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Modeling and PI Control of Spar Offshore Floating Wind Turbine

机译:晶石海上浮动式风力发电机的建模与PI控制

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Reliable control strategies are necessary for long term operation of offshore wind turbines because they are sited in severe environment. Offshore wind turbines experience environmental loads like wind, wave and current. This paper proposes a stratagem of applying the proportional integral (PI) control algorithm in the blade pitch mechanism of a 5 MW benchmark NREL offshore wind turbine (Jonkman et al., 2009) in a LABVIEW environment. Owing to the irregular wind and waves, the platform will be unstable which in turn affects the overall stability of the turbine. The turbine is assumed to be installed in water depth of 320 m on a spar platform. The spar when subjected to the wave loads, exhibit irregular and chaotic responses. The primary objective is to control the pitch so as to obtain optimum generated power. The control algorithm has to be effective in two regions of operation viz., in controlling power in operational wind speeds and also to keep the wind turbine safe in extreme severe wind conditions. In this process, the control techniques vary the blade pitch angle for generating optimum power production as well as stable closed loop operation. Numerical results and simulations are shown to validate the proposed methodology and to demonstrate its effectiveness.
机译:可靠的控制策略对于海上风力涡轮机的长期运行至关重要,因为它们位于恶劣的环境中。海上风力涡轮机要承受风,浪和流等环境负荷。本文提出了在LABVIEW环境中将比例积分(PI)控制算法应用于5 MW基准NREL海上风力涡轮机的叶片变桨机构中的策略(Jonkman等,2009)。由于不规则的风浪,平台将变得不稳定,进而影响涡轮的整体稳定性。假定该涡轮机安装在水柱平台上320 m的水深中。翼梁在受到波浪载荷时会表现出不规则和混乱的响应。主要目的是控制音调以获得最佳的发电功率。该控制算法必须在两个运行区域有效,即在运行风速下控制功率,并在极端恶劣的风况下保持风力发电机的安全。在此过程中,控制技术会改变叶片桨距角,以产生最佳的动力产生以及稳定的闭环运行。数值结果和仿真结果证明了该方法的有效性,并证明了其有效性。

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