风力发电
涡轮机
海洋工程
工程类
风洞
汽车工程
控制(管理)
功率(物理)
环境科学
电气工程
航空航天工程
计算机科学
物理
量子力学
人工智能
作者
Jean Gonzalez Silva,Daan van der Hoek,Riccardo Ferrari,Jan‐Willem van Wingerden
摘要
Wind energy has emerged as a prominent alternative energy source, harvesting energy through turbines to contribute sustainably to the electricity grid. Effective control of these turbines is crucial for regulating power generation, with wind farm control strategies geared toward maximizing on-demand energy generation. In this work, we propose a wind turbine regulator based on blade-pitch actuation and assess the impact of adopted turbine derating strategies on aerodynamic loading and downstream power availability in an experimental setting. By considering a derating strategy based on generator torque control law, we explore two wind farm control approaches: thrust balance and power compensation. Our findings highlight the advantages of balancing aerodynamic loads across the farm, preventing turbine saturation, and enhancing power availability by 3%–5% compared to a uniform power dispatch. Furthermore, the inclusion of power compensation results in a heightened upper limit in wind farm power tracking, indicating a 22% boost in wind farm power availability. This research underscores the potential benefits of innovative turbine regulation strategies for optimizing wind farm performance and enhancing overall energy flexibility.
科研通智能强力驱动
Strongly Powered by AbleSci AI