Multiphysics Study of Tensile Testing using Infrared thermography

In this work, the IR thermography was used to study the steel specimens (DIN 50125 Standard) undergoing the tensile tests. The tensile tests were performed using GUNT® Hamburg Universal Material Tester. The tensile specimens were clamped, and the test force was generated using a hand-operated hydrau...

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Main Authors: E Stange, Z Andleeb, H Khawaja, M Moatamedi
Format: Article
Language:English
Published: MULTIPHYSICS 2019-06-01
Series:International Journal of Multiphysics
Online Access:http://journal.multiphysics.org/index.php/IJM/article/view/465
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author E Stange
Z Andleeb
H Khawaja
M Moatamedi
author_facet E Stange
Z Andleeb
H Khawaja
M Moatamedi
author_sort E Stange
collection DOAJ
description In this work, the IR thermography was used to study the steel specimens (DIN 50125 Standard) undergoing the tensile tests. The tensile tests were performed using GUNT® Hamburg Universal Material Tester. The tensile specimens were clamped, and the test force was generated using a hand-operated hydraulic system. A dial gauge measured the elongation of the specimens. Using the WP 300.20 system for data acquisition, the measured values for force and displacement were recorded in a PC. The IR thermographic imaging was performed using the FLIR® T1030sc IR camera and ResearchIR Max software. The steel specimens were coated with high emissivity paint. Thermography revealed that the steel specimens show noticeable thermal signature when undergoing tensile loading. The samples were found to be warmer by 20-25 °C at the time of failure. The tests were repeated under various surrounding temperatures such as 25 °C, -5 °C, -10 °C, -15 °C, and -20 °C. The same study was compared with the finite element numerical simulation in ANSYS® Workbench. The experimental and simulation results were found to be in a qualitative agreement.
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spelling doaj.art-4e1a21460b764d21986e59e92bbba4692023-08-02T05:08:27ZengMULTIPHYSICSInternational Journal of Multiphysics1750-95482048-39612019-06-0113210.21152/1750-9548.13.2.191390Multiphysics Study of Tensile Testing using Infrared thermographyE StangeZ AndleebH KhawajaM MoatamediIn this work, the IR thermography was used to study the steel specimens (DIN 50125 Standard) undergoing the tensile tests. The tensile tests were performed using GUNT® Hamburg Universal Material Tester. The tensile specimens were clamped, and the test force was generated using a hand-operated hydraulic system. A dial gauge measured the elongation of the specimens. Using the WP 300.20 system for data acquisition, the measured values for force and displacement were recorded in a PC. The IR thermographic imaging was performed using the FLIR® T1030sc IR camera and ResearchIR Max software. The steel specimens were coated with high emissivity paint. Thermography revealed that the steel specimens show noticeable thermal signature when undergoing tensile loading. The samples were found to be warmer by 20-25 °C at the time of failure. The tests were repeated under various surrounding temperatures such as 25 °C, -5 °C, -10 °C, -15 °C, and -20 °C. The same study was compared with the finite element numerical simulation in ANSYS® Workbench. The experimental and simulation results were found to be in a qualitative agreement.http://journal.multiphysics.org/index.php/IJM/article/view/465
spellingShingle E Stange
Z Andleeb
H Khawaja
M Moatamedi
Multiphysics Study of Tensile Testing using Infrared thermography
International Journal of Multiphysics
title Multiphysics Study of Tensile Testing using Infrared thermography
title_full Multiphysics Study of Tensile Testing using Infrared thermography
title_fullStr Multiphysics Study of Tensile Testing using Infrared thermography
title_full_unstemmed Multiphysics Study of Tensile Testing using Infrared thermography
title_short Multiphysics Study of Tensile Testing using Infrared thermography
title_sort multiphysics study of tensile testing using infrared thermography
url http://journal.multiphysics.org/index.php/IJM/article/view/465
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AT mmoatamedi multiphysicsstudyoftensiletestingusinginfraredthermography