...
首页> 外文期刊>Sustainable Energy, IEEE Transactions on >Maximum Power Generation Control of a Hybrid Wind Turbine Transmission System Based on H∞ Loop-Shaping Approach
【24h】

Maximum Power Generation Control of a Hybrid Wind Turbine Transmission System Based on H∞ Loop-Shaping Approach

机译:基于H∞环形成形方法的混合风力涡轮机传动系统的最大发电控制

获取原文
获取原文并翻译 | 示例
   

获取外文期刊封面封底 >>

       

摘要

This paper presents the design, modeling, and optimal power generation control of a large hybrid wind turbine transmission system that seamlessly integrates planetary/parallel gear sets with a hydraulic transmission to improve the turbine's reliability and efficiency. The hybrid wind turbine has power splitting flows including both mechanical and hydraulic power transmissions. The turbine transmission ratio can be controlled to continuously vary for the maximum wind power extraction and grid integration. Dynamics of the hybrid wind turbine is modeled as an incremental disturbed state space model based on the dynamic equations of each mechanical/hydraulic element. To achieve good tracking and robustness performance, an optimal H infinity loop-shaping pressure controller is designed, which accurately tracks the optimal load pressure in the hydraulic transmission for maximizing wind power generations. The validations of the proposed hybrid wind turbine and the H infinity loop-shaping pressure controller are performed based on a detailed aero-hydro-servo-elastic hybrid type wind turbine simulation platform with both mechanical geared transmission and hydraulic transmission, which is adapted from the National Renewable Energy Laboratory 5 MW monopile wind turbine model within fatigue, aerodynamics, structures, and turbulence code. The validation results demonstrate that the hybrid wind turbine achieves better performance in both the maximum wind power extraction and power quality than the hydrostatic wind turbine. In addition, the proposed H infinity loop-shaping pressure controller has better tracking performance than the traditional proportional integral controller.
机译:本文介绍了大型混合风力涡轮机传动系统的设计,建模和最优发电控制,其与液压传动无缝地整合行星/平行齿轮组,以提高涡轮机的可靠性和效率。混合动力涡轮机具有电力分裂流,包括机械和液压动力传动。可以控制涡轮机传动比以连续变化,以便最大风力提取和网格集成。基于每个机械/液压元件的动态方程,混合风力发电机的动态被建模为增量扰动状态空间模型。为实现良好的跟踪和稳健性性能,设计了最佳的H Infinity环形压力控制器,该压力控制器精确地跟踪液压传动中的最佳负载压力,以最大化风力发电。提出的混合风力涡轮机和H无限环形成形压力控制器的验证是基于具有机械齿轮传输和液压传动的详细的Aero-Chyro-Seriase混合型风力涡轮机仿真平台来执行,这是一种适应全国可再生能源实验室5 MW摩托车风力涡轮机模型疲劳,空气动力学,结构和湍流码。验证结果表明,混合风力涡轮机在比静液压风力涡轮机的最大风力电力提取和功率质量上实现了更好的性能。此外,所提出的H Infinity环形压力控制器具有比传统比例积分控制器更好的跟踪性能。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号