Analysis of the Effect of Fiber Orientation on Mechanical and Elastic Characteristics at Axial Stresses of GFRP Used in Wind Turbine Blades.

FEM GFRP SEM fibre orientation strain gauge tensile wind turbine blade

Journal

Polymers
ISSN: 2073-4360
Titre abrégé: Polymers (Basel)
Pays: Switzerland
ID NLM: 101545357

Informations de publication

Date de publication:
09 Feb 2023
Historique:
received: 13 01 2023
revised: 04 02 2023
accepted: 05 02 2023
entrez: 28 2 2023
pubmed: 1 3 2023
medline: 1 3 2023
Statut: epublish

Résumé

Due to its physical and mechanical properties, glass-fiber-reinforced polymer (GFRP) is utilized in wind turbine blades. The loads given to the blades of wind turbines, particularly those operating offshore, are relatively significant. In addition to the typical static stresses, there are also large dynamic stresses, which are mostly induced by wind-direction changes. When the maximum stresses resulting from fatigue loading change direction, the reinforcing directions of the material used to manufacture the wind turbine blades must also be considered. In this study, sandwich-reinforced GFRP materials were subjected to tensile testing in three directions. The parameters of the stress-strain curve were identified and identified based on the three orientations in which samples were cut from the original plate. Strain gauge sensors were utilized to establish the three-dimensional elasticity of a material. After a fracture was created by tensile stress, SEM images were taken to highlight the fracture's characteristics. Using finite element analyses, the stress-strain directions were determined. In accordance to the three orientations and the various reinforcements used, it was established that the wind turbine blades are operational.

Identifiants

pubmed: 36850147
pii: polym15040861
doi: 10.3390/polym15040861
pmc: PMC9958773
pii:
doi:

Types de publication

Journal Article

Langues

eng

Subventions

Organisme : Gheorghe Asachi Technical University of Iași

Références

Polymers (Basel). 2021 Dec 09;13(24):
pubmed: 34960864
Polymers (Basel). 2021 Mar 15;13(6):
pubmed: 33804030
Polymers (Basel). 2016 May 19;8(5):
pubmed: 30979295
Materials (Basel). 2021 Apr 06;14(7):
pubmed: 33917466
Materials (Basel). 2021 May 12;14(10):
pubmed: 34066121
Materials (Basel). 2017 Nov 09;10(11):
pubmed: 29120396
Polymers (Basel). 2021 Apr 02;13(7):
pubmed: 33918431
Polymers (Basel). 2022 Sep 21;14(19):
pubmed: 36235885

Auteurs

Ciprian Ionuț Morăraș (CI)

Mechanical Engineering, Mechatronics and Robotics Department, Mechanical Engineering Faculty, "Gheorghe Asachi" Technical University of Iasi, 700050 Iasi, Romania.

Viorel Goanță (V)

Mechanical Engineering, Mechatronics and Robotics Department, Mechanical Engineering Faculty, "Gheorghe Asachi" Technical University of Iasi, 700050 Iasi, Romania.

Dorin Husaru (D)

Fluid Mechanics, Fluid Machines and Fluid Power Systems Department, Machine Manufacturing and Industrial Management Faculty, "Gheorghe Asachi" Technical University of Iasi, 700050 Iasi, Romania.

Bogdan Istrate (B)

Mechanical Engineering, Mechatronics and Robotics Department, Mechanical Engineering Faculty, "Gheorghe Asachi" Technical University of Iasi, 700050 Iasi, Romania.

Paul Doru Bârsănescu (PD)

Mechanical Engineering, Mechatronics and Robotics Department, Mechanical Engineering Faculty, "Gheorghe Asachi" Technical University of Iasi, 700050 Iasi, Romania.

Corneliu Munteanu (C)

Mechanical Engineering, Mechatronics and Robotics Department, Mechanical Engineering Faculty, "Gheorghe Asachi" Technical University of Iasi, 700050 Iasi, Romania.
Technical Sciences Academy of Romania, 26 Dacia Blvd., 030167 Bucharest, Romania.

Classifications MeSH