Influence of internal technological defects on the mechanical properties of structural CFRP

The use of carbon-fiber composite materials (CFRP) in critical cases implies an increase in the resistance to the stability of their mechanical properties. For the purpose of in-depth analysis of defects in the experiments, an integrated approach to mechanical flaw detection and testing of CFRP is u...

Full description

Saved in:
Bibliographic Details
Main Authors: D.S. Lobanov, S.V. Slovikov, E.M. Lunegova
Format: Article
Language:English
Published: Gruppo Italiano Frattura 2023-07-01
Series:Fracture and Structural Integrity
Subjects:
Online Access:https://www.fracturae.com/index.php/fis/article/view/4110/3819
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1841561443239985152
author D.S. Lobanov
S.V. Slovikov
E.M. Lunegova
author_facet D.S. Lobanov
S.V. Slovikov
E.M. Lunegova
author_sort D.S. Lobanov
collection DOAJ
description The use of carbon-fiber composite materials (CFRP) in critical cases implies an increase in the resistance to the stability of their mechanical properties. For the purpose of in-depth analysis of defects in the experiments, an integrated approach to mechanical flaw detection and testing of CFRP is used. To determine the parameters of defects in ultrasonic diagnostic sensors and the method of infrared thermography. The main technological defects of structural carbon fiber in samples of the internal "glueline defect", are three geometric shapes (circle, square, rectangle) and a "buckling" inner layer. As a result of flaw detection of individual samples by ultrasonic diagnostics, data were obtained on the shape and size of defects such as "glueline defect" and "buckling". As a result of the study, tensile testing of the samples with and without defects was carried out using the Vic 3D system, the AMSY-6 acoustic emission system, and the FLIR SC7700M thermal imaging system. The tensile strength, elastic modulus, Poisson's ratio, and maximum fracture strains of the studied CFRP without defects and with defects are obtained. The effect of defective zones on the main mechanical parameters is determined. The investigated defects lead to a decrease in strength and elastic characteristics by at least 15% and 5%, respectively.
format Article
id doaj-art-d0dbfe6b4bab43ff9695c074f233cf98
institution Kabale University
issn 1971-8993
language English
publishDate 2023-07-01
publisher Gruppo Italiano Frattura
record_format Article
series Fracture and Structural Integrity
spelling doaj-art-d0dbfe6b4bab43ff9695c074f233cf982025-01-03T01:41:05ZengGruppo Italiano FratturaFracture and Structural Integrity1971-89932023-07-011765748710.3221/IGF-ESIS.65.0610.3221/IGF-ESIS.65.06Influence of internal technological defects on the mechanical properties of structural CFRPD.S. LobanovS.V. SlovikovE.M. LunegovaThe use of carbon-fiber composite materials (CFRP) in critical cases implies an increase in the resistance to the stability of their mechanical properties. For the purpose of in-depth analysis of defects in the experiments, an integrated approach to mechanical flaw detection and testing of CFRP is used. To determine the parameters of defects in ultrasonic diagnostic sensors and the method of infrared thermography. The main technological defects of structural carbon fiber in samples of the internal "glueline defect", are three geometric shapes (circle, square, rectangle) and a "buckling" inner layer. As a result of flaw detection of individual samples by ultrasonic diagnostics, data were obtained on the shape and size of defects such as "glueline defect" and "buckling". As a result of the study, tensile testing of the samples with and without defects was carried out using the Vic 3D system, the AMSY-6 acoustic emission system, and the FLIR SC7700M thermal imaging system. The tensile strength, elastic modulus, Poisson's ratio, and maximum fracture strains of the studied CFRP without defects and with defects are obtained. The effect of defective zones on the main mechanical parameters is determined. The investigated defects lead to a decrease in strength and elastic characteristics by at least 15% and 5%, respectively.https://www.fracturae.com/index.php/fis/article/view/4110/3819carbon-fiber compositeinternal technological defectstensilenon-destructive testingultrasonic diagnosticsinfrared thermographydigital image correlationacoustic emission
spellingShingle D.S. Lobanov
S.V. Slovikov
E.M. Lunegova
Influence of internal technological defects on the mechanical properties of structural CFRP
Fracture and Structural Integrity
carbon-fiber composite
internal technological defects
tensile
non-destructive testing
ultrasonic diagnostics
infrared thermography
digital image correlation
acoustic emission
title Influence of internal technological defects on the mechanical properties of structural CFRP
title_full Influence of internal technological defects on the mechanical properties of structural CFRP
title_fullStr Influence of internal technological defects on the mechanical properties of structural CFRP
title_full_unstemmed Influence of internal technological defects on the mechanical properties of structural CFRP
title_short Influence of internal technological defects on the mechanical properties of structural CFRP
title_sort influence of internal technological defects on the mechanical properties of structural cfrp
topic carbon-fiber composite
internal technological defects
tensile
non-destructive testing
ultrasonic diagnostics
infrared thermography
digital image correlation
acoustic emission
url https://www.fracturae.com/index.php/fis/article/view/4110/3819
work_keys_str_mv AT dslobanov influenceofinternaltechnologicaldefectsonthemechanicalpropertiesofstructuralcfrp
AT svslovikov influenceofinternaltechnologicaldefectsonthemechanicalpropertiesofstructuralcfrp
AT emlunegova influenceofinternaltechnologicaldefectsonthemechanicalpropertiesofstructuralcfrp