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Journal article

Accuracy of an efficient framework for structural analysis of wind turbine blades

In Wind Energy 2016, Volume 19, Issue 9, pp. 1603-1621
From

Department of Wind Energy, Technical University of Denmark1

Wind Turbines, Department of Wind Energy, Technical University of Denmark2

Department of Mechanical Engineering, Technical University of Denmark3

Solid Mechanics, Department of Mechanical Engineering, Technical University of Denmark4

This paper presents a novel framework for the structural design and analysis of wind turbine blades and establishes its accuracy. The framework is based on a beam model composed of two parts—a 2D finite element-based cross-section analysis tool and a 3D beam finite element model. The cross-section analysis tool is able to capture the effects stemming from material anisotropy and inhomogeneity for sections of arbitrary geometry.

The proposed framework is very efficient and therefore ideally suited for integration within wind turbine aeroelastic design and analysis tools. A number of benchmark examples are presented comparing the results from the proposed beam model to 3D shell and solid finite element models. The examples considered include a square prismatic beam, an entire wind turbine rotor blade and a detailed wind turbine blade cross section.

Phenomena at both the blade length scale—deformation and eigenfrequencies—and cross section scale—3D material strain and stress fields—are analyzed. Furthermore, the effect of the different assumptions regarding the boundary conditions is discussed in detail. The benchmark examples show excellent agreement suggesting that the proposed framework is a highly efficient alternative to 3D finite element models for structural analysis of wind turbine blades.

Copyright © 2015 John Wiley & Sons, Ltd.

Language: English
Year: 2016
Pages: 1603-1621
ISSN: 10991824 and 10954244
Types: Journal article
DOI: 10.1002/we.1939
ORCIDs: Bitsche, Robert D. , Fedorov, Vladimir and Lazarov, Boyan Stefanov

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