Strengthening Effect of Nb on Ferrite Grain Boundary in X70 Pipeline Steel

Understanding the strengthening effect of niobium on ferrite grain boundaries from the perspective of valence electron structures will help to use niobium and other microalloying elements more effectively to improve the performance of steel materials. In this paper, the effect of niobium element on...

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Main Authors: Zhongyi Li, Zhipeng Li, Wenhuai Tian
Format: Article
Language:English
Published: MDPI AG 2021-12-01
Series:Materials
Subjects:
Online Access:https://www.mdpi.com/1996-1944/14/1/61
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spelling doaj-00431924a24b4df3903d4a5337a144122020-12-26T00:01:04ZengMDPI AGMaterials1996-19442021-12-0114616110.3390/ma14010061Strengthening Effect of Nb on Ferrite Grain Boundary in X70 Pipeline SteelZhongyi Li0Zhipeng Li1Wenhuai Tian2School of Materials Science and Engineering, University of Science and Technology Beijing, Beijing 100083, ChinaSchool of Materials Science and Engineering, University of Science and Technology Beijing, Beijing 100083, ChinaSchool of Materials Science and Engineering, University of Science and Technology Beijing, Beijing 100083, ChinaUnderstanding the strengthening effect of niobium on ferrite grain boundaries from the perspective of valence electron structures will help to use niobium and other microalloying elements more effectively to improve the performance of steel materials. In this paper, the effect of niobium element on ferrite grain boundary strengthening is studied based on microstructure analysis at the nanometer scale. The enrichment of niobium in pipeline steel at ferrite boundary was observed by a three-dimensional atomic probe test. Segregation of Nb is observed in the ferrite grain boundaries of X70 steel, and its maximum concentration is 0.294–0.466 at.%. The charges in the occupancy of the Fe 3d state in grain and grain boundary were 7.23 and 7.37, respectively, based on quantitative analysis of electron energy loss spectra (EELS). The first-principle calculation suggests that the charges in the occupancy of 3d state for grain boundary iron are 6.57 and 6.68, respectively, before and after the Nb doping (with an increase of 1.67%), which reveals a similar trend to that of the EELS results. Through Nb alloying, the 3d valence electronic density of the state of Fe in grain boundary moves to a lower energy, which can reduce the total energy of the system and make the grain boundary more stable. Meanwhile, the charges in the occupancy of the 3d state for Fe in the grain boundary increases, providing more electrons for grain boundary bonding. These improve the strength and toughness of the material. This work provides a fundamental understanding for pipeline steel strengthening by element alloying.https://www.mdpi.com/1996-1944/14/1/61grain boundary3D atom probeelectron energy loss spectrumfirst principlesvalence electron structure
collection DOAJ
language English
format Article
sources DOAJ
author Zhongyi Li
Zhipeng Li
Wenhuai Tian
spellingShingle Zhongyi Li
Zhipeng Li
Wenhuai Tian
Strengthening Effect of Nb on Ferrite Grain Boundary in X70 Pipeline Steel
Materials
grain boundary
3D atom probe
electron energy loss spectrum
first principles
valence electron structure
author_facet Zhongyi Li
Zhipeng Li
Wenhuai Tian
author_sort Zhongyi Li
title Strengthening Effect of Nb on Ferrite Grain Boundary in X70 Pipeline Steel
title_short Strengthening Effect of Nb on Ferrite Grain Boundary in X70 Pipeline Steel
title_full Strengthening Effect of Nb on Ferrite Grain Boundary in X70 Pipeline Steel
title_fullStr Strengthening Effect of Nb on Ferrite Grain Boundary in X70 Pipeline Steel
title_full_unstemmed Strengthening Effect of Nb on Ferrite Grain Boundary in X70 Pipeline Steel
title_sort strengthening effect of nb on ferrite grain boundary in x70 pipeline steel
publisher MDPI AG
series Materials
issn 1996-1944
publishDate 2021-12-01
description Understanding the strengthening effect of niobium on ferrite grain boundaries from the perspective of valence electron structures will help to use niobium and other microalloying elements more effectively to improve the performance of steel materials. In this paper, the effect of niobium element on ferrite grain boundary strengthening is studied based on microstructure analysis at the nanometer scale. The enrichment of niobium in pipeline steel at ferrite boundary was observed by a three-dimensional atomic probe test. Segregation of Nb is observed in the ferrite grain boundaries of X70 steel, and its maximum concentration is 0.294–0.466 at.%. The charges in the occupancy of the Fe 3d state in grain and grain boundary were 7.23 and 7.37, respectively, based on quantitative analysis of electron energy loss spectra (EELS). The first-principle calculation suggests that the charges in the occupancy of 3d state for grain boundary iron are 6.57 and 6.68, respectively, before and after the Nb doping (with an increase of 1.67%), which reveals a similar trend to that of the EELS results. Through Nb alloying, the 3d valence electronic density of the state of Fe in grain boundary moves to a lower energy, which can reduce the total energy of the system and make the grain boundary more stable. Meanwhile, the charges in the occupancy of the 3d state for Fe in the grain boundary increases, providing more electrons for grain boundary bonding. These improve the strength and toughness of the material. This work provides a fundamental understanding for pipeline steel strengthening by element alloying.
topic grain boundary
3D atom probe
electron energy loss spectrum
first principles
valence electron structure
url https://www.mdpi.com/1996-1944/14/1/61
work_keys_str_mv AT zhongyili strengtheningeffectofnbonferritegrainboundaryinx70pipelinesteel
AT zhipengli strengtheningeffectofnbonferritegrainboundaryinx70pipelinesteel
AT wenhuaitian strengtheningeffectofnbonferritegrainboundaryinx70pipelinesteel
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