Corrosion Fatigue of 17-4pH Stainless Steel in a Simulated Sea Water Solution

Since martensitic precipitation hardened 17-4pH stainless steel has been widely used in corrosive environments, evaluation of its corrosion fatigue behavior is important. In this research, after microstructural studies, mechanical, corrosion, fatigue and corrosion fatigue tests were performed on 17-...

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Main Authors: M. Ghasemian Malakshah, F. Ashrafizadeh, A. Eslami, F. Fadaeifard
Format: Article
Language:fas
Published: Isfahan University of Technology 2019-09-01
Series:Journal of Advanced Materials in Engineering
Subjects:
Online Access:http://jame.iut.ac.ir/article-1-997-en.html
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spelling doaj-3c522c51d4b841518b6d2b8a5fae00702021-03-08T09:59:06ZfasIsfahan University of TechnologyJournal of Advanced Materials in Engineering2251-600X2423-57332019-09-013826981Corrosion Fatigue of 17-4pH Stainless Steel in a Simulated Sea Water SolutionM. Ghasemian Malakshah0F. Ashrafizadeh1A. Eslami2F. Fadaeifard3 Isfahan university of technology Isfahan university of technology Isfahan university of technology Department of Materials Engineering, Isfahan University of Technology, Isfahan, Iran. Since martensitic precipitation hardened 17-4pH stainless steel has been widely used in corrosive environments, evaluation of its corrosion fatigue behavior is important. In this research, after microstructural studies, mechanical, corrosion, fatigue and corrosion fatigue tests were performed on 17-4pH specimens. Fatigue and corrosion fatigue tests were carried out at the  stress ratio of -1 and the  stress frequency of 0.42 Hz (to increase the effect of corrosive solution), and corrosion fatigue tests were conducted in 3.5% NaCl solution, an  environment similar to corrosive sea water. Fatigue limit of 17-4pH stainless steel was 700 MPa in air and 415 MPa in corrosive environment. Comparing the S-N curves of this alloy at the optimal heat treatment cycle in two modes of fatigue and corrosion fatigue revealed the reduction of fatigue limit up to 40 % in the presence of corrosive environment. This reduction was due to the effect of observed corrosion pits on the surface and Damaged passive layer.http://jame.iut.ac.ir/article-1-997-en.htmloptimal heat cyclecorrosion fatigueprecipitation hardenable stainless steels-n curve.
collection DOAJ
language fas
format Article
sources DOAJ
author M. Ghasemian Malakshah
F. Ashrafizadeh
A. Eslami
F. Fadaeifard
spellingShingle M. Ghasemian Malakshah
F. Ashrafizadeh
A. Eslami
F. Fadaeifard
Corrosion Fatigue of 17-4pH Stainless Steel in a Simulated Sea Water Solution
Journal of Advanced Materials in Engineering
optimal heat cycle
corrosion fatigue
precipitation hardenable stainless steel
s-n curve.
author_facet M. Ghasemian Malakshah
F. Ashrafizadeh
A. Eslami
F. Fadaeifard
author_sort M. Ghasemian Malakshah
title Corrosion Fatigue of 17-4pH Stainless Steel in a Simulated Sea Water Solution
title_short Corrosion Fatigue of 17-4pH Stainless Steel in a Simulated Sea Water Solution
title_full Corrosion Fatigue of 17-4pH Stainless Steel in a Simulated Sea Water Solution
title_fullStr Corrosion Fatigue of 17-4pH Stainless Steel in a Simulated Sea Water Solution
title_full_unstemmed Corrosion Fatigue of 17-4pH Stainless Steel in a Simulated Sea Water Solution
title_sort corrosion fatigue of 17-4ph stainless steel in a simulated sea water solution
publisher Isfahan University of Technology
series Journal of Advanced Materials in Engineering
issn 2251-600X
2423-5733
publishDate 2019-09-01
description Since martensitic precipitation hardened 17-4pH stainless steel has been widely used in corrosive environments, evaluation of its corrosion fatigue behavior is important. In this research, after microstructural studies, mechanical, corrosion, fatigue and corrosion fatigue tests were performed on 17-4pH specimens. Fatigue and corrosion fatigue tests were carried out at the  stress ratio of -1 and the  stress frequency of 0.42 Hz (to increase the effect of corrosive solution), and corrosion fatigue tests were conducted in 3.5% NaCl solution, an  environment similar to corrosive sea water. Fatigue limit of 17-4pH stainless steel was 700 MPa in air and 415 MPa in corrosive environment. Comparing the S-N curves of this alloy at the optimal heat treatment cycle in two modes of fatigue and corrosion fatigue revealed the reduction of fatigue limit up to 40 % in the presence of corrosive environment. This reduction was due to the effect of observed corrosion pits on the surface and Damaged passive layer.
topic optimal heat cycle
corrosion fatigue
precipitation hardenable stainless steel
s-n curve.
url http://jame.iut.ac.ir/article-1-997-en.html
work_keys_str_mv AT mghasemianmalakshah corrosionfatigueof174phstainlesssteelinasimulatedseawatersolution
AT fashrafizadeh corrosionfatigueof174phstainlesssteelinasimulatedseawatersolution
AT aeslami corrosionfatigueof174phstainlesssteelinasimulatedseawatersolution
AT ffadaeifard corrosionfatigueof174phstainlesssteelinasimulatedseawatersolution
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