不确定的风力发电和发电机强制停机的情况下将预期未服务能量(EENS)降至最低。与依赖于精确概率分布的详细信息的常规随机编程方法不同,所提出的方法试图使以可访问的统计量度为特征的分布集合的期望项最小化,因此在无法获得详细分布数据的情况下,该方法更为实用。 。该规划模型被表述为一个两阶段的问题,在确定不确定性结果之前,在第一阶段确定风电容量分配决策,并在特定的不确定性实现下在第二阶段制定运营决策。在本文中,通过线性决策规则函数来近似第二阶段决策,从而可以将分布鲁棒模型重新构造为可处理的二阶锥规划问题。进行了基于五区域系统的案例研究,以证明所提出方法的有效性。

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