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In Situ X-ray Diffraction Investigation of Hydrogen Effects on Deformation-Induced Phase Transformation in Forged and Additively Manufactured 304L Stainless Steels
by
Pokharel, Reeju
, Clausen, Bjørn
, Lawrence, Samantha K.
, Park, Jun-Sang
, Kenesei, Peter
, San Marchi, Chris
, Lee, Sangwon
, O’Brien, Mary K.
, Brown, Donald W.
in
Additive manufacturing
/ Alloys
/ Applications of Steels for a Sustainable Future
/ Austenitic stainless steels
/ Chemical composition
/ Chemistry/Food Science
/ Deformation
/ Deformation effects
/ Design
/ Ductility
/ Earth Sciences
/ Energy
/ Engineering
/ Environment
/ Hydrogen
/ Load
/ Martensite
/ Martensitic transformations
/ MATERIALS SCIENCE
/ Microstructure
/ Phase transitions
/ Physics
/ Production
/ Software
/ Stacking fault energy
/ Stainless steel
/ Synchrotron radiation
/ Synchrotrons
/ X-ray diffraction
/ X-rays
2023
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In Situ X-ray Diffraction Investigation of Hydrogen Effects on Deformation-Induced Phase Transformation in Forged and Additively Manufactured 304L Stainless Steels
by
Pokharel, Reeju
, Clausen, Bjørn
, Lawrence, Samantha K.
, Park, Jun-Sang
, Kenesei, Peter
, San Marchi, Chris
, Lee, Sangwon
, O’Brien, Mary K.
, Brown, Donald W.
in
Additive manufacturing
/ Alloys
/ Applications of Steels for a Sustainable Future
/ Austenitic stainless steels
/ Chemical composition
/ Chemistry/Food Science
/ Deformation
/ Deformation effects
/ Design
/ Ductility
/ Earth Sciences
/ Energy
/ Engineering
/ Environment
/ Hydrogen
/ Load
/ Martensite
/ Martensitic transformations
/ MATERIALS SCIENCE
/ Microstructure
/ Phase transitions
/ Physics
/ Production
/ Software
/ Stacking fault energy
/ Stainless steel
/ Synchrotron radiation
/ Synchrotrons
/ X-ray diffraction
/ X-rays
2023
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In Situ X-ray Diffraction Investigation of Hydrogen Effects on Deformation-Induced Phase Transformation in Forged and Additively Manufactured 304L Stainless Steels
by
Pokharel, Reeju
, Clausen, Bjørn
, Lawrence, Samantha K.
, Park, Jun-Sang
, Kenesei, Peter
, San Marchi, Chris
, Lee, Sangwon
, O’Brien, Mary K.
, Brown, Donald W.
in
Additive manufacturing
/ Alloys
/ Applications of Steels for a Sustainable Future
/ Austenitic stainless steels
/ Chemical composition
/ Chemistry/Food Science
/ Deformation
/ Deformation effects
/ Design
/ Ductility
/ Earth Sciences
/ Energy
/ Engineering
/ Environment
/ Hydrogen
/ Load
/ Martensite
/ Martensitic transformations
/ MATERIALS SCIENCE
/ Microstructure
/ Phase transitions
/ Physics
/ Production
/ Software
/ Stacking fault energy
/ Stainless steel
/ Synchrotron radiation
/ Synchrotrons
/ X-ray diffraction
/ X-rays
2023
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In Situ X-ray Diffraction Investigation of Hydrogen Effects on Deformation-Induced Phase Transformation in Forged and Additively Manufactured 304L Stainless Steels
Journal Article
In Situ X-ray Diffraction Investigation of Hydrogen Effects on Deformation-Induced Phase Transformation in Forged and Additively Manufactured 304L Stainless Steels
2023
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Overview
This study utilized high energy synchrotron x-ray diffraction to probe microstructural evolution during uniaxial deformation of conventionally manufactured and additively manufactured (AM) 304L stainless steel with and without internal hydrogen. The objective of this effort is to highlight the effect of hydrogen on deformation-induced martensite phase transformations in austenitic stainless steels. Solute hydrogen depresses the required applied strain to initiate austenite transformation to ε-martensite and α’-martensite in both forged and AM stainless steel. Similarly, the total fraction of transformation product is larger when the microstructure is saturated with hydrogen. Deformation induced phase transformations also lead to a variation in strain partitioning behavior, which is linked to the chemical composition and stacking fault energy of the starting and hydrogen-charged materials.
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