Load case selection for finite-element simulations of wind turbine pitch bearings and hubs

<p>Finite-element simulations of large rolling bearings and structural parts are an indispensable tool in the design of wind turbines. Unlike simpler structures or smaller bearings in rigid environments where analytical formulas suffice, wind turbine components require a more comprehensive app...

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Main Authors: M. Stammler, F. Schleich
Format: Article
Language:English
Published: Copernicus Publications 2025-04-01
Series:Wind Energy Science
Online Access:https://wes.copernicus.org/articles/10/813/2025/wes-10-813-2025.pdf
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author M. Stammler
F. Schleich
author_facet M. Stammler
F. Schleich
author_sort M. Stammler
collection DOAJ
description <p>Finite-element simulations of large rolling bearings and structural parts are an indispensable tool in the design of wind turbines. Unlike simpler structures or smaller bearings in rigid environments where analytical formulas suffice, wind turbine components require a more comprehensive approach. This is because analytical formulas often fall short in predicting load distributions and stresses, leading to inadequate designs. However, due to the complexity of the finite-element models and number of operational load cases involved, it is necessary to strike a balance between achieving realistic results and keeping computational times manageable. This study focuses on the selection of load cases for simulations of pitch bearings and hubs of wind turbines. The models for these contain the hub, the pitch bearings, the inner parts of three blades, and any necessary interface parts. The simulation results allow for the calculation of static and fatigue strength. Given the complexity of the problem, with each rotor blade having 6 degrees of freedom, 5 types of loads, and a pitch angle, their potential combinations would result in an unmanageably high number of required simulations. The present work assumes that binning of 1 or more degrees of freedom into sufficiently small bins results in the other degrees of freedom showing negligible variation. Defining the values for these binned degrees of freedom thus gives the values for the others and reduces the number of combinations drastically. The validity of this approach is verified by the standard deviations of the unbinned degrees of freedom and by exemplary stress calculations of a pitch bearing ring. The blade's azimuth angle and bending moments of one blade root allow determining the loads at all three blade roots and thus the derivation of stress time series with 384 simulations of a full rotor with a reasonable degree of confidence.</p>
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spelling doaj-art-3b75ab048fbb4060bf4f3764a10095782025-08-20T03:53:38ZengCopernicus PublicationsWind Energy Science2366-74432366-74512025-04-011081382610.5194/wes-10-813-2025Load case selection for finite-element simulations of wind turbine pitch bearings and hubsM. Stammler0F. Schleich1Large Bearing Laboratory, Fraunhofer Institute for Wind Energy Systems IWES, Hamburg, 21029, GermanyLarge Bearing Laboratory, Fraunhofer Institute for Wind Energy Systems IWES, Hamburg, 21029, Germany<p>Finite-element simulations of large rolling bearings and structural parts are an indispensable tool in the design of wind turbines. Unlike simpler structures or smaller bearings in rigid environments where analytical formulas suffice, wind turbine components require a more comprehensive approach. This is because analytical formulas often fall short in predicting load distributions and stresses, leading to inadequate designs. However, due to the complexity of the finite-element models and number of operational load cases involved, it is necessary to strike a balance between achieving realistic results and keeping computational times manageable. This study focuses on the selection of load cases for simulations of pitch bearings and hubs of wind turbines. The models for these contain the hub, the pitch bearings, the inner parts of three blades, and any necessary interface parts. The simulation results allow for the calculation of static and fatigue strength. Given the complexity of the problem, with each rotor blade having 6 degrees of freedom, 5 types of loads, and a pitch angle, their potential combinations would result in an unmanageably high number of required simulations. The present work assumes that binning of 1 or more degrees of freedom into sufficiently small bins results in the other degrees of freedom showing negligible variation. Defining the values for these binned degrees of freedom thus gives the values for the others and reduces the number of combinations drastically. The validity of this approach is verified by the standard deviations of the unbinned degrees of freedom and by exemplary stress calculations of a pitch bearing ring. The blade's azimuth angle and bending moments of one blade root allow determining the loads at all three blade roots and thus the derivation of stress time series with 384 simulations of a full rotor with a reasonable degree of confidence.</p>https://wes.copernicus.org/articles/10/813/2025/wes-10-813-2025.pdf
spellingShingle M. Stammler
F. Schleich
Load case selection for finite-element simulations of wind turbine pitch bearings and hubs
Wind Energy Science
title Load case selection for finite-element simulations of wind turbine pitch bearings and hubs
title_full Load case selection for finite-element simulations of wind turbine pitch bearings and hubs
title_fullStr Load case selection for finite-element simulations of wind turbine pitch bearings and hubs
title_full_unstemmed Load case selection for finite-element simulations of wind turbine pitch bearings and hubs
title_short Load case selection for finite-element simulations of wind turbine pitch bearings and hubs
title_sort load case selection for finite element simulations of wind turbine pitch bearings and hubs
url https://wes.copernicus.org/articles/10/813/2025/wes-10-813-2025.pdf
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AT fschleich loadcaseselectionforfiniteelementsimulationsofwindturbinepitchbearingsandhubs