The blades directly affect the safety and power generation efficiency of the wind turbines. With the blade size increases, the reliable modal identification becomes important for vibration-based health monitoring. Although operational modal analysis (OMA) technique has been used in condition monitoring for the wind turbine blades, most existing studies focus on investigating a specific single method or under ideal excitation conditions. To overcome this limitation, this study takes the IEA-15MW large wind turbine blade as the research object and compares three OMA methods through numerical simulations, namely covariance-driven stochastic subspace identification (SSI-COV), frequency domain decomposition (FDD), and poly-reference least squares complex frequency domain (PolyMAX). The performance of the modal parameter identification methods is evaluated with respect to different sensor layouts, blade–tower coupling conditions, and environmental excitations. The results indicate that sparse sensor deployment cannot reliably identify the damage-sensitive high-order and complex modes. A nine-channel layout concentrated near second-order deformation regions significantly improves the identification of second-order flapwise frequencies and controls the average error of the first six modes within 3%. PolyMAX shows the best identification stability under different numbers and layouts of the sensors. Blade–tower coupling changes the blade modal characteristics and increases identification difficulty. Under this condition, FDD can still identify both low-order and high-order modes with good stability. Under different real wind conditions, the increasing wind speed causes the aerodynamic load to deviate from the white noise assumption, generally leading to fluctuations in the identification errors, with relatively large local errors occurring at certain medium and high wind speeds. Overall, the three OMA methods show different advantages under different identification conditions. PolyMAX shows the best stability under different sensor layouts and performs best when wind speed increases in the coupled wind turbine model, indicating that it is the most suitable for the actual complex coupling effects and environmental conditions. This research hopefully provides a basis for the subsequent engineering application of vibration-based modal identification of large offshore blades.
Vibration monitoring and health assessment of rotor blades using the blade tip-timing (BTT) method has gained increasing attention in turbine machinery. Identifying synchronous vibration parameters identification of rotor blades can help prevent high-cycle fatigue failure and can also evaluate blade status, such as v...
Sanqun Ren, Wei Zhao, Qing-Jun Zhao et al.· Journal of Engineering For G...· 0 citations
Vibration response analysis constitutes a pivotal approach for crack monitoring and early warning of damage identification in wind turbine blades. Traditional data-driven methods, however, demonstrate marked deficiencies in identification accuracy and generalization capability. To mitigate these issues, a method for cr...
Min Wang, G. Qin, Xiaofei Zhang· Machines· 0 citations
Wind energy, as a major contributor to the renewable energy sector, is receiving increasing attention to meet the growing demand for low-carbon electricity. The performance of a wind turbine can be significantly affected by various types of damage in its components, particularly the rotor blades. If left undetected, da...
Farbod Dadashbaki, S. Sikdar, D. D. Mandal et al.· e-Journal of Nondestructive...· 0 citations
This research is based on the results of a mechanical loadmonitoring campaign of a prototype wind turbine at an experimental wind farm, where an unexpected blade vibration was detected. This prototype belongs to Nordex. This vibration in the edgewise direction had a frequency of 4P (P=rotor rotation frequency) and caus...
This research stems from the problem that adding unbalance mass to a rotating shaft alters system vibration characteristics, a phenomenon that remains insufficiently quantified in small-scale rotating engines. This study aims to analyze the effects of variations in mass position, radial distance, and rotational speed o...
Salman Salman, I. Okariawan, P. D. Setyawan· Jurnal POLIMESIN· 0 citations
This study investigates the dynamic behaviour of an onshore wind turbine tower throughout the entire assembly process, with particular emphasis on the challenge of identifying closely spaced modes in operational modal analysis. A comprehensive measurement campaign, involving up to 23 accelerometers, was conducted to ca...
Leon Liesecke, Clemens Jonscher, Benedikt Hofmeister et al.· Journal of Civil Structural...· 0 citations
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