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Dive into the research topics where Antoine Borraccino is active.

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Featured researches published by Antoine Borraccino.


Remote Sensing | 2016

Generic Methodology for Field Calibration of Nacelle-Based Wind Lidars

Antoine Borraccino; Michael Courtney; Rozenn Wagner

Nacelle-based Doppler wind lidars have shown promising capabilities to assess power performance, detect yaw misalignment or perform feed-forward control. The power curve application requires uncertainty assessment. Traceable measurements and uncertainties of nacelle-based wind lidars can be obtained through a methodology applicable to any type of existing and upcoming nacelle lidar technology. The generic methodology consists in calibrating all the inputs of the wind field reconstruction algorithms of a lidar. These inputs are the line-of-sight velocity and the beam position, provided by the geometry of the scanning trajectory and the lidar inclination. The line-of-sight velocity is calibrated in atmospheric conditions by comparing it to a reference quantity based on classic instrumentation such as cup anemometers and wind vanes. The generic methodology was tested on two commercially developed lidars, one continuous wave and one pulsed systems, and provides consistent calibration results: linear regressions show a difference of ∼0.5% between the lidar-measured and reference line-of-sight velocities. A comprehensive uncertainty procedure propagates the reference uncertainty to the lidar measurements. At a coverage factor of two, the estimated line-of-sight velocity uncertainty ranges from 3.2% at 3 m · s − 1 to 1.9% at 16 m · s − 1 . Most of the line-of-sight velocity uncertainty originates from the reference: the cup anemometer uncertainty accounts for ∼90% of the total uncertainty. The propagation of uncertainties to lidar-reconstructed wind characteristics can use analytical methods in simple cases, which we demonstrate through the example of a two-beam system. The newly developed calibration methodology allows robust evaluation of a nacelle lidar’s performance and uncertainties to be established. Calibrated nacelle lidars may consequently be further used for various wind turbine applications in confidence.


Archive | 2017

Remotely measuring the wind using turbine-mounted lidars: Application to power performance testing

Antoine Borraccino; Michael Courtney; Rozenn Wagner

Nacelle-based Doppler wind lidars have shown promising capabilities to assess power performance, detect yaw misalignment or perform feed-forward control. The power curve application requires uncertainty assessment. Traceable measurements and uncertainties of nacelle-based wind lidars can be obtained through a methodology applicable to any type of existing and upcoming nacelle lidar technology. The generic methodology consists in calibrating all the inputs of the wind field reconstruction algorithms of a lidar. These inputs are the line-of-sight velocity and the beam position, provided by the geometry of the scanning trajectory and the lidar inclination. The line-of-sight velocity is calibrated in atmospheric conditions by comparing it to a reference quantity based on classic instrumentation such as cup anemometers and wind vanes. The generic methodology was tested on two commercially developed lidars, one continuous wave and one pulsed systems, and provides consistent calibration results: linear regressions show a difference of ∼0.5% between the lidar-measured and reference line-of-sight velocities. A comprehensive uncertainty procedure propagates the reference uncertainty to the lidar measurements. At a coverage factor of two, the estimated line-of-sight velocity uncertainty ranges from 3.2% at 3 m·s−1 to 1.9% at 16 m·s−1. Most of the line-of-sight velocity uncertainty originates from the reference: the cup anemometer uncertainty accounts for ∼90% of the total uncertainty. The propagation of uncertainties to lidar-reconstructed wind characteristics can use analytical methods in simple cases, which we demonstrate through the example of a two-beam system. The newly developed calibration methodology allows robust evaluation of a nacelle lidar’s performance and uncertainties to be established. Calibrated nacelle lidars may consequently be further used for various wind turbine applications in confidence.


Archive | 2015

Generic methodology for calibrating profiling nacelle lidars

Antoine Borraccino; Michael Courtney; Rozenn Wagner


Archive | 2016

Calibration report for ZephIR Dual Mode lidar (unit 351)

Antoine Borraccino; Michael Courtney


Archive | 2016

Calibration report for Avent 5-beam Demonstrator lidar

Antoine Borraccino; Michael Courtney


Wind Energy Science Discussions | 2017

Wind Field Reconstruction from Nacelle-Mounted Lidars Short Range Measurements

Antoine Borraccino; David Schlipf; Florian Haizmann; Rozenn Wagner


Archive | 2017

PhD defence: How to measure remotely the wind using nacelle lidars for power performance testing

Antoine Borraccino


Archive | 2017

Sensitivity analysis of nacelle lidar free stream wind speed measurements to wind-induction reconstruction model and lidar range configuration

Elin Svensson; Antoine Borraccino; Alexander Raul Meyer Forsting; Niels Troldborg; Rozenn Wagner


Archive | 2017

Power performance verification in complex terrain using nacelle lidars: the Hill of Towie (HoT) campaign

Antoine Borraccino; Rozenn Wagner; Andrea Vignaroli; Alexander Raul Meyer Forsting


Journal of Physics: Conference Series | 2017

Modelling lidar volume-averaging and its significance to wind turbine wake measurements: Paper

Alexander Raul Meyer Forsting; Niels Troldborg; Antoine Borraccino

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Rozenn Wagner

Technical University of Denmark

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Michael Courtney

Technical University of Denmark

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Niels Troldborg

Technical University of Denmark

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Andrea Vignaroli

Technical University of Denmark

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Elin Svensson

Technical University of Denmark

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