首页> 外文会议>DSCC2010;ASME dynamic systems and control conference >MODEL IDENTIFICATION AND OPERATING LOAD CHARACTERIZATION FOR A SMALL HORIZONTAL AXIS WIND TURBINE ROTOR USING INTEGRATED BLADE SENSORS
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MODEL IDENTIFICATION AND OPERATING LOAD CHARACTERIZATION FOR A SMALL HORIZONTAL AXIS WIND TURBINE ROTOR USING INTEGRATED BLADE SENSORS

机译:集成叶片传感器的小水平轴风轮机转子模型辨识与工作载荷表征

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One of the primary challenges in diagnostic health monitoring and control of wind turbines is compensating for the variable nature of wind loads. Given the sometimes large variations in wind speed, direction, and other operational variables (like wind shear), this paper proposes a data-driven, online rotor model identification approach. A 2 m diameter horizontal axis wind turbine rotor is first tested using experimental modal analysis techniques. Through the use of the Complex Mode Indication Function, the dominant natural frequencies and mode shapes of dynamic response of the rotor are estimated (including repeated and pseudo-repeated roots). The free dynamic response properties of the stationary rotor are compared to the forced response of the operational rotor while it is being subjected to wind and rotordynamic loads. It is demonstrated that both narrowband (rotordynamic) and broadband (wind driven) responses are amplified near resonant frequencies of the rotor. Blade loads in the flap direction of the rotor are also estimated through matrix inversion for a simulated set of rotor blade input forces and for the operational loading state of the wind turbine in a steady state condition. The analytical estimates are shown to be accurate at frequencies for which the ordinary coherence functions are near unity. The loads in operation are shown to be largest at points mid-way along the span of the blade and on one of the three blades suggesting this method could be used for usage monitoring. Based on theseresults, it is proposed that a measurement of upstream wind velocity will provide enhanced models for diagnostics and control by providing a leading indicator of disturbances in the loads.
机译:对风力涡轮机进行诊断性健康监测和控制的主要挑战之一是补偿风荷载的可变性。鉴于风速,风向和其他运行变量(例如风切变)有时会出现较大变化,本文提出了一种数据驱动的在线转子模型识别方法。首先使用实验模态分析技术对直径为2 m的水平轴风力涡轮机转子进行测试。通过使用复数模式指示函数,可以估算出转子的主要固有频率和动态响应的模式形状(包括重复根和伪重复根)。将固定转子的自由动态响应特性与运行中的转子在受到风和转子动态载荷时的强制响应进行比较。结果表明,窄带响应(转子动力学)和宽带响应(风驱动)都在转子的共振频率附近放大。对于一组模拟的转子叶片输入力以及在稳定状态下风力涡轮机的运行负荷状态,还可以通过矩阵求逆来估算转子襟翼方向上的叶片负荷。分析估计显示出在普通相干函数接近于1的频率上是准确的。运行中的负载显示为沿叶片跨距的中点处最大,并且位于三个叶片之一上,这表明该方法可用于使用情况监视。基于这些 结果,建议上游风速的测量将通过提供负载扰动的领先指标来提供用于诊断和控制的增强模型。

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