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Development of an Analytically Described Pitch Regulator for a Wind Turbine to Be Used for Grid Disturbance Studies

机译:用于电网扰动研究的用于风力涡轮机的分析描述的变桨调节器的开发

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In this paper, a pitch controller for a variable-speed wind turbine to be used in the high wind speed region is derived. The pitch regulator parameters are determined using analytical expressions and are compared with numerical calculations. In order to derive the pitch regulated wind turbine model, blade element momentum theory is utilized and reformulated analytically. Appropriate simplifications are made and, finally, the analytically derived pitch regulated wind turbine model is tested under grid disturbances such as voltage dips and spinning reserve provision. From this work it was found that by linearizing the blade profiles, one can analytically derive a fully functioned pitch regulator. In spite of all nonlinearities, a single pitch controller setting which is valid for the whole operation region is shown to be sufficient. This system is tested under grid disturbances and it is proven that the system is capable of operating well during a 0% remaining voltage dip and also during the voltage recovery back to the rated voltage level. Accordingly, grid codes commonly referred to can be handled with this simply derived pitch regulator. Moreover, it is shown that the derived system works well for a spinning reserve application using a 90% spinning reserve ability and still maintains a robust turbine control.
机译:本文推导了用于高风速区域的变速风力发电机的变桨控制器。使用解析表达式确定变桨调节器参数,并将其与数值计算进行比较。为了推导桨距调节型风力涡轮机模型,利用了叶片单元动量理论并对其进行了解析重新构造。进行了适当的简化,最后,在电网干扰(例如电压骤降和旋转储备的设置)下测试了解析得出的变桨调节型风力涡轮机模型。从这项工作中发现,通过线性化叶片轮廓,可以分析得出功能齐全的变桨调节器。尽管存在所有非线性,但仅显示一个对整个操作区域均有效的桨距控制器设置就足够了。该系统在电网干扰下进行了测试,事实证明该系统能够在0%的剩余电压突降期间以及在恢复到额定电压水平的电压恢复期间正常运行。因此,可以通过该简单推导的音调调节器来处理通常涉及的网格代码。此外,已表明,派生的系统使用90%的纺丝储备能力在纺丝储备应用中运行良好,并且仍保持强大的涡轮控制。

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