Oxidation Induced Stresses in High-Temperature Oxidation of Steel: A Multiphase Field Study

Oxide growth and the induced stresses in the high-temperature oxidation of steel were studied by a multiphase field model. The model incorporates both chemical and elastic energy to capture the coupled oxide kinetics and generated stresses. Oxidation of a flat surface and a sharp corner are consider...

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Main Authors: Alireza Toghraee, Mohsen Asle Zaeem
Format: Article
Language:English
Published: MDPI AG 2020-06-01
Series:Metals
Subjects:
Online Access:https://www.mdpi.com/2075-4701/10/6/801
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spelling doaj-f21994f77943481ea771590c8d6aa0f52020-11-25T03:47:05ZengMDPI AGMetals2075-47012020-06-011080180110.3390/met10060801Oxidation Induced Stresses in High-Temperature Oxidation of Steel: A Multiphase Field StudyAlireza Toghraee0Mohsen Asle Zaeem1Department of Mechanical Engineering, Colorado School of Mines, 1500 Illinois St., Golden, CO 80401, USADepartment of Mechanical Engineering, Colorado School of Mines, 1500 Illinois St., Golden, CO 80401, USAOxide growth and the induced stresses in the high-temperature oxidation of steel were studied by a multiphase field model. The model incorporates both chemical and elastic energy to capture the coupled oxide kinetics and generated stresses. Oxidation of a flat surface and a sharp corner are considered at two high temperatures of 850 °C and 1180 °C to investigate the effects of geometry and temperature elevation on the shape evolution of oxides and the induced stresses. Results show that the model is capable of capturing the oxide thickness and its outward growth, comparable to the experiments. In addition, it was shown that there is an interaction between the evolution of oxide and the generated stresses, and the oxide layer evolves to reduce stress concentrations by rounding the sharp corners in the geometry. Increasing the temperature may increase or decrease the stress levels depending on the contribution of eigen strain in the generated elastic strain energy during oxidation.https://www.mdpi.com/2075-4701/10/6/801oxidationsteelphase-field modeloxidation induced stress
collection DOAJ
language English
format Article
sources DOAJ
author Alireza Toghraee
Mohsen Asle Zaeem
spellingShingle Alireza Toghraee
Mohsen Asle Zaeem
Oxidation Induced Stresses in High-Temperature Oxidation of Steel: A Multiphase Field Study
Metals
oxidation
steel
phase-field model
oxidation induced stress
author_facet Alireza Toghraee
Mohsen Asle Zaeem
author_sort Alireza Toghraee
title Oxidation Induced Stresses in High-Temperature Oxidation of Steel: A Multiphase Field Study
title_short Oxidation Induced Stresses in High-Temperature Oxidation of Steel: A Multiphase Field Study
title_full Oxidation Induced Stresses in High-Temperature Oxidation of Steel: A Multiphase Field Study
title_fullStr Oxidation Induced Stresses in High-Temperature Oxidation of Steel: A Multiphase Field Study
title_full_unstemmed Oxidation Induced Stresses in High-Temperature Oxidation of Steel: A Multiphase Field Study
title_sort oxidation induced stresses in high-temperature oxidation of steel: a multiphase field study
publisher MDPI AG
series Metals
issn 2075-4701
publishDate 2020-06-01
description Oxide growth and the induced stresses in the high-temperature oxidation of steel were studied by a multiphase field model. The model incorporates both chemical and elastic energy to capture the coupled oxide kinetics and generated stresses. Oxidation of a flat surface and a sharp corner are considered at two high temperatures of 850 °C and 1180 °C to investigate the effects of geometry and temperature elevation on the shape evolution of oxides and the induced stresses. Results show that the model is capable of capturing the oxide thickness and its outward growth, comparable to the experiments. In addition, it was shown that there is an interaction between the evolution of oxide and the generated stresses, and the oxide layer evolves to reduce stress concentrations by rounding the sharp corners in the geometry. Increasing the temperature may increase or decrease the stress levels depending on the contribution of eigen strain in the generated elastic strain energy during oxidation.
topic oxidation
steel
phase-field model
oxidation induced stress
url https://www.mdpi.com/2075-4701/10/6/801
work_keys_str_mv AT alirezatoghraee oxidationinducedstressesinhightemperatureoxidationofsteelamultiphasefieldstudy
AT mohsenaslezaeem oxidationinducedstressesinhightemperatureoxidationofsteelamultiphasefieldstudy
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