Detection of Elastic Deformation in Metal Materials in Infrared Spectral Range

The aim of this work is to verify the presence of deformation in the metal specimen from the material AISI 316L by means of lock-in thermography. The specimen was cyclically loaded by the three-point bending in the fatigue testing machine. A response of the specimen to such excitation can be detecte...

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Main Authors: Milan Sapieta, Vladimír Dekýš, Ondrej Štalmach, Alžbeta Sapietová, Martin Svoboda
Format: Article
Language:English
Published: MDPI AG 2021-09-01
Series:Materials
Subjects:
Online Access:https://www.mdpi.com/1996-1944/14/18/5359
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spelling doaj-d3217a5b39df4cbdbc37df969a5627a62021-09-26T00:37:10ZengMDPI AGMaterials1996-19442021-09-01145359535910.3390/ma14185359Detection of Elastic Deformation in Metal Materials in Infrared Spectral RangeMilan Sapieta0Vladimír Dekýš1Ondrej Štalmach2Alžbeta Sapietová3Martin Svoboda4Faculty of Mechanical Engineering, University of Zilina, Unierzitna 1, 010 26 Zilina, SlovakiaFaculty of Mechanical Engineering, University of Zilina, Unierzitna 1, 010 26 Zilina, SlovakiaFaculty of Mechanical Engineering, University of Zilina, Unierzitna 1, 010 26 Zilina, SlovakiaFaculty of Mechanical Engineering, University of Zilina, Unierzitna 1, 010 26 Zilina, SlovakiaFaculty of Mechanical Engineering, Jan Evangelista Purkyně University, 400 96 Ústí nad Labem, Czech RepublicThe aim of this work is to verify the presence of deformation in the metal specimen from the material AISI 316L by means of lock-in thermography. The specimen was cyclically loaded by the three-point bending in the fatigue testing machine. A response of the specimen to such excitation can be detected in the infrared spectrum and to determine temperature changes during a loading cycle. By means of the lock-in method, an increased signal to noise ratio (radiation energy detected by an infrared camera) was achieved. Besides, the temperature changes were determined on the basis of amplitudes of radiant energy changes detected by the camera. The temperature change (all radiant energy) corresponds with the first invariant of the tensor of deformation and, after a calculation and regarding the material parameters, also the invariant of the stress tensor. The proportionality between the signal from the camera and the first deformation invariant is achieved if the specimen load is an adiabatic event. This process is achieved by choosing a sufficiently high load frequency. In case of a presence origin of plastic deformations, there takes place only part of radiant energy. When we accept the hypothesis of a presence of just elastic deformations and plastic deformation is also present in the monitored process, then the evaluated thermograms based on the assumption of the presence of elastic deformation present anomalies in a distribution of the determined tensor invariant of deformations. These anomalies are caused by a presence of plastic deformations. Based on the anomalies, plastic deformation can be detected and subsequently analyzed. For the tested specimen and the applied load, the calculation of stress tensor was performed. It confirmed a congruence of results obtained by the analysis of the physical process in the infrared spectrum of the mid-wave infrared camera.https://www.mdpi.com/1996-1944/14/18/5359infraredthermoelasticlock-inmechanical loadexperimental measurement
collection DOAJ
language English
format Article
sources DOAJ
author Milan Sapieta
Vladimír Dekýš
Ondrej Štalmach
Alžbeta Sapietová
Martin Svoboda
spellingShingle Milan Sapieta
Vladimír Dekýš
Ondrej Štalmach
Alžbeta Sapietová
Martin Svoboda
Detection of Elastic Deformation in Metal Materials in Infrared Spectral Range
Materials
infrared
thermoelastic
lock-in
mechanical load
experimental measurement
author_facet Milan Sapieta
Vladimír Dekýš
Ondrej Štalmach
Alžbeta Sapietová
Martin Svoboda
author_sort Milan Sapieta
title Detection of Elastic Deformation in Metal Materials in Infrared Spectral Range
title_short Detection of Elastic Deformation in Metal Materials in Infrared Spectral Range
title_full Detection of Elastic Deformation in Metal Materials in Infrared Spectral Range
title_fullStr Detection of Elastic Deformation in Metal Materials in Infrared Spectral Range
title_full_unstemmed Detection of Elastic Deformation in Metal Materials in Infrared Spectral Range
title_sort detection of elastic deformation in metal materials in infrared spectral range
publisher MDPI AG
series Materials
issn 1996-1944
publishDate 2021-09-01
description The aim of this work is to verify the presence of deformation in the metal specimen from the material AISI 316L by means of lock-in thermography. The specimen was cyclically loaded by the three-point bending in the fatigue testing machine. A response of the specimen to such excitation can be detected in the infrared spectrum and to determine temperature changes during a loading cycle. By means of the lock-in method, an increased signal to noise ratio (radiation energy detected by an infrared camera) was achieved. Besides, the temperature changes were determined on the basis of amplitudes of radiant energy changes detected by the camera. The temperature change (all radiant energy) corresponds with the first invariant of the tensor of deformation and, after a calculation and regarding the material parameters, also the invariant of the stress tensor. The proportionality between the signal from the camera and the first deformation invariant is achieved if the specimen load is an adiabatic event. This process is achieved by choosing a sufficiently high load frequency. In case of a presence origin of plastic deformations, there takes place only part of radiant energy. When we accept the hypothesis of a presence of just elastic deformations and plastic deformation is also present in the monitored process, then the evaluated thermograms based on the assumption of the presence of elastic deformation present anomalies in a distribution of the determined tensor invariant of deformations. These anomalies are caused by a presence of plastic deformations. Based on the anomalies, plastic deformation can be detected and subsequently analyzed. For the tested specimen and the applied load, the calculation of stress tensor was performed. It confirmed a congruence of results obtained by the analysis of the physical process in the infrared spectrum of the mid-wave infrared camera.
topic infrared
thermoelastic
lock-in
mechanical load
experimental measurement
url https://www.mdpi.com/1996-1944/14/18/5359
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