Design of alumina-forming austenitic stainless steel using genetic algorithms

Alumina-forming austenitic stainless steels (AFA-SSs) are candidates for high temperature applications to replace conventional stainless steels that form unstable chromium-oxide. In this work, a new AFA-SS composition was designed, through thermodynamic considerations, oxidation model calculations,...

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Main Authors: Taymaz Jozaghi, Chung Wang, Raymundo Arroyave, Ibrahim Karaman
Format: Article
Language:English
Published: Elsevier 2020-01-01
Series:Materials & Design
Online Access:http://www.sciencedirect.com/science/article/pii/S0264127519306367
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author Taymaz Jozaghi
Chung Wang
Raymundo Arroyave
Ibrahim Karaman
author_facet Taymaz Jozaghi
Chung Wang
Raymundo Arroyave
Ibrahim Karaman
author_sort Taymaz Jozaghi
collection DOAJ
description Alumina-forming austenitic stainless steels (AFA-SSs) are candidates for high temperature applications to replace conventional stainless steels that form unstable chromium-oxide. In this work, a new AFA-SS composition was designed, through thermodynamic considerations, oxidation model calculations, and Genetic Algorithm-based optimization, which is expected to form alumina scale with only few number of alloying additions. The model incorporates thermodynamic stability of alumina with the kinetics of diffusion of aluminum and oxygen, and then considers the role of chromium as the third element, to predict alumina scale formability. In the present study, this model was utilized to design a new AFA-SS with minimum number of alloying additions. In addition, the oxidation behavior of the designed alloy was investigated at 800 °C to demonstrate its alumina forming capability and compared with a well-known alumina-forming steel. The cross-sections of the scales were studied using scanning electron microscopy and energy dispersive spectroscopy. The results confirmed the formation of the alumina layer in the designed alloy and validated the utility of the model and Genetic Algorithm-based optimization. Keywords: Alumina-forming austenitic stainless steels, Oxidation, Alloy design, Third element effect, Genetic algorithm based optimization
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spelling doaj.art-72f3e9e8b8cf4f1899f957be49a4560d2022-12-21T18:26:23ZengElsevierMaterials & Design0264-12752020-01-01186Design of alumina-forming austenitic stainless steel using genetic algorithmsTaymaz Jozaghi0Chung Wang1Raymundo Arroyave2Ibrahim Karaman3Department of Mechanical Engineering, Texas A&M University, College Station, TX 77843, United States of AmericaDepartment of Materials Science and Engineering, Texas A&M University, College Station, TX 77843, United States of AmericaDepartment of Mechanical Engineering, Texas A&M University, College Station, TX 77843, United States of America; Department of Materials Science and Engineering, Texas A&M University, College Station, TX 77843, United States of AmericaDepartment of Mechanical Engineering, Texas A&M University, College Station, TX 77843, United States of America; Department of Materials Science and Engineering, Texas A&M University, College Station, TX 77843, United States of America; Corresponding author.Alumina-forming austenitic stainless steels (AFA-SSs) are candidates for high temperature applications to replace conventional stainless steels that form unstable chromium-oxide. In this work, a new AFA-SS composition was designed, through thermodynamic considerations, oxidation model calculations, and Genetic Algorithm-based optimization, which is expected to form alumina scale with only few number of alloying additions. The model incorporates thermodynamic stability of alumina with the kinetics of diffusion of aluminum and oxygen, and then considers the role of chromium as the third element, to predict alumina scale formability. In the present study, this model was utilized to design a new AFA-SS with minimum number of alloying additions. In addition, the oxidation behavior of the designed alloy was investigated at 800 °C to demonstrate its alumina forming capability and compared with a well-known alumina-forming steel. The cross-sections of the scales were studied using scanning electron microscopy and energy dispersive spectroscopy. The results confirmed the formation of the alumina layer in the designed alloy and validated the utility of the model and Genetic Algorithm-based optimization. Keywords: Alumina-forming austenitic stainless steels, Oxidation, Alloy design, Third element effect, Genetic algorithm based optimizationhttp://www.sciencedirect.com/science/article/pii/S0264127519306367
spellingShingle Taymaz Jozaghi
Chung Wang
Raymundo Arroyave
Ibrahim Karaman
Design of alumina-forming austenitic stainless steel using genetic algorithms
Materials & Design
title Design of alumina-forming austenitic stainless steel using genetic algorithms
title_full Design of alumina-forming austenitic stainless steel using genetic algorithms
title_fullStr Design of alumina-forming austenitic stainless steel using genetic algorithms
title_full_unstemmed Design of alumina-forming austenitic stainless steel using genetic algorithms
title_short Design of alumina-forming austenitic stainless steel using genetic algorithms
title_sort design of alumina forming austenitic stainless steel using genetic algorithms
url http://www.sciencedirect.com/science/article/pii/S0264127519306367
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AT chungwang designofaluminaformingausteniticstainlesssteelusinggeneticalgorithms
AT raymundoarroyave designofaluminaformingausteniticstainlesssteelusinggeneticalgorithms
AT ibrahimkaraman designofaluminaformingausteniticstainlesssteelusinggeneticalgorithms