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Model Predictive Active Power Control of Waked Wind Farms

机译:唤醒风电场的模型预测有功功率控制

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In this paper, an adjoint-based model predictive control (AMPC) is proposed in order to provide active power control (APC) services of wind farms, even in the presence of problematic wake interactions. The control objective is defined to minimize wind farm power reference tracking error. The non-unique optimal distribution of wind turbine power references is a resulting by-product which can be very informative for other wind farm control methods. The developed predictive controller employs a medium-fidelity 2D dynamic wind farm model to predict wake interactions at hub-height of wind turbines in advance. An adjoint approach as a computationally efficient tool is utilized to compute the gradient for such a large-scale system. The axial induction factor of each wind turbine is considered here as a control variable to influence the overall performance of a wind farm by taking the wake interactions of the wind turbines into account. The performance of the AMPC-based APC is examined for a layout of a
机译:在本文中,提出了一种基于伴随的模型预测控制(AMPC),以便即使在存在有问题的尾流相互作用的情况下也能为风电场提供有功功率控制(APC)服务。定义控制目标是为了最小化风电场功率参考跟踪误差。风力发电机功率参考的非唯一最优分配是所产生的副产品,对于其他风电场控制方法可能非常有用。开发的预测控制器采用中保真2D动态风电场模型来预先预测风力涡轮机轮毂高度处的尾流相互作用。伴随方法是一种计算效率高的工具,可用于计算此类大型系统的梯度。每个风力涡轮机的轴向感应系数在此处被视为控制变量,通过考虑风力涡轮机的尾流相互作用来影响风力发电场的整体性能。检查基于AMPC的APC的性能

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