Effect of α′ Martensite Content Induced by Tensile Plastic Prestrain on Hydrogen Transport and Hydrogen Embrittlement of 304L Austenitic Stainless Steel

Effects of microstructural changes induced by prestraining on hydrogen transport and hydrogen embrittlement (HE) of austenitic stainless steels were studied by hydrogen precharging and tensile testing. Prestrains higher than 20% at 20 °C significantly enhance the HE of 304L steel, as they in...

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Main Authors: Yanfei Wang, Xuanpei Wu, Weijie Wu
Format: Article
Language:English
Published: MDPI AG 2018-08-01
Series:Metals
Subjects:
Online Access:http://www.mdpi.com/2075-4701/8/9/660
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spelling doaj-ac31935283f4461eb67d769b669d84442020-11-24T21:35:07ZengMDPI AGMetals2075-47012018-08-018966010.3390/met8090660met8090660Effect of α′ Martensite Content Induced by Tensile Plastic Prestrain on Hydrogen Transport and Hydrogen Embrittlement of 304L Austenitic Stainless SteelYanfei Wang0Xuanpei Wu1Weijie Wu2School of Chemical Engineering & Technology, China University of Mining and Technology, Xuzhou 221116, ChinaSchool of Chemical Engineering & Technology, China University of Mining and Technology, Xuzhou 221116, ChinaSchool of Mechanical and Power Engineering, Nanjing Tech University, Nanjing 211816, ChinaEffects of microstructural changes induced by prestraining on hydrogen transport and hydrogen embrittlement (HE) of austenitic stainless steels were studied by hydrogen precharging and tensile testing. Prestrains higher than 20% at 20 °C significantly enhance the HE of 304L steel, as they induce severe α′ martensite transformation, accelerating hydrogen transport and hydrogen entry during subsequent hydrogen exposure. In contrast, 304L steel prestrained at 50 and 80 °C and 316L steel prestrained at 20 °C exhibit less HE, due to less α′ after prestraining. The increase of dislocations after prestraining has a negligible influence on apparent hydrogen diffusivity compared with pre-existing α′. The deformation twins in heavily prestrained 304L steel can modify HE mechanism by assisting intergranular (IG) fracture. Regardless of temperature and prestrain level, HE and apparent diffusivity ( D app ) increase monotonously with α′ volume fraction ( f α ′ ). D app can be described as log D app = log ( D α ′ s α ′ / s γ ) + log [ f α ′ / ( 1 − f α ′ ) ] for 10 % < f α ′ < 90 % , with D α ′ is diffusivity in α′, s α ′ and s γ are solubility in α′ and austenite, respectively. The two equations can also be applied to these more typical duplex materials containing both BCC and FCC phases.http://www.mdpi.com/2075-4701/8/9/660hydrogen embrittlementstainless steeldeformationmartensite transformation
collection DOAJ
language English
format Article
sources DOAJ
author Yanfei Wang
Xuanpei Wu
Weijie Wu
spellingShingle Yanfei Wang
Xuanpei Wu
Weijie Wu
Effect of α′ Martensite Content Induced by Tensile Plastic Prestrain on Hydrogen Transport and Hydrogen Embrittlement of 304L Austenitic Stainless Steel
Metals
hydrogen embrittlement
stainless steel
deformation
martensite transformation
author_facet Yanfei Wang
Xuanpei Wu
Weijie Wu
author_sort Yanfei Wang
title Effect of α′ Martensite Content Induced by Tensile Plastic Prestrain on Hydrogen Transport and Hydrogen Embrittlement of 304L Austenitic Stainless Steel
title_short Effect of α′ Martensite Content Induced by Tensile Plastic Prestrain on Hydrogen Transport and Hydrogen Embrittlement of 304L Austenitic Stainless Steel
title_full Effect of α′ Martensite Content Induced by Tensile Plastic Prestrain on Hydrogen Transport and Hydrogen Embrittlement of 304L Austenitic Stainless Steel
title_fullStr Effect of α′ Martensite Content Induced by Tensile Plastic Prestrain on Hydrogen Transport and Hydrogen Embrittlement of 304L Austenitic Stainless Steel
title_full_unstemmed Effect of α′ Martensite Content Induced by Tensile Plastic Prestrain on Hydrogen Transport and Hydrogen Embrittlement of 304L Austenitic Stainless Steel
title_sort effect of α′ martensite content induced by tensile plastic prestrain on hydrogen transport and hydrogen embrittlement of 304l austenitic stainless steel
publisher MDPI AG
series Metals
issn 2075-4701
publishDate 2018-08-01
description Effects of microstructural changes induced by prestraining on hydrogen transport and hydrogen embrittlement (HE) of austenitic stainless steels were studied by hydrogen precharging and tensile testing. Prestrains higher than 20% at 20 °C significantly enhance the HE of 304L steel, as they induce severe α′ martensite transformation, accelerating hydrogen transport and hydrogen entry during subsequent hydrogen exposure. In contrast, 304L steel prestrained at 50 and 80 °C and 316L steel prestrained at 20 °C exhibit less HE, due to less α′ after prestraining. The increase of dislocations after prestraining has a negligible influence on apparent hydrogen diffusivity compared with pre-existing α′. The deformation twins in heavily prestrained 304L steel can modify HE mechanism by assisting intergranular (IG) fracture. Regardless of temperature and prestrain level, HE and apparent diffusivity ( D app ) increase monotonously with α′ volume fraction ( f α ′ ). D app can be described as log D app = log ( D α ′ s α ′ / s γ ) + log [ f α ′ / ( 1 − f α ′ ) ] for 10 % < f α ′ < 90 % , with D α ′ is diffusivity in α′, s α ′ and s γ are solubility in α′ and austenite, respectively. The two equations can also be applied to these more typical duplex materials containing both BCC and FCC phases.
topic hydrogen embrittlement
stainless steel
deformation
martensite transformation
url http://www.mdpi.com/2075-4701/8/9/660
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AT xuanpeiwu effectofamartensitecontentinducedbytensileplasticprestrainonhydrogentransportandhydrogenembrittlementof304lausteniticstainlesssteel
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