Machine-learning identification of the variability of mean velocity and turbulence intensity for wakes generated by onshore wind turbines: Cluster analysis of wind LiDAR measurements
G. Valerio Iungo, Romit Maulik, S. Ashwin Renganathan and, Stefano Letizia

TL;DR
This study uses LiDAR measurements and clustering techniques to analyze the variability of wind turbine wake velocity and turbulence, considering different atmospheric and operational conditions.
Contribution
It introduces a novel clustering approach combining k-means and POD to characterize wake variability without biased thresholds.
Findings
Identified representative wake realizations across conditions
Linked wake features to turbine thrust and atmospheric stability
Reduced dataset dimensionality with physics-informed POD modes
Abstract
Wind turbine wakes are the result of the extraction of kinetic energy from the incoming atmospheric wind exerted from a wind turbine rotor. Therefore, the reduced mean velocity and enhanced turbulence intensity within the wake are affected by the characteristics of the incoming wind, turbine blade aerodynamics, and the turbine control settings. In this work, LiDAR measurements of isolated wakes generated by wind turbines installed at an onshore wind farm are leveraged to characterize the variability of the wake mean velocity and turbulence intensity during typical operations encompassing a breadth of atmospheric stability regimes, levels of power capture, and, in turn, rotor thrust coefficients. For the statistical analysis of the wake velocity fields, the LiDAR measurements are clustered through a k-means algorithm, which enables to identify of the most representative realizations of…
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Taxonomy
TopicsWind Energy Research and Development · Wind and Air Flow Studies · Fluid Dynamics and Vibration Analysis
