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Open access Aug 2026

Influence of Modeling Uncertainties in Accelerometer-based Strain Estimation for Wind Turbine Support Structures

One challenge in structural health monitoring (SHM) is to make reliable statements about the condition of the structure using only a few sensors, which is desirable from both technical and economic perspectives, as wind turbines often already have one acceleration sensor installed at the nacelle. Virtual sensing methods are used for this purpose, enabling the estimation of the structural response at non-instrumented locations using a structural model and measurement data. Knowledge of the structural response of wind turbines is desirable, as it provides the foundation for lifetime extension or load-optimised operation. The method applied here uses only one DC-capable acceleration sensor to estimate the full-field strain across the entire support structures of wind turbines. It utilises the tilt error present in the measured acceleration of tower structures to estimate the displacement in the frequency range below 0.05~Hz. The strains are subsequently estimated from the displacements using a transfer function based on a multi-band modal decomposition and expansion. For this contribution, the proposed method is applied to measurement data from an operating offshore wind turbine. The focus lies on the influence of uncertainties in the structural model on the accuracy of the strain estimation. The investigated modelling errors include parameters that are usually known to the operators with high levels of uncertainty, such as modelling of the scour protection, the soil stiffness, and the rotor. The influence of the selected parameters on the accuracy of strain estimation is compared using the damage-equivalent strains. The results showcase which parameters have a significant influence on the accuracy of strain estimation and indicate whether measures should be taken to reduce the uncertainty in the modelling to increase the strain estimation accuracy.

Jonathan Thurn, Clemens Jonscher, G. Zorzi et al. · 0 citations
Open access Jul 2026

Uncertainty-based mode selection for closely spaced modes in operational modal analysis of a wind turbine during assembly

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 capture vibration responses under environmental excitation across seven construction stages. Modal parameters and their associated uncertainties were identified using the covariance-driven stochastic subspace identification (SSI-COV) within a robust operational modal analysis scheme. A novel uncertainty-based mode selection approach was introduced and applied to reliably extract the modes of the first two bending mode pairs. Additionally, a bending mode indicator was developed to assess the purity of the identified bending shapes. The results show that the natural frequencies of the first bending mode pair decrease continuously as construction progresses. A similar trend was observed for the fore-aft mode of the second bending mode pair, while the side-to-side mode remained largely unaffected. Modal contribution analysis reveals that, particularly in the later assembly stages, the structural dynamics are dominated by the first bending mode pair. These findings highlight the effectiveness of the uncertainty-based mode selection framework and provide new insights into the dynamics of wind turbine towers during assembly. The results support model validation for structural health monitoring and may inform future design and construction practices.

Leon Liesecke, Clemens Jonscher, Benedikt Hofmeister et al. · 0 citations

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