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Wind energy applications of synthetic aperture radar

机译:合成孔径雷达的风能应用

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摘要

Synthetic aperture radars (SAR), mounted on satellites or aircraft, have proven useful for ocean wind mapping. Wind speeds at the height 10 m may be retrieved from measurements of radar backscatter using empirical model functions. The resulting windfields are valuable in offshore wind energy planning as a supplement to on site measurements, which are costly and sparse, and model wind fields, which are not fully validated. Two applications of SAR measurements in offshore wind energy planning areaddressed here: the study of wind farm wake effects and the potential of using SAR winds in offshore wind resource assessment. Firstly, wind wakes behind two large offshore wind farms in Denmark – Horns Rev and Nysted – are identified. A region ofreduced wind speed is found downstream of both wind farms from the SAR wind fields. The wake extent and magnitude depends on the wind speed, the atmospheric stability, and the fraction of turbines operating. Wind farm wake effects are detected up to 20 kmdownwind of the last turbine. This distance is longer than predicted by state-of-the art wake models. Wake losses are typically 10-20% near the wind farms. Secondly, the potential of using SAR wind maps in offshore wind resource assessment isinvestigated. The resource assessment is made through Weibull fitting to frequency observations of wind speed and requires at least 100 satellite observations per year for a given site of interest. Predictions of the energy density are very sensitive tothe wind speed and the highest possible accuracy on SAR wind retrievals is therefore sought. A 1.1 m s-1 deviation on the mean wind speed is found through comparison with mast measurements at Horns Rev. The accuracy on mean wind speeds and energydensities found from satellite measurements varies with different empirical model functions. Additional uncertainties are introduced by the infrequent satellite sampling at fixed times of the day. The accuracy on satellite based wind resource assessmentis sufficient in the early stage of wind farm planning, before higher-accuracy on site measurements are available.
机译:事实证明,安装在卫星或飞机上的合成孔径雷达(SAR)可用于海风测绘。可以使用经验模型函数从雷达后向散射的测量结果中获取10 m高处的风速。由此产生的风场在海上风能规划中是有价值的,可以作为昂贵且稀疏的现场测量的补充,以及尚未得到充分验证的风场模型。本文介绍了SAR测量在海上风能规划中的两个应用:风电场尾流效应的研究以及在海上风资源评估中使用SAR风的潜力。首先,确定了丹麦的两个大型海上风电场(Horns Rev和Nysted)背后的风向。在SAR风场的两个风电场下游都发现风速降低的区域。尾流的程度和大小取决于风速,大气稳定性以及涡轮机运行的比例。在最后一个涡轮机下风20公里处检测到风电场的尾流影响。该距离比最新的尾流模型预测的距离长。在风电场附近,苏醒损耗通常为10-20%。其次,研究了将SAR风图用于海上风资源评估的潜力。资源评估是通过Weibull拟合来进行风速频率观测的,对于给定的感兴趣站点,每年至少需要进行100次卫星观测。能量密度的预测对风速非常敏感,因此寻求SAR取风的最高精度。通过与Horns Rev的桅杆测量值进行比较,发现平均风速有1.1 m s-1的偏差。从卫星测量中获得的平均风速和能量密度的精度随不同的经验模型函数而变化。在一天的固定时间很少进行卫星采样会带来其他不确定性。在风电场规划的早期阶段,基于卫星的风资源评估的准确性是足够的,然后才能获得更高的现场测量精度。

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    Badger Merete;

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  • 年度 2006
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  • 原文格式 PDF
  • 正文语种 eng
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