Measurement of unsteady loading and power output variability in a micro wind farm model in a wind tunnel

被引:0
作者
Juliaan Bossuyt
Michael F. Howland
Charles Meneveau
Johan Meyers
机构
[1] KU Leuven,Department of Mechanical Engineering
[2] Johns Hopkins University,Department of Mechanical Engineering
[3] Johns Hopkins University,Department of Mechanical Engineering, Center for Environmental and Applied Mechanics
来源
Experiments in Fluids | 2017年 / 58卷
关键词
Wind Tunnel; Wind Turbine; Turbulence Intensity; Turbulent Boundary Layer; Wind Farm;
D O I
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中图分类号
学科分类号
摘要
Unsteady loading and spatiotemporal characteristics of power output are measured in a wind tunnel experiment of a microscale wind farm model with 100 porous disk models. The model wind farm is placed in a scaled turbulent boundary layer, and six different layouts, varied from aligned to staggered, are considered. The measurements are done by making use of a specially designed small-scale porous disk model, instrumented with strain gages. The frequency response of the measurements goes up to the natural frequency of the model, which corresponds to a reduced frequency of 0.6 when normalized by the diameter and the mean hub height velocity. The equivalent range of timescales, scaled to field-scale values, is 15 s and longer. The accuracy and limitations of the acquisition technique are documented and verified with hot-wire measurements. The spatiotemporal measurement capabilities of the experimental setup are used to study the cross-correlation in the power output of various porous disk models of wind turbines. A significant correlation is confirmed between streamwise aligned models, while staggered models show an anti-correlation.
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