Exploring the Influence Mechanisms of Tempering Temperature and N‐alloying on Mechanical Properties of AISI M42 High‐Speed Steel

Author:

Jiao Wei-Chao1,Li Hua-Bing123ORCID,Feng Hao13,Wang Hai-Jian1,Zhu Hong-Chun13,Zhang Shu-Cai1,Jiang Zhou-Hua12,Wu Wei4

Affiliation:

1. School of Metallurgy Northeastern University Shenyang Liaoning 110819 P. R. China

2. Key Laboratory for Ecological Metallurgy of Multimetallic Ores (Ministry of Education) Northeastern University Shenyang Liaoning 110819 P. R. China

3. Liaoning Province Engineering Research Center for Technologies of Low-Carbon Steelmaking Northeastern University Shenyang Liaoning 110819 P. R. China

4. Metallurgical Technology Institute Central Iron & Steel Research Institute Beijing 100081 P. R. China

Abstract

The variations in microstructure and mechanical properties of N‐free and high‐nitrogen (0.18 wt%) M42 HSS with tempering temperatures are investigated. The microstructure of steels after austenitizing primarily consists of martensite, retained austenite (RA), undissolved M2C, and M6C carbides. With increasing tempering temperature (450–600 °C), the RA content and martensite lattice strain of steels gradually decrease. At 540 and 600 °C, RA is almost or fully transformed into martensite, and massive nanosized M2C secondary carbides are precipitated. The M2C secondary carbides at 600 °C obviously coarse compared to those at 540 °C. Further, the addition of N increases RA content and martensite lattice strain. With increasing tempering temperature, the bulk hardness and compressive strength of steels first increase and then decrease, whereas their impact toughness shows an opposite trend. This is ascribed to the combined effect of RA decomposition, precipitation and coarsening of secondary precipitates, and decrease in dislocation density and martensite lattice strain. Compared to N‐free steel, 0.18N steel tempered at peak‐hardening temperature (540 °C) and above has higher bulk hardness and compressive strength because of the increased solid solution, dislocation, and precipitation strengthening, but lower impact toughness owing to higher matrix hardness and martensite lattice strain.

Funder

National Natural Science Foundation of China

Publisher

Wiley

Subject

Materials Chemistry,Metals and Alloys,Physical and Theoretical Chemistry,Condensed Matter Physics

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