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Wind farms with counter-rotating wind turbines

机译:带有反向旋转风力涡轮机的风电场

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The objective of this study is to assess the effects of using counter-rotating wind turbines on the performance of a wind farm. Large eddy simulations, coupled with the actuator line model, were conducted to investigate flow through a test wind farm with 48 large-scale wind turbines with the same layout as Lillgrund in Sweden. Two counter-rotating cases were tested; first, an alternate-row wind farm in which each turbine has one rotor, rotating either clockwise or counter-clockwise, with alternating rows of clockwise and counter-clockwise turbines throughout the farm; and second, a wind farm with dual-rotor wind turbines in which each turbine has two rotors, with the first rotor rotating counter-clockwise and the second rotor rotating clockwise. It was found that both counter-rotating configurations were more efficient in power generation than the control case in which all turbines have one clockwise rotor; the alternate-row case was found to produce 1.4% more power and the dual-rotor case was found to produce 22.6% more power than the control wind farm. The wakes of the counter-rotating cases, particularly the wind farm with dual-rotor wind turbines, exhibit different characteristics from those in the control case. These differences are discussed through wind speed distribution, thrust coefficient, and power production of wind turbines.
机译:这项研究的目的是评估使用反向旋转的风力涡轮机对风电场性能的影响。进行了大型涡流模拟,并与执行器管线模型相结合,以研究流经具有48个大型风力涡轮机的测试风场的流量,这些风力涡轮机的布局与瑞典的Lillgrund相同。测试了两个反向旋转的案例;首先,是一排交替的风力发电场,其中每个涡轮机都有一个转子,顺时针或逆时针旋转,在整个风力发电场中交替排列成排的顺时针和逆时针涡轮机;第二,具有双转子风力涡轮机的风电场,其中每个涡轮机具有两个转子,第一转子逆时针旋转,第二转子顺时针旋转。已经发现,两种反向旋转配置在发电方面均比所有涡轮均具有一个顺时针转子的控制案例更为有效。相比之下,备用排的发电量要比控制风电场高出1.4%,而双转子的发电量要高出22.6%。反向旋转箱的尾流,特别是具有双转子风力涡轮机的风场,具有与控制箱不同的特性。通过风速分布,推力系数和风力发电机的功率来讨论这些差异。

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