Modeling the effect of wind speed and direction shear on utility-scale wind turbine power production

Fuente: arXiv
Gespeichert in:
Bibliographische Detailangaben
Hauptverfasser: Mata, Storm A., MartÍnez, Juan José Pena, Quesada, Jesús Bas, Larrañaga, Felipe Palou, Yadav, Neeraj, Chawla, Jasvipul S., Sivaram, Varun, Howland, Michael F.
Format: Preprint
Veröffentlicht: 2023
Schlagworte:
Online-Zugang:
Tags: Tag hinzufügen
Keine Tags, Fügen Sie den ersten Tag hinzu!
_version_ 1866914819938975744
author Mata, Storm A.
MartÍnez, Juan José Pena
Quesada, Jesús Bas
Larrañaga, Felipe Palou
Yadav, Neeraj
Chawla, Jasvipul S.
Sivaram, Varun
Howland, Michael F.
author_facet Mata, Storm A.
MartÍnez, Juan José Pena
Quesada, Jesús Bas
Larrañaga, Felipe Palou
Yadav, Neeraj
Chawla, Jasvipul S.
Sivaram, Varun
Howland, Michael F.
contents Wind speed and direction variations across the rotor affect power production. As utility-scale turbines extend higher into the atmospheric boundary layer (ABL) with larger rotor diameters and hub heights, they increasingly encounter more complex wind speed and direction variations. We assess three models for power production that account for wind speed and direction shear. Two are based on actuator disc representations and the third is a blade element representation. We also evaluate the predictions from a standard power curve model that has no knowledge of wind shear. The predictions from each model, driven by wind profile measurements from a profiling LiDAR, are compared to concurrent power measurements from an adjacent utility-scale wind turbine. In the field measurements of the utility-scale turbine, discrete combinations of speed and direction shear induce changes in power production of -19% to +34% relative to the turbine power curve for a given hub height wind speed. Positive speed shear generally corresponds to over-performance and positive direction shear to under-performance, relative to the power curve. Overall, the blade element model produces both higher correlation and lower error relative to the other models, but its quantitative accuracy depends on induction and controller sub-models. To further assess the influence of complex, non-monotonic wind profiles, we also drive the models with best-fit power law wind speed profiles and linear wind direction profiles. These idealized inputs produce qualitative and quantitative differences in power predictions from each model, demonstrating that time-varying, non-monotonic wind shear affects wind power production.
format Preprint
id arxiv_https___arxiv_org_abs_2309_15254
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Modeling the effect of wind speed and direction shear on utility-scale wind turbine power production
Mata, Storm A.
MartÍnez, Juan José Pena
Quesada, Jesús Bas
Larrañaga, Felipe Palou
Yadav, Neeraj
Chawla, Jasvipul S.
Sivaram, Varun
Howland, Michael F.
Fluid Dynamics
Wind speed and direction variations across the rotor affect power production. As utility-scale turbines extend higher into the atmospheric boundary layer (ABL) with larger rotor diameters and hub heights, they increasingly encounter more complex wind speed and direction variations. We assess three models for power production that account for wind speed and direction shear. Two are based on actuator disc representations and the third is a blade element representation. We also evaluate the predictions from a standard power curve model that has no knowledge of wind shear. The predictions from each model, driven by wind profile measurements from a profiling LiDAR, are compared to concurrent power measurements from an adjacent utility-scale wind turbine. In the field measurements of the utility-scale turbine, discrete combinations of speed and direction shear induce changes in power production of -19% to +34% relative to the turbine power curve for a given hub height wind speed. Positive speed shear generally corresponds to over-performance and positive direction shear to under-performance, relative to the power curve. Overall, the blade element model produces both higher correlation and lower error relative to the other models, but its quantitative accuracy depends on induction and controller sub-models. To further assess the influence of complex, non-monotonic wind profiles, we also drive the models with best-fit power law wind speed profiles and linear wind direction profiles. These idealized inputs produce qualitative and quantitative differences in power predictions from each model, demonstrating that time-varying, non-monotonic wind shear affects wind power production.
title Modeling the effect of wind speed and direction shear on utility-scale wind turbine power production
topic Fluid Dynamics
url https://arxiv.org/abs/2309.15254