LAPSE:2023.24538
Published Article

LAPSE:2023.24538
High-Resolution Structure-from-Motion for Quantitative Measurement of Leading-Edge Roughness
March 28, 2023
Abstract
Over time, erosion of the leading edge of wind turbine blades increases the leading-edge roughness (LER). This may reduce the aerodynamic performance of the blade and hence the annual energy production of the wind turbine. As early detection is key for cost-effective maintenance, inspection methods are needed to quantify the LER of the blade. The aim of this proof-of-principle study is to determine whether high-resolution Structure-from-Motion (SfM) has the sufficient resolution and accuracy for quantitative inspection of LER. SfM provides 3D reconstruction of an object geometry using overlapping images of the object acquired with an RGB camera. Using information of the camera positions and orientations, absolute scale of the reconstruction can be achieved. Combined with a UAV platform, SfM has the potential for remote blade inspections with a reduced downtime. The tip of a decommissioned blade with an artificially enhanced erosion was used for the measurements. For validation, replica molding was used to transfer areas-of-interest to the lab for reference measurements using confocal microscopy. The SfM reconstruction resulted in a spatial resolution of 1 mm as well as a sub-mm accuracy in both the RMS surface roughness and the size of topographic features. In conclusion, high-resolution SfM demonstrated a successful quantitative reconstruction of LER.
Over time, erosion of the leading edge of wind turbine blades increases the leading-edge roughness (LER). This may reduce the aerodynamic performance of the blade and hence the annual energy production of the wind turbine. As early detection is key for cost-effective maintenance, inspection methods are needed to quantify the LER of the blade. The aim of this proof-of-principle study is to determine whether high-resolution Structure-from-Motion (SfM) has the sufficient resolution and accuracy for quantitative inspection of LER. SfM provides 3D reconstruction of an object geometry using overlapping images of the object acquired with an RGB camera. Using information of the camera positions and orientations, absolute scale of the reconstruction can be achieved. Combined with a UAV platform, SfM has the potential for remote blade inspections with a reduced downtime. The tip of a decommissioned blade with an artificially enhanced erosion was used for the measurements. For validation, replica molding was used to transfer areas-of-interest to the lab for reference measurements using confocal microscopy. The SfM reconstruction resulted in a spatial resolution of 1 mm as well as a sub-mm accuracy in both the RMS surface roughness and the size of topographic features. In conclusion, high-resolution SfM demonstrated a successful quantitative reconstruction of LER.
Record ID
Keywords
blade inspection, leading-edge roughness, photogrammetry, quantitative 3D reconstruction, structure from motion, surface analysis
Subject
Suggested Citation
Nielsen MS, Nikolov I, Kruse EK, Garnæs J, Madsen CB. High-Resolution Structure-from-Motion for Quantitative Measurement of Leading-Edge Roughness. (2023). LAPSE:2023.24538
Author Affiliations
Nielsen MS: Danish Fundamental Metrology, Kogle Allé 5, DK-2970 Hørsholm, Denmark [ORCID]
Nikolov I: Department of Architecture, Design and Media Technology, Aalborg University, Rendsburggade 14, DK-9000 Aalborg, Denmark [ORCID]
Kruse EK: Power Curve ApS: Kastetvej 2, DK-9000 Aalborg, Denmark
Garnæs J: Danish Fundamental Metrology, Kogle Allé 5, DK-2970 Hørsholm, Denmark
Madsen CB: Department of Architecture, Design and Media Technology, Aalborg University, Rendsburggade 14, DK-9000 Aalborg, Denmark [ORCID]
Nikolov I: Department of Architecture, Design and Media Technology, Aalborg University, Rendsburggade 14, DK-9000 Aalborg, Denmark [ORCID]
Kruse EK: Power Curve ApS: Kastetvej 2, DK-9000 Aalborg, Denmark
Garnæs J: Danish Fundamental Metrology, Kogle Allé 5, DK-2970 Hørsholm, Denmark
Madsen CB: Department of Architecture, Design and Media Technology, Aalborg University, Rendsburggade 14, DK-9000 Aalborg, Denmark [ORCID]
Journal Name
Energies
Volume
13
Issue
15
Article Number
E3916
Year
2020
Publication Date
2020-07-31
ISSN
1996-1073
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Original Submission
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PII: en13153916, Publication Type: Journal Article
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LAPSE:2023.24538
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https://doi.org/10.3390/en13153916
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Mar 28, 2023
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