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An Adaptive Economic Model Predictive Control Approach for Wind Turbines

机译:风力涡轮机的自适应经济模型预测控制方法

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Motivated by the reduction of overall wind power cost, considerable research effort has been focused on enhancing both efficiency and reliability of wind turbines. Maximizing wind energy capture while mitigating fatigue loads has been one of the main goals for control design. Recent developments in remote wind speed measurement systems (e.g., light detection and ranging ( LIDAR)) have paved the way for implementing advanced control algorithms in the wind energy industry. In this paper, an LIDAR-assisted economic model predictive control (MPC) framework with a real-time adaptive approach is presented to achieve the aforementioned goal. First, the formulation of a convex optimal control problem is introduced, with linear dynamics and convex constraints that can be solved globally. Then, an adaptive approach is proposed to reject the effects of model-plant mismatches. The performance of the developed control algorithm is compared to that of a standard wind turbine controller, which is widely used as a benchmark for evaluating new control designs. Simulation results show that the developed controller can reduce the tower fatigue load with minimal impact on energy capture. For model-plant mismatches, the adaptive controller can drive the wind turbine to its optimal operating conditions while satisfying the optimal control objectives.
机译:通过减少整体风力发电量,相当大的研究努力旨在提高风力涡轮机的效率和可靠性。在减轻疲劳负荷的同时最大化风能捕获是控制设计的主要目标之一。遥控风速测量系统的最新进程(例如,光检测和测距(LIDAR))已经为在风能行业实施先进控制算法铺平了道路。本文提出了一种具有实时自适应方法的激光乐协助的经济模型预测控制(MPC)框架以实现上述目标。首先,引入了凸出的最佳控制问题的制定,具有可以在全球解决的线性动态和凸的约束。然后,提出了一种自适应方法来拒绝模型 - 植物不匹配的影响。将开发控制算法的性能与标准风力涡轮机的性能进行了比较,该控制器被广泛用作评估新控制设计的基准。仿真结果表明,发达的控制器可以减少塔疲劳负荷,对能量捕获的影响最小。对于模型 - 工厂不匹配,自适应控制器可以在满足最佳控制目标的同时将风力涡轮机驱动到其最佳操作条件。

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