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Wind Turbine Wake-Redirection Control at the Fishermen’s Atlantic City Windfarm

机译:渔民大西洋城风季风的风力涡轮机苏醒重定向控制

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In this paper, we will present our work towards designing a control strategy to mitigate wind turbine wake effects by redirecting the wakes, specifically applied to the Fishermen’s Atlantic City Windfarm, proposed for deployment within the next few years off the shore of Atlantic City, New Jersey. As wind turbines extract energy from the air, they create low-speed wakes that extend behind them. Full wake recovery to the undisturbed wind speed takes a significant distance. In a wind energy plant the wakes of upstream turbines may travel downstream to the next row of turbines, effectively subjecting them to lower wind speeds, meaning these waked turbines will produce less power. Wakes can be redirected laterally to some degree, though, by applying yaw misalignment to the wake-generating turbine (i.e., not pointing the turbine directly into the wind). Yaw misalignment causes part of the rotor thrust vector to be pointed in the cross-stream direction, deflecting the flow and the wake in that direction. Yaw misalignment reduces power production, but the global increase in wind plant power caused by decreased wake effects creates a net increase in power production. With the increase in power can come an increase in fatigue loads, though, caused by yaw misalignment. However, if misalignment is applied properly, and it is layered with individual blade pitch control, the load increase can be mitigated. To explore the idea of wake redirection, we used high-fidelity computational fluid dynamics. Our computational fluid dynamics simulations predict that when winds are aligned with the row, which is one of two predominant wind directions, wake-redirection control can create a 10% increase in energy capture efficiency. This means that, for a given wind energy plant’s electrical generating capacity, if wake-redirection control were employed, turbines could be more closely spaced, thereby reducing the watersheet area of the wind plant. Likewise, for a given watersheet area, the total electrical generating capacity can be increased. In this paper, we discuss the concept of wake redirection through wind turbine yaw misalignment and present our computational fluid dynamics results of the Fishermen’s Atlantic City Windfarm project. We also discuss the implications of wake-redirection control on annual energy production and fatigue loads, as well as plans to implement wake-redirection control at Fishermen’s Atlantic City Windfarm when it is operational—something not done before at a commercial wind plant.
机译:在本文中,我们将展示我们在设计一个控制策略来减轻风力涡轮机唤醒效果来减轻唤醒,专门应用于渔民的大西洋城风险,建议在大西洋城的岸边的下几年内部部署到新的球衣。随着风力涡轮机从空气中提取能量,它们会产生延伸在它们后面的低速唤醒。完全唤醒恢复到未受干扰的风速需要很大的距离。在风能设备上游涡轮机的尾流可行进到下游涡轮机的下一行,有效地对它们进行较低风速,这意味着这些唤醒涡轮机将产生较少的功率。尾流可侧向被重定向到某种程度,但是,通过施加偏航失准至唤醒产生涡轮机(即,不直接指向涡轮进风)。横摆物体使得导致转子推力向量的一部分朝向横流方向指向,沿着该方向偏转流动和唤醒。横摆物不对准降低了电力生产,但由于苏醒效果下降引起的风厂力量的全球增加产生了净电力生产净额。随着功率的增加可以增加疲劳负荷,而偏航载荷引起。但是,如果正确施加错位,并且它与单独的刀片间距控制层叠,则可以减轻负载增加。为了探索唤醒重定向的想法,我们使用了高保真计算流体动力学。我们的计算流体动力学模拟预测,当风与行对齐,这是两个主要风向的行之一时,唤醒重定向控制可以产生10%的能量捕获效率提高。这意味着,对于给定的风力发电装置的发电量,如果唤醒重定向控制被雇用,涡轮机可以更紧密地间隔开,从而减少了风电厂的watersheet区域。同样,对于给定的水域区域,可以增加总电力发电能力。在本文中,我们讨论了通过风力涡轮机偏航失值唤醒重定向的概念,并展示了渔民大西洋城风野项目的计算流体动力学结果。我们还讨论了唤醒 - 重定向控制对年度能源生产和疲劳负荷的影响,以及计划在渔民大西洋城风队实施韦克雷维的计划,当时它在商业风厂之前没有完成。

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