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Title: Characterization and repair of core gap manufacturing defects for wind turbine blades

Journal Article · · Journal of Sandwich Structures & Materials

Various wind turbine blade components, such as shear webs and skins, commonly use fiber-reinforced composite sandwich structures with a core material like balsa or foam. During manufacturing, core gap defects may result from the misalignment of adjacent foam or balsa core sheets in the blade mold. It is important to understand the influence that core gaps have on the structural integrity of wind turbine blades and how to mitigate their influence. This research characterized the effects of core gap defects at the manufacturing and mechanical levels for both epoxy and next-generation thermoplastic composites. Common repair methods were assessed and compared. Multiple defect sizes were compared using temperature data gathered with thermocouples embedded during manufacturing to core gap defect characteristics obtained using image-mapping techniques, optical microscopy, and mechanical characterization by long beam flexure. Results showed that peak exothermic temperatures during curing were closely related to core gap size. The long beam flexure tests determined that transverse core gaps under pure bending loads can have a substantial effect on the ultimate facesheet strength of both epoxy and thermoplastic composite sandwich structures (up to 25% strength reduction), although the size of the defect itself had less of an influence on the magnitude of the strength reduction. The supporting image-mapping techniques indicated that the distortion of the composite facesheets by the core gaps contributed to the premature failures. The repair methods used in this study did very little to improve the ultimate strength of the sandwich panels that previously had core gap defects. The repair of the thermoplastic panel resulted in a further loss in ultimate facesheet strength. In closing, this research demonstrated that there is a vital need for the development of a compatible thermoplastic polymer repair resin system and appropriate resin specific repair procedures for the next generation of recyclable thermoplastic wind blades.

Research Organization:
National Renewable Energy Laboratory (NREL), Golden, CO (United States)
Sponsoring Organization:
USDOE Office of Energy Efficiency and Renewable Energy (EERE), Renewable Power Office. Wind Energy Technologies Office
Grant/Contract Number:
AC36-08GO28308
OSTI ID:
1881376
Alternate ID(s):
OSTI ID: 1882668
Report Number(s):
NREL/JA-5000-81152
Journal Information:
Journal of Sandwich Structures & Materials, Journal Name: Journal of Sandwich Structures & Materials Vol. 24 Journal Issue: 7; ISSN 1099-6362
Publisher:
SAGE PublicationsCopyright Statement
Country of Publication:
Country unknown/Code not available
Language:
English

References (19)

Experimental investigation of interfacial crack arrest in sandwich beams subjected to fatigue loading using a novel crack arresting device journal March 2017
Structural validation of a thermoplastic composite wind turbine blade with comparison to a thermoset composite blade journal February 2021
Development of a High-fidelity Experimental Substructure Test Rig for Grid-scored Sandwich Panels in Wind Turbine Blades: Development of a High-fidelity Experimental Substructure Test Rig journal October 2013
Effects of defects in composite wind turbine blades – Part 2: Progressive damage modeling of fiberglass-reinforced epoxy composites with manufacturing-induced waves journal January 2017
Understanding progressive failure mechanisms of a wind turbine blade trailing edge section through subcomponent tests and nonlinear FE analysis journal April 2019
Structural testing and numerical simulation of a 34m composite wind turbine blade journal October 2006
Structural failure test of a 52.5 m wind turbine blade under combined loading journal September 2019
Manufacturing a 9-Meter Thermoplastic Composite Wind Turbine Blade conference November 2017
Fracture behaviour of foam core sandwich structures with manufacturing defects using phase-field modelling journal October 2021
Recycling glass fiber thermoplastic composites from wind turbine blades journal February 2019
Techno-economic analysis of a megawatt-scale thermoplastic resin wind turbine blade journal February 2019
Crack deflection analyses of different peel stopper designs for sandwich structures journal May 2009
Increasing recyclability of PC, ABS and PMMA: Morphology and fracture behavior of binary and ternary blends journal January 2008
Failure behaviour of grid-scored foam cored composite sandwich panels for wind turbine blades subjected to realistic multiaxial loading conditions journal May 2014
Fractographic analysis of sandwich panels in a composite wind turbine blade using optical microscopy and X-ray computed tomography journal April 2020
Effects of defects in composite wind turbine blades – Part 1: Characterization and mechanical testing journal January 2017
Investigating Core Gaps and the Development of Subcomponent Validation Methods for Wind Turbine Blades conference January 2020
Proposal of the concept of splice-type arrester for foam core sandwich panels journal August 2012
Fusion joining of thermoplastic composite wind turbine blades: Lap-shear bond characterization journal September 2019