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The Localized Corrosion and Stress Corrosion Cracking of a 6005A-T6 Extrusion Profile

In the present work, the localized corrosion and stress corrosion cracking (SCC) behaviors of a commercial 6005A-T6 aluminum extrusion profile was studied comprehensively. The velocity of crack growth in self-stressed double-cantilever beam (DCB) specimens under constant displacement was estimated,...

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Autores principales: Ma, Jijun, Sun, Jing, Guan, Quanmei, Yang, Qingwei, Tang, Jian, Zou, Chengxiong, Wang, Jun, Tang, Bin, Kou, Hongchao, Wang, Haisheng, Gao, Jun, Li, Jinshan, Wang, William Yi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8434543/
https://www.ncbi.nlm.nih.gov/pubmed/34501014
http://dx.doi.org/10.3390/ma14174924
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author Ma, Jijun
Sun, Jing
Guan, Quanmei
Yang, Qingwei
Tang, Jian
Zou, Chengxiong
Wang, Jun
Tang, Bin
Kou, Hongchao
Wang, Haisheng
Gao, Jun
Li, Jinshan
Wang, William Yi
author_facet Ma, Jijun
Sun, Jing
Guan, Quanmei
Yang, Qingwei
Tang, Jian
Zou, Chengxiong
Wang, Jun
Tang, Bin
Kou, Hongchao
Wang, Haisheng
Gao, Jun
Li, Jinshan
Wang, William Yi
author_sort Ma, Jijun
collection PubMed
description In the present work, the localized corrosion and stress corrosion cracking (SCC) behaviors of a commercial 6005A-T6 aluminum extrusion profile was studied comprehensively. The velocity of crack growth in self-stressed double-cantilever beam (DCB) specimens under constant displacement was estimated, which also provides insight into the local microstructure evolutions at the crack tips caused by the localized pitting corrosion, intergranular corrosion (IGC), and intergranular SCC. Characterizations of local corrosion along the cracking path for a period of exposure to 3.5% NaCl were revealed via optical microscope (OM), scanning electron microscope (SEM), and electron backscatter diffraction (EBSD). The typical features of the pits dominated by the distribution of precipitates included the peripheral dissolution of the Al matrix, channeling corrosion, intergranular attack, and large pits in the grains. The discontinuous cracking at the crack tips indicated the hydrogen-embrittlement-mediated mechanism. Moreover, the local regions enriched with Mg(2)Si and Mg(5)Si(6) phases and with low-angle grain boundaries presented better SCC resistance than those of the matrix with high-angle grain boundaries, supporting a strategy to develop advanced Al–Mg–Si alloys via interfacial engineering.
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spelling pubmed-84345432021-09-12 The Localized Corrosion and Stress Corrosion Cracking of a 6005A-T6 Extrusion Profile Ma, Jijun Sun, Jing Guan, Quanmei Yang, Qingwei Tang, Jian Zou, Chengxiong Wang, Jun Tang, Bin Kou, Hongchao Wang, Haisheng Gao, Jun Li, Jinshan Wang, William Yi Materials (Basel) Article In the present work, the localized corrosion and stress corrosion cracking (SCC) behaviors of a commercial 6005A-T6 aluminum extrusion profile was studied comprehensively. The velocity of crack growth in self-stressed double-cantilever beam (DCB) specimens under constant displacement was estimated, which also provides insight into the local microstructure evolutions at the crack tips caused by the localized pitting corrosion, intergranular corrosion (IGC), and intergranular SCC. Characterizations of local corrosion along the cracking path for a period of exposure to 3.5% NaCl were revealed via optical microscope (OM), scanning electron microscope (SEM), and electron backscatter diffraction (EBSD). The typical features of the pits dominated by the distribution of precipitates included the peripheral dissolution of the Al matrix, channeling corrosion, intergranular attack, and large pits in the grains. The discontinuous cracking at the crack tips indicated the hydrogen-embrittlement-mediated mechanism. Moreover, the local regions enriched with Mg(2)Si and Mg(5)Si(6) phases and with low-angle grain boundaries presented better SCC resistance than those of the matrix with high-angle grain boundaries, supporting a strategy to develop advanced Al–Mg–Si alloys via interfacial engineering. MDPI 2021-08-30 /pmc/articles/PMC8434543/ /pubmed/34501014 http://dx.doi.org/10.3390/ma14174924 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Ma, Jijun
Sun, Jing
Guan, Quanmei
Yang, Qingwei
Tang, Jian
Zou, Chengxiong
Wang, Jun
Tang, Bin
Kou, Hongchao
Wang, Haisheng
Gao, Jun
Li, Jinshan
Wang, William Yi
The Localized Corrosion and Stress Corrosion Cracking of a 6005A-T6 Extrusion Profile
title The Localized Corrosion and Stress Corrosion Cracking of a 6005A-T6 Extrusion Profile
title_full The Localized Corrosion and Stress Corrosion Cracking of a 6005A-T6 Extrusion Profile
title_fullStr The Localized Corrosion and Stress Corrosion Cracking of a 6005A-T6 Extrusion Profile
title_full_unstemmed The Localized Corrosion and Stress Corrosion Cracking of a 6005A-T6 Extrusion Profile
title_short The Localized Corrosion and Stress Corrosion Cracking of a 6005A-T6 Extrusion Profile
title_sort localized corrosion and stress corrosion cracking of a 6005a-t6 extrusion profile
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8434543/
https://www.ncbi.nlm.nih.gov/pubmed/34501014
http://dx.doi.org/10.3390/ma14174924
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