Using 3D Digital Image Correlation (3D-DIC) to Measure CTOD in a Semi-Elliptical Surface Crack

The subsurface nature of Crack Tip Opening Displacement (CTOD) makes its direct measurement very difficult, if not impossible. During fracture toughness testing, CTOD is commonly calculated by applying a plastic hinge model using externally applied clip gauges. However, clip gauge CTOD calculations...

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Main Authors: Kaveh Samadian, Stijn Hertelé, Wim De Waele
Format: Article
Language:English
Published: MDPI AG 2018-06-01
Series:Proceedings
Subjects:
Online Access:http://www.mdpi.com/2504-3900/2/8/451
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spelling doaj-efa1a7737e7841bcad30e515b8bea29f2020-11-25T00:50:02ZengMDPI AGProceedings2504-39002018-06-012845110.3390/ICEM18-05311ICEM18-05311Using 3D Digital Image Correlation (3D-DIC) to Measure CTOD in a Semi-Elliptical Surface CrackKaveh Samadian0Stijn Hertelé1Wim De Waele2Department of Electrical Energy, Metals, Mechanical Construction and Systems (EEMMeCS), Soete Laboratory, Ghent University, 9052 Zwijnaarde, BelgiumDepartment of Electrical Energy, Metals, Mechanical Construction and Systems (EEMMeCS), Soete Laboratory, Ghent University, 9052 Zwijnaarde, BelgiumDepartment of Electrical Energy, Metals, Mechanical Construction and Systems (EEMMeCS), Soete Laboratory, Ghent University, 9052 Zwijnaarde, BelgiumThe subsurface nature of Crack Tip Opening Displacement (CTOD) makes its direct measurement very difficult, if not impossible. During fracture toughness testing, CTOD is commonly calculated by applying a plastic hinge model using externally applied clip gauges. However, clip gauge CTOD calculations merely provide information relating to the center of the defect (which is typically the most critical point, but not always). For the case of a finite-length surface defect, CTOD will be variable over the defect front. Exact knowledge of CTOD over the entire front is useful for detailed calculations, such as crack profile evolution due to ductile tearing or calculations involving interacting defects. To experimentally measure the CTOD at locations other than the center of the crack, the authors propose a technique based on full field three-dimensional profile measurement of the notched surface by means of stereoscopic Digital Image Correlation (3D-DIC). The method is based on the plastic hinge model assuming that the crack flanks rotate in a rigid manner around a plastic hinge point in the un-cracked ligament. Having measured full-field out-of-plane displacement at the surface of the specimen around the crack using the 3D-DIC method, CTOD can be inferred over the entire crack front. Results show that, due to the acceptable agreement between the DIC based calculation and CTOD measured from cast replicas, the proposed technique has a sufficient accuracy to measure CTOD on the entire crack front in plastically deforming specimens.http://www.mdpi.com/2504-3900/2/8/451CTODDigital Image Correlationreplicaductile tearingcrack frontsemi-elliptical
collection DOAJ
language English
format Article
sources DOAJ
author Kaveh Samadian
Stijn Hertelé
Wim De Waele
spellingShingle Kaveh Samadian
Stijn Hertelé
Wim De Waele
Using 3D Digital Image Correlation (3D-DIC) to Measure CTOD in a Semi-Elliptical Surface Crack
Proceedings
CTOD
Digital Image Correlation
replica
ductile tearing
crack front
semi-elliptical
author_facet Kaveh Samadian
Stijn Hertelé
Wim De Waele
author_sort Kaveh Samadian
title Using 3D Digital Image Correlation (3D-DIC) to Measure CTOD in a Semi-Elliptical Surface Crack
title_short Using 3D Digital Image Correlation (3D-DIC) to Measure CTOD in a Semi-Elliptical Surface Crack
title_full Using 3D Digital Image Correlation (3D-DIC) to Measure CTOD in a Semi-Elliptical Surface Crack
title_fullStr Using 3D Digital Image Correlation (3D-DIC) to Measure CTOD in a Semi-Elliptical Surface Crack
title_full_unstemmed Using 3D Digital Image Correlation (3D-DIC) to Measure CTOD in a Semi-Elliptical Surface Crack
title_sort using 3d digital image correlation (3d-dic) to measure ctod in a semi-elliptical surface crack
publisher MDPI AG
series Proceedings
issn 2504-3900
publishDate 2018-06-01
description The subsurface nature of Crack Tip Opening Displacement (CTOD) makes its direct measurement very difficult, if not impossible. During fracture toughness testing, CTOD is commonly calculated by applying a plastic hinge model using externally applied clip gauges. However, clip gauge CTOD calculations merely provide information relating to the center of the defect (which is typically the most critical point, but not always). For the case of a finite-length surface defect, CTOD will be variable over the defect front. Exact knowledge of CTOD over the entire front is useful for detailed calculations, such as crack profile evolution due to ductile tearing or calculations involving interacting defects. To experimentally measure the CTOD at locations other than the center of the crack, the authors propose a technique based on full field three-dimensional profile measurement of the notched surface by means of stereoscopic Digital Image Correlation (3D-DIC). The method is based on the plastic hinge model assuming that the crack flanks rotate in a rigid manner around a plastic hinge point in the un-cracked ligament. Having measured full-field out-of-plane displacement at the surface of the specimen around the crack using the 3D-DIC method, CTOD can be inferred over the entire crack front. Results show that, due to the acceptable agreement between the DIC based calculation and CTOD measured from cast replicas, the proposed technique has a sufficient accuracy to measure CTOD on the entire crack front in plastically deforming specimens.
topic CTOD
Digital Image Correlation
replica
ductile tearing
crack front
semi-elliptical
url http://www.mdpi.com/2504-3900/2/8/451
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