Exploring the potentialities of thermal asymmetries in composite wind turbine blade structures via numerical and thermographic methods: a thermophysical perspective

Date published

2024

Free to read from

2024-10-21

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Journal ISSN

Volume Title

Publisher

Springer

Department

Type

Article

ISSN

1388-6150

Format

Citation

Figueiredo AAA, D’Alessandro G, Perilli S, et al., (2024) Exploring the potentialities of thermal asymmetries in composite wind turbine blade structures via numerical and thermographic methods: a thermophysical perspective. Journal of Thermal Analysis and Calorimetry, Available online 16 September 2024

Abstract

Using composite materials in turbine blades has become common in the wind power industry due to their mechanical properties and low mass. This work aims to investigate the effectiveness of the active infrared thermography technique as a non-destructive inspection tool to identify defects in composite material structures of turbine blades. Experiments were carried out by heating the sample and capturing thermographic images using a thermal camera in four different scenarios, changing the heating strategy. Such a preliminary experiments are prodromic to build, in future, the so-called optimal experiment design for thermal property estimation. The experimental results using two heaters arranged symmetrically on the sample detected the presence of the defect through temperature curves extracted from thermal images, where temperature asymmetries of 25% between the regions with and without defect occurred. Moreover, when only a larger heater was used in transmission mode, the defect was detected based on differences between normalized excess temperatures on the side with and without the defect in the order of 20%. Additionally, numerical simulations were carried out to present solutions for improving defect detection. It was demonstrated that active infrared thermography is an efficient technique for detecting flaws in composite material structures of turbine blades. This research contributes to advancing knowledge in inspecting composite materials.

Description

Software Description

Software Language

Github

Keywords

Composite, Turbine blades, Defect, Thermography, Thermophysical properties, Heat transfer, 3403 Macromolecular and Materials Chemistry, 34 Chemical Sciences, 7 Affordable and Clean Energy, Physical Chemistry, 3406 Physical chemistry

DOI

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Attribution 4.0 International

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Funder/s

National Council for Scientific and Technological Development
This study was financed in part by the National Council for Scientific and Technological Development (CNPq) - Finance Codes 407.140/2021-2 and 312.530/2023-4.