Obtaining Excellent Mechanical Properties in an Ultrahigh-Strength Stainless Bearing Steel via Solution Treatment

Author:

Zheng Kai1,Zhong Zhenqian1,Wang Hui1,Xu Haifeng1,Yu Feng1,Wang Cunyu1,Wu Guilin23ORCID,Liang Jianxiong1,Godfrey Andy4,Cao Wenquan1

Affiliation:

1. Central Iron and Steel Research Institute (CISRI) of China, Beijing 100081, China

2. Institute for Carbon Neutrality, University of Science and Technology Beijing, Beijing 100083, China

3. Beijing Advanced Innovation Center for Materials Genome Engineering, University of Science and Technology Beijing, Beijing 100083, China

4. Laboratory of Advanced Materials (MOE), School of Materials Science and Engineering, University of Tsinghua, Beijing 100084, China

Abstract

A novel versatile ultrahigh-strength stainless bearing steel was prepared by first solution treating the steel at temperatures between 1000 °C and 1100 °C for 1 h, followed by performing cryogenic treatment at −73 °C for 2 h, and tempering at 500 °C for 2 h, with the cryogenic and tempering treatments being repeated twice. The microstructures were characterized using multiscale techniques, and the mechanical properties were investigated using tensile testing, as well as via Rockwell hardness and impact toughness measurements. Tensile strength was found to be independent of solution temperature, with a value of about 1800 MPa. In contrast, yield strength decreased from 1530 MPa to 1033 MPa with increasing solution temperature, while tensile elongation increased from 15.3% to 20.5%. This resulted in an excellent combined product of tensile strength and elongation for steels initially treated at 1080 °C and 1100 °C, with values of 33.9 GPa·% and 37.0 GPa·%, respectively. Furthermore, the steels showed excellent impact toughness, increasing from 37.0 J to 86.2 J with increasing solution temperature. The microstructural and mechanical investigations reveal that the excellent mechanical properties and impact toughness are related to three factors, namely (i) a transformation-induced plasticity effect, mainly attributed to a high volume fraction of retained austenite, (ii) a high strengthening capacity arising from a high dislocation density, and (iii) a synergistic effect due to cobalt additions and the nanoprecipitation of M2C and M6C carbides.

Funder

National Natural Science Foundation of China

Key project of CISRI

Publisher

MDPI AG

Subject

General Materials Science,Metals and Alloys

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