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Model-based receding horizon control of wind farms for secondary frequency regulation

机译:基于模型的风电场后视水平控制二次调频

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In this study, we propose the use of model-based receding horizon control to enable a wind farm to provide secondary frequency regulation for a power grid. The controller is built by first proposing a time-varying one-dimensional wake model, which is validated against large eddy simulations of a wind farm at startup. This wake model is then used as a plant model for a closed-loop receding horizon controller that uses wind speed measurements at each turbine as feedback. The control method is tested in large eddy simulations with actuator disk wind turbine models representing an 84-turbine wind farm that aims to track sample frequency regulation reference signals spanning 40min time intervals. This type of control generally requires wind turbines to reduce their power set points or curtail wind power output (derate the power output) by the same amount as the maximum upward variation in power level required by the reference signal. However, our control approach provides good tracking performance in the test system considered with only a 4% derate for a regulation signal with an 8% maximum upward variation. This performance improvement has the potential to reduce the opportunity cost associated with lost revenue in the bulk power market that is typically associated with providing frequency regulation services. Copyright (c) 2017 John Wiley & Sons, Ltd.
机译:在这项研究中,我们建议使用基于模型的后退水平控制,以使风电场能够为电网提供二次频率调节。首先通过提出随时间变化的一维唤醒模型来构建控制器,该模型在启动时针对风场的大型涡流仿真进行了验证。然后将此唤醒模型用作闭环后视地平线控制器的工厂模型,该控制器将每个涡轮机的风速测量值用作反馈。该控制方法已在代表84个涡轮风电场的执行器盘式风力涡轮机模型的大型涡流仿真中进行了测试,旨在跟踪跨越40分钟时间间隔的样本频率调节参考信号。这种类型的控制通常要求风力涡轮机将其功率设定值降低或将风力输出(降低功率输出)减少与参考信号所需的功率水平的最大向上变化相同的量。但是,我们的控制方法在测试系统中提供了良好的跟踪性能,考虑到最大向上变化为8%的调节信号仅降低了4%。这种性能改进有可能减少与大功率市场中通常与提供频率调节服务相关的收入损失相关的机会成本。版权所有(c)2017 John Wiley&Sons,Ltd.

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