Mn Promotes the Rate of Nucleation and Growth of Precipitates by Increasing Frenkel Pairs in Fe-Cu Based Alloy

29 Pages Posted: 28 Jan 2019

See all articles by Li Tong

Li Tong

Shanghai University - Institute of Materials

Xie Yao-Ping

Shanghai University - Institute of Materials

Wang Xiao-Jiao

Chinese Academy of Sciences (CAS) - Shanghai Institute of Ceramics

Shen Qin

Shanghai University of Engineering Science - School of Mechanical and Automotive Engineering

Li Jia-bao

Shanghai University - Institute of Materials

Guo Hai-Bo

Shanghai University - Department of Electronic Information Materials

Xu Jing-Xiang

Shanghai Ocean University - College of Engineering Science and Technology

Liu Wen-Qing

Shanghai University - Institute of Materials

Date Written: January 24, 2019

Abstract

The Fe-1.0Cu (at. %) and Fe-1.2Cu-2.2Mn alloys aged at 450 °C for 0.25 h, 1 h, 2 h, and 16 h after solution treatment at 900 °C for 2 h are investigated to reveal the role of the addition of Mn on the Cu precipitates in Fe-Cu based alloys. Density functional theory (DFT) total energy calculations on point defects and their influence on Cu precipitates are also performed to understand the nucleation and growth of Cu precipitates. Experiments show that addition of Mn can slightly increase the aging peak hardness by 10 HV; by using atom probe tomography (APT) and optical microscopy, we identify that the increase in hardness derives from both grain refinement and the increase of number density of precipitates. DFT calculations show that Mn increases the formation possibility of Frenkel pairs, i.e., atomic vacancy and self-interstitial atoms, and these two types of defects both serve as nucleation sites of Cu precipitates, resulting in the increase of the nucleation centers number density, which is well consistent with our APT experiments on the very initial stage of aging. Moreover, calculated results show that Mn increases the density of atomic vacancy and promotes evolution rate of Cu precipitates, which accounts for our APT experiments that precipitates in Fe-Cu-Mn grow more quickly than that in Fe-Cu does. Finally, we also discuss the relationship between Mn content in reactor pressure vessel steels and its irradiation damage effects.

Keywords: Cu precipitate, Precipitation hardening, Atom probe tomography, Density functional theory calculation, Point defects

Suggested Citation

Tong, Li and Yao-Ping, Xie and Xiao-Jiao, Wang and Qin, Shen and Jia-bao, Li and Hai-Bo, Guo and Jing-Xiang, Xu and Wen-Qing, Liu, Mn Promotes the Rate of Nucleation and Growth of Precipitates by Increasing Frenkel Pairs in Fe-Cu Based Alloy (January 24, 2019). Available at SSRN: https://ssrn.com/abstract=3321314 or http://dx.doi.org/10.2139/ssrn.3321314

Li Tong

Shanghai University - Institute of Materials

149 Yanchang Road
SHANGDA ROAD 99
Shanghai 200072, Shanghai 200444
China

Xie Yao-Ping

Shanghai University - Institute of Materials ( email )

149 Yanchang Road
SHANGDA ROAD 99
Shanghai 200072, Shanghai 200444
China

Wang Xiao-Jiao

Chinese Academy of Sciences (CAS) - Shanghai Institute of Ceramics

200050
China

Shen Qin

Shanghai University of Engineering Science - School of Mechanical and Automotive Engineering

Shanghai, 201620
China

Li Jia-bao

Shanghai University - Institute of Materials

149 Yanchang Road
SHANGDA ROAD 99
Shanghai 200072, Shanghai 200444
China

Guo Hai-Bo

Shanghai University - Department of Electronic Information Materials

149 Yanchang Road
SHANGDA ROAD 99
Shanghai 200072, Shanghai 200444
China

Xu Jing-Xiang

Shanghai Ocean University - College of Engineering Science and Technology

Shanghai, 201306
China

Liu Wen-Qing (Contact Author)

Shanghai University - Institute of Materials ( email )

149 Yanchang Road
SHANGDA ROAD 99
Shanghai 200072, Shanghai 200444
China

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