Monitoring of Thermal Aging of Aluminum Alloy via Nonlinear Propagation of Acoustic Pulses Generated and Detected by Lasers

Nonlinear acoustic techniques are established tools for the characterization of micro-inhomogeneous materials with higher sensitivity, compared to linear ultrasonic techniques. In particular, the evaluation of material elastic quadratic nonlinearity via the detection of the second harmonic generatio...

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Main Authors: Mengmeng Li, Alexey M. Lomonosov, Zhonghua Shen, Hogeon Seo, Kyung-Young Jhang, Vitalyi E. Gusev, Chenyin Ni
Format: Article
Language:English
Published: MDPI AG 2019-03-01
Series:Applied Sciences
Subjects:
Online Access:https://www.mdpi.com/2076-3417/9/6/1191
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spelling doaj-91303554f2c24e87b430c4b2a6780fd02020-11-24T21:21:15ZengMDPI AGApplied Sciences2076-34172019-03-0196119110.3390/app9061191app9061191Monitoring of Thermal Aging of Aluminum Alloy via Nonlinear Propagation of Acoustic Pulses Generated and Detected by LasersMengmeng Li0Alexey M. Lomonosov1Zhonghua Shen2Hogeon Seo3Kyung-Young Jhang4Vitalyi E. Gusev5Chenyin Ni6School of Science, Nanjing University of Science and Technology, Nanjing 210094, ChinaGeneral Physics Institute, Russian Academy of Science, 119911 Moscow, RussiaSchool of Science, Nanjing University of Science and Technology, Nanjing 210094, ChinaInstitute of Integrated Technology, Gwangju Institute of Science and Technology, Gwangju 61005, KoreaSchool of Mechanical Engineering, Hanyang University, Seoul 04763, KoreaLaboratoire d’Acoustique de l’Université du Mans (LAUM), UMR-CNRS 6613, Le Mans Université, Avenue Olivier Messiaen, 72085 Le Mans, FranceSchool of Electronic and Optical Engineering, Nanjing University of Science and Technology, Nanjing 210094, ChinaNonlinear acoustic techniques are established tools for the characterization of micro-inhomogeneous materials with higher sensitivity, compared to linear ultrasonic techniques. In particular, the evaluation of material elastic quadratic nonlinearity via the detection of the second harmonic generation by acoustic waves is known to provide an assessment of the state variation of heat treated micro-structured materials. We report on the first application for non-destructive diagnostics of material thermal aging of finite-amplitude longitudinal acoustic pulses generated and detected by lasers. Finite-amplitude longitudinal pulses were launched in aluminum alloy samples by deposited liquid-suspended carbon particles layer irradiated by a nanosecond laser source. An out-of-plane displacement at the epicenter of the opposite sample surface was measured by an interferometer. This laser ultrasonic technique provided an opportunity to study the propagation in aluminum alloys of finite-amplitude acoustic pulses with a strain up to 5 &#215; 10<sup>&#8722;3</sup>. The experiments revealed a signature of the hysteretic quadratic nonlinearity of micro-structured material manifested in an increase of the duration of detected acoustic pulses with an increase of their amplitude. The parameter of the hysteretic quadratic nonlinearity of the aluminum alloy (Al6061) was found to be of the order of 100 and to exhibit more than 50% variations in the process of the alloy thermal aging. By comparing the measured parameter of the hysteretic quadratic nonlinearity in aluminum alloys that were subjected to heat-treatment at 220 &#176;C for different times (0 min, 20 min, 40 min, 1 h, 2 h, 10 h, 100 h, and 1000 h), with measurements of yield strength in same samples, it was established that the extrema in the dependence of the hysteretic nonlinearity and of the yield strength of this alloy on heat treatment time are correlated. This experimental observation provides the background for future research with the application goal of suggested nonlinear laser ultrasonic techniques for non-destructive evaluation of alloys&#8217; strength and rigidity in the process of their heat treatment.https://www.mdpi.com/2076-3417/9/6/1191laser ultrasonicsnonlinear acousticshysteretic acoustic nonlinearitythermal aging
collection DOAJ
language English
format Article
sources DOAJ
author Mengmeng Li
Alexey M. Lomonosov
Zhonghua Shen
Hogeon Seo
Kyung-Young Jhang
Vitalyi E. Gusev
Chenyin Ni
spellingShingle Mengmeng Li
Alexey M. Lomonosov
Zhonghua Shen
Hogeon Seo
Kyung-Young Jhang
Vitalyi E. Gusev
Chenyin Ni
Monitoring of Thermal Aging of Aluminum Alloy via Nonlinear Propagation of Acoustic Pulses Generated and Detected by Lasers
Applied Sciences
laser ultrasonics
nonlinear acoustics
hysteretic acoustic nonlinearity
thermal aging
author_facet Mengmeng Li
Alexey M. Lomonosov
Zhonghua Shen
Hogeon Seo
Kyung-Young Jhang
Vitalyi E. Gusev
Chenyin Ni
author_sort Mengmeng Li
title Monitoring of Thermal Aging of Aluminum Alloy via Nonlinear Propagation of Acoustic Pulses Generated and Detected by Lasers
title_short Monitoring of Thermal Aging of Aluminum Alloy via Nonlinear Propagation of Acoustic Pulses Generated and Detected by Lasers
title_full Monitoring of Thermal Aging of Aluminum Alloy via Nonlinear Propagation of Acoustic Pulses Generated and Detected by Lasers
title_fullStr Monitoring of Thermal Aging of Aluminum Alloy via Nonlinear Propagation of Acoustic Pulses Generated and Detected by Lasers
title_full_unstemmed Monitoring of Thermal Aging of Aluminum Alloy via Nonlinear Propagation of Acoustic Pulses Generated and Detected by Lasers
title_sort monitoring of thermal aging of aluminum alloy via nonlinear propagation of acoustic pulses generated and detected by lasers
publisher MDPI AG
series Applied Sciences
issn 2076-3417
publishDate 2019-03-01
description Nonlinear acoustic techniques are established tools for the characterization of micro-inhomogeneous materials with higher sensitivity, compared to linear ultrasonic techniques. In particular, the evaluation of material elastic quadratic nonlinearity via the detection of the second harmonic generation by acoustic waves is known to provide an assessment of the state variation of heat treated micro-structured materials. We report on the first application for non-destructive diagnostics of material thermal aging of finite-amplitude longitudinal acoustic pulses generated and detected by lasers. Finite-amplitude longitudinal pulses were launched in aluminum alloy samples by deposited liquid-suspended carbon particles layer irradiated by a nanosecond laser source. An out-of-plane displacement at the epicenter of the opposite sample surface was measured by an interferometer. This laser ultrasonic technique provided an opportunity to study the propagation in aluminum alloys of finite-amplitude acoustic pulses with a strain up to 5 &#215; 10<sup>&#8722;3</sup>. The experiments revealed a signature of the hysteretic quadratic nonlinearity of micro-structured material manifested in an increase of the duration of detected acoustic pulses with an increase of their amplitude. The parameter of the hysteretic quadratic nonlinearity of the aluminum alloy (Al6061) was found to be of the order of 100 and to exhibit more than 50% variations in the process of the alloy thermal aging. By comparing the measured parameter of the hysteretic quadratic nonlinearity in aluminum alloys that were subjected to heat-treatment at 220 &#176;C for different times (0 min, 20 min, 40 min, 1 h, 2 h, 10 h, 100 h, and 1000 h), with measurements of yield strength in same samples, it was established that the extrema in the dependence of the hysteretic nonlinearity and of the yield strength of this alloy on heat treatment time are correlated. This experimental observation provides the background for future research with the application goal of suggested nonlinear laser ultrasonic techniques for non-destructive evaluation of alloys&#8217; strength and rigidity in the process of their heat treatment.
topic laser ultrasonics
nonlinear acoustics
hysteretic acoustic nonlinearity
thermal aging
url https://www.mdpi.com/2076-3417/9/6/1191
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