Microstructure and stress corrosion behaviour of CMT welded AA6061 T-6 aluminium alloy joints

Superior properties of AA6061 grade aluminium alloys are finding greater use in automotive, marine and aircraft applications due to its strength, weldability and high corrosion resistance. But it is highly susceptible to stress corrosion cracking owing to alter the phase composition and microstructu...

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Main Author: S.T. Selvamani
Format: Article
Language:English
Published: Elsevier 2021-11-01
Series:Journal of Materials Research and Technology
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2238785421008309
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spelling doaj-a8e928d4bdb046099e7537f8ee5754192021-08-24T04:07:32ZengElsevierJournal of Materials Research and Technology2238-78542021-11-0115315326Microstructure and stress corrosion behaviour of CMT welded AA6061 T-6 aluminium alloy jointsS.T. Selvamani0Centre for Additive Manufacturing, Department of Mechanical Engineering, Chennai Institute of Technology, Chennai, Tamil Nadu, 600069, IndiaSuperior properties of AA6061 grade aluminium alloys are finding greater use in automotive, marine and aircraft applications due to its strength, weldability and high corrosion resistance. But it is highly susceptible to stress corrosion cracking owing to alter the phase composition and microstructure during welding process. In the present work, an experimental study of stress corrosion cracking is conducted on Cold Metal Transfer welded aluminium alloy joints using various heat input under constant stress intensity to understand the susceptibility of various zones to Stress Corrosion Cracking and the performance has been analysed using Tafel electrochemical technique. The result shows that the mechanism of cracking is established to be anodic mode with transgranular nature of crack propagation. In addition, a linear relationship is also inferred to predict the time to failure by extrapolating the rate of steady state elongation. The integrity of the dissimilar joints are analysed with the help of Optical Microscopy, SEM, EDAX and XRD sophisticated analytical techniques.http://www.sciencedirect.com/science/article/pii/S2238785421008309CMT weldingAluminium alloysStress corrosion crackingStress intensityCorrosion rateElectrochemical studies and aggressive medium
collection DOAJ
language English
format Article
sources DOAJ
author S.T. Selvamani
spellingShingle S.T. Selvamani
Microstructure and stress corrosion behaviour of CMT welded AA6061 T-6 aluminium alloy joints
Journal of Materials Research and Technology
CMT welding
Aluminium alloys
Stress corrosion cracking
Stress intensity
Corrosion rate
Electrochemical studies and aggressive medium
author_facet S.T. Selvamani
author_sort S.T. Selvamani
title Microstructure and stress corrosion behaviour of CMT welded AA6061 T-6 aluminium alloy joints
title_short Microstructure and stress corrosion behaviour of CMT welded AA6061 T-6 aluminium alloy joints
title_full Microstructure and stress corrosion behaviour of CMT welded AA6061 T-6 aluminium alloy joints
title_fullStr Microstructure and stress corrosion behaviour of CMT welded AA6061 T-6 aluminium alloy joints
title_full_unstemmed Microstructure and stress corrosion behaviour of CMT welded AA6061 T-6 aluminium alloy joints
title_sort microstructure and stress corrosion behaviour of cmt welded aa6061 t-6 aluminium alloy joints
publisher Elsevier
series Journal of Materials Research and Technology
issn 2238-7854
publishDate 2021-11-01
description Superior properties of AA6061 grade aluminium alloys are finding greater use in automotive, marine and aircraft applications due to its strength, weldability and high corrosion resistance. But it is highly susceptible to stress corrosion cracking owing to alter the phase composition and microstructure during welding process. In the present work, an experimental study of stress corrosion cracking is conducted on Cold Metal Transfer welded aluminium alloy joints using various heat input under constant stress intensity to understand the susceptibility of various zones to Stress Corrosion Cracking and the performance has been analysed using Tafel electrochemical technique. The result shows that the mechanism of cracking is established to be anodic mode with transgranular nature of crack propagation. In addition, a linear relationship is also inferred to predict the time to failure by extrapolating the rate of steady state elongation. The integrity of the dissimilar joints are analysed with the help of Optical Microscopy, SEM, EDAX and XRD sophisticated analytical techniques.
topic CMT welding
Aluminium alloys
Stress corrosion cracking
Stress intensity
Corrosion rate
Electrochemical studies and aggressive medium
url http://www.sciencedirect.com/science/article/pii/S2238785421008309
work_keys_str_mv AT stselvamani microstructureandstresscorrosionbehaviourofcmtweldedaa6061t6aluminiumalloyjoints
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