论文标题

电力尺度风力涡轮机的动态近丽调制机制

Mechanisms of dynamic near-wake modulation of a utility-scale wind turbine

论文作者

Abraham, Aliza, Martinez-Tossas, Luis A., Hong, Jiarong

论文摘要

当前的研究使用大型涡流模拟来研究公用事业尺度的风力涡轮机唤醒对大气和操作条件的动态变化的瞬态响应,如先前的现场尺度测量中所示。大多数风力涡轮机唤醒调查都假设了准稳态条件,但是真实的风力涡轮机在高度随机的气氛中运行,并且它们的运行(例如,叶片螺距,偏航角)在响应中不断变化。此外,最近提出了动态控制策略,以优化风电场发电和寿命。因此,对动态唤醒行为的改善是必不可少的。首先,研究了叶片螺距的变化,并发现唤醒膨胀响应显示出由于流量惯性而导致的磁滞。量化对不同音高速率的唤醒响应的时间尺度被量化。接下来,探索了不同时间尺度的风向变化。在短时间内,尾流偏转与在准稳态条件下观察到的相反方向相反。最后,以不同的速率实施偏航变化,并量化了最大逆唤醒偏转和时间尺度,显示出对偏航率的明显依赖。为了进一步了解逆尾挠度背后的机制,量化了尾流不同部分的流向涡度。这项研究的结果为设计高级尾流控制算法的设计提供了指导。在刀片俯仰和偏航变化的尾流响应中,尾流响应的滞后表明,提出的动态控制策略必须在转子时间尺度或较慢的时间范围内实现涡轮机的操作变化。

The current study uses large eddy simulations to investigate the transient response of a utility-scale wind turbine wake to dynamic changes in atmospheric and operational conditions, as observed in previous field-scale measurements. Most wind turbine wake investigations assume quasi-steady conditions, but real wind turbines operate in a highly stochastic atmosphere, and their operation (e.g., blade pitch, yaw angle) changes constantly in response. Furthermore, dynamic control strategies have been recently proposed to optimize wind farm power generation and longevity. Therefore, improved understanding of dynamic wake behaviors is essential. First, changes in blade pitch are investigated and the wake expansion response is found to display hysteresis as a result of flow inertia. The timescales of the wake response to different pitch rates are quantified. Next, changes in wind direction with different timescales are explored. Under short timescales, the wake deflection is in the opposite direction of that observed under quasi-steady conditions. Finally, yaw changes are implemented at different rates, and the maximum inverse wake deflection and timescale are quantified, showing a clear dependence on yaw rate. To gain further physical understanding of the mechanism behind the inverse wake deflection, the streamwise vorticity in different parts of the wake is quantified. The results of this study provide guidance for the design of advanced wake flow control algorithms. The lag in wake response observed for both blade pitch and yaw changes shows that proposed dynamic control strategies must implement turbine operational changes with a timescale on the order of the rotor timescale or slower.

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