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Preventing wind turbine tower natural frequency excitation with a quasi-LPV model predictive control scheme

机译:准LPV模型预测控制方案防止风力发电机塔架固有频率励磁

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With the ever increasing power rates of wind turbines, more advanced control techniques are needed to facilitate tall towers that are low in weight and cost-effective but in effect more flexible. Such soft-soft tower configurations generally have their fundamental side-side frequency in the below-rated operational domain. Because the turbine rotor practically has or develops a mass imbalance over time, a periodic and rotor-speed dependent side-side excitation is present during below-rated operation. Persistent operation at the coinciding tower and rotational frequency degrades the expected structural life span. To reduce this effect, earlier work has shown the effectiveness of active tower damping control strategies using collective pitch control. A more passive approach is frequency skipping by inclusion of speed exclusion zones, which avoids prolonged operation near the critical frequency. However, neither of the methods incorporates a convenient way of performing a trade-off between energy maximization and fatigue load minimization. Therefore, this paper introduces a quasi-linear parameter varying model predictive control (qLPV-MPC) scheme, exploiting the beneficial (convex) properties of a qLPV system description. The qLPV model is obtained by a demodulation transformation and is subsequently augmented with a simple wind turbine model. Results show the effectiveness of the algorithm in synthetic and realistic simulations using the NREL 5-MW reference wind turbine in high-fidelity simulation code. Prolonged rotor speed operation at the tower side-side natural frequency is prevented, whereas when the trade-off is in favor of energy production, the algorithm decides to rapidly pass over the natural frequency to attain higher rotor speeds and power productions.
机译:随着风力涡轮机功率水平的不断提高,需要更先进的控制技术来制造重量轻,成本效益高但实际上更灵活的高塔。这样的软-软塔配置通常在低于额定的操作域中具有其基本的侧面频率。由于涡轮转子实际上会随着时间的推移出现质量不平衡现象,因此在额定值低于额定值的操作过程中会出现周期性且取决于转子速度的侧面励磁。在一致的塔上持续运行和旋转频率会降低预期的结构寿命。为了减少这种影响,较早的工作已经表明了使用集中螺距控制的主动塔架阻尼控制策略的有效性。一种更被动的方法是通过包含速度排除区来跳频,从而避免在临界频率附近长时间运行。但是,这两种方法都没有包含在能量最大化和疲劳载荷最小化之间进行折衷的简便方法。因此,本文介绍了拟线性参数可变模型预测控制(qLPV-MPC)方案,利用了qLPV系统描述的有益(凸)特性。通过解调转换获得qLPV模型,然后使用简单的风力涡轮机模型对其进行扩展。结果表明,该算法在高逼真度仿真代码中使用NREL 5兆瓦参考风力涡轮机进行的综合和逼真的仿真中的有效性。防止了在塔侧自然频率下转子转速的延长运行,而当权衡利于能量产生时,算法决定快速越过固有频率以获得更高的转子转速和发电量。

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