The In Situ Observation of Phase Transformations During Intercritical Annealing of a Medium Manganese Advanced High Strength Steel by High Energy X-Ray Diffraction

Microstructural changes during thermal processing of a medium manganese steel containing (in wt%) 0.19C and 4.39 Mn were evaluated in situ with a high energy X-ray diffraction system (HEXRD). Samples with an initial fully martensitic microstructure were heated to intercritical annealing (IA) tempera...

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Main Authors: Xiaohua Hu, Josh J. Mueller, Xin Sun, Emmanuel De Moor, John G. Speer, David K. Matlock, Yang Ren
Format: Article
Language:English
Published: Frontiers Media S.A. 2021-03-01
Series:Frontiers in Materials
Subjects:
Online Access:https://www.frontiersin.org/articles/10.3389/fmats.2021.621784/full
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spelling doaj-95dcf4d5882948229fec1224f1da327a2021-03-25T08:38:06ZengFrontiers Media S.A.Frontiers in Materials2296-80162021-03-01810.3389/fmats.2021.621784621784The In Situ Observation of Phase Transformations During Intercritical Annealing of a Medium Manganese Advanced High Strength Steel by High Energy X-Ray DiffractionXiaohua Hu0Josh J. Mueller1Xin Sun2Emmanuel De Moor3John G. Speer4David K. Matlock5Yang Ren6Oak Ridge National Lab, Oak Ridge, TN, United StatesAdvanced Steel Processing and Products Research Center, Colorado School of Mines, Golden, CO, United StatesOak Ridge National Lab, Oak Ridge, TN, United StatesAdvanced Steel Processing and Products Research Center, Colorado School of Mines, Golden, CO, United StatesAdvanced Steel Processing and Products Research Center, Colorado School of Mines, Golden, CO, United StatesAdvanced Steel Processing and Products Research Center, Colorado School of Mines, Golden, CO, United StatesX-ray Science Division, Argonne National Laboratory, Argonne, IL, United StatesMicrostructural changes during thermal processing of a medium manganese steel containing (in wt%) 0.19C and 4.39 Mn were evaluated in situ with a high energy X-ray diffraction system (HEXRD). Samples with an initial fully martensitic microstructure were heated to intercritical annealing (IA) temperatures of 600 or 650°C, held for 30 min, and cooled to room temperature. Diffraction data were analyzed to determine the variations in austenite and ferrite phase fractions and phase lattice constants throughout the ICA cycles. On heating, the 2 vol. pct of austenite present in the starting microstructure decomposed, and cementite precipitation then occurred. During isothermal holding, the austenite fraction increased, up to 20% for the sample annealed at 650°C. The measured austenite fractions were less than those calculated by Thermo-Calc for equilibrium conditions, indicating that the 30-min hold time was insufficient to achieve near-equilibrium conditions. Observed changes in lattice parameters during isothermal holding were interpreted to reflect composition changes due to redistribution of the C and Mn between austenite and ferrite. The results are discussed in relation to the potential for controlling austenite stability during ambient temperature deformation.https://www.frontiersin.org/articles/10.3389/fmats.2021.621784/fullin situ HEXRDphase transformationlattice constantaustenite stabilitymedium Mn steels
collection DOAJ
language English
format Article
sources DOAJ
author Xiaohua Hu
Josh J. Mueller
Xin Sun
Emmanuel De Moor
John G. Speer
David K. Matlock
Yang Ren
spellingShingle Xiaohua Hu
Josh J. Mueller
Xin Sun
Emmanuel De Moor
John G. Speer
David K. Matlock
Yang Ren
The In Situ Observation of Phase Transformations During Intercritical Annealing of a Medium Manganese Advanced High Strength Steel by High Energy X-Ray Diffraction
Frontiers in Materials
in situ HEXRD
phase transformation
lattice constant
austenite stability
medium Mn steels
author_facet Xiaohua Hu
Josh J. Mueller
Xin Sun
Emmanuel De Moor
John G. Speer
David K. Matlock
Yang Ren
author_sort Xiaohua Hu
title The In Situ Observation of Phase Transformations During Intercritical Annealing of a Medium Manganese Advanced High Strength Steel by High Energy X-Ray Diffraction
title_short The In Situ Observation of Phase Transformations During Intercritical Annealing of a Medium Manganese Advanced High Strength Steel by High Energy X-Ray Diffraction
title_full The In Situ Observation of Phase Transformations During Intercritical Annealing of a Medium Manganese Advanced High Strength Steel by High Energy X-Ray Diffraction
title_fullStr The In Situ Observation of Phase Transformations During Intercritical Annealing of a Medium Manganese Advanced High Strength Steel by High Energy X-Ray Diffraction
title_full_unstemmed The In Situ Observation of Phase Transformations During Intercritical Annealing of a Medium Manganese Advanced High Strength Steel by High Energy X-Ray Diffraction
title_sort in situ observation of phase transformations during intercritical annealing of a medium manganese advanced high strength steel by high energy x-ray diffraction
publisher Frontiers Media S.A.
series Frontiers in Materials
issn 2296-8016
publishDate 2021-03-01
description Microstructural changes during thermal processing of a medium manganese steel containing (in wt%) 0.19C and 4.39 Mn were evaluated in situ with a high energy X-ray diffraction system (HEXRD). Samples with an initial fully martensitic microstructure were heated to intercritical annealing (IA) temperatures of 600 or 650°C, held for 30 min, and cooled to room temperature. Diffraction data were analyzed to determine the variations in austenite and ferrite phase fractions and phase lattice constants throughout the ICA cycles. On heating, the 2 vol. pct of austenite present in the starting microstructure decomposed, and cementite precipitation then occurred. During isothermal holding, the austenite fraction increased, up to 20% for the sample annealed at 650°C. The measured austenite fractions were less than those calculated by Thermo-Calc for equilibrium conditions, indicating that the 30-min hold time was insufficient to achieve near-equilibrium conditions. Observed changes in lattice parameters during isothermal holding were interpreted to reflect composition changes due to redistribution of the C and Mn between austenite and ferrite. The results are discussed in relation to the potential for controlling austenite stability during ambient temperature deformation.
topic in situ HEXRD
phase transformation
lattice constant
austenite stability
medium Mn steels
url https://www.frontiersin.org/articles/10.3389/fmats.2021.621784/full
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