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Data-Driven Distributionally Robust Control of Energy Storage to Manage Wind Power Fluctuations

机译:数据驱动的分布稳健控制能量存储以管理风力波动

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Energy storage is an important resource that can balance fluctuations in energy generation from renewable energy sources, such as wind, to increase their penetration. Many existing storage control methods require perfect information about the probability distribution of uncertainties. In practice, however, the distribution of renewable energy production is difficult to reliably estimate. To resolve this challenge, we develop a new storage operation method, based on the theory of distributionally robust stochastic control, which has the following advantages. First, our controller is robust against errors in the distribution of uncertainties such as power generated from a wind farm. Second, the proposed method is effective even with a small number of data samples. Third, the construction of our controller is computationally tractable due to the proposed duality-based dynamic programming method that converts infinite-dimensional minimax optimization problems into semi-infinite programs. The performance of the proposed method is demonstrated using data about energy production levels at wind farms in the Pennsylvania-Jersey-Maryland interconnection (PJM) area.
机译:储能是一种重要的资源,可以平衡可再生能源(如风)的能源发电波动,以增加其渗透。许多现有的存储控制方法需要有关不确定性概率分布的完美信息。然而,在实践中,可再生能源产生的分布难以可靠地估计。为了解决这一挑战,我们开发了一种新的存储操作方法,基于分布强大的随机控制理论,具有以下优点。首先,我们的控制器对分布不确定性的误差是鲁棒的,例如从风电场产生的电力。其次,即使具有少量数据样本,所提出的方法也是有效的。三,由于所提出的基于二元性的动态编程方法,我们的控制器的构造是计算易行的动态编程方法,它将无限维数量优化问题转换为半无限程序。使用关于宾夕法尼亚州 - 泽西 - 马里陆地互连(PJM)区域的风电场上的能量生产水平数据来证明该方法的性能。

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