Microstructure and Mechanical Properties of High-Co Maraging Steel Fabricated by Metal Powder Injection Molding
Feng Shang, Haolin Zhu, Shuai Cao, Yuqi Cheng, Huanzhe Zhou, Hang Feng, Qing Chong, Jianbin HuCurrently, systematic understanding of strengthening and embrittlement mechanisms in high-Co maraging steels fabricated by metal powder injection molding (MIM) is lacking. In this study, a high-Co maraging steel (Fe–13.2Co–7.7Cr–6.9Ni–6.6Mo–0.2Nb–0.008C) was prepared by MIM, and the effects of processing parameters and heat treatment on its microstructure and mechanical properties were systematically investigated. Sintering at 1370 °C for 2 h yielded a relative density of 95.93 ± 0.16%. The as-sintered specimens exhibited a lath martensite matrix containing pores, Si-rich oxide particles, and Mn–Cr-rich oxide particles. A solution treatment at 1000 °C for 1 h followed by water quenching produced supersaturated martensite, but residual stresses likely contributed to the reduced ductility. After aging at 540 °C for 4 h, a high dislocation density remained and provided dislocation strengthening, while nanoscale C14 Laves and μ phases precipitated and may contribute to the high strength. The solution-treated and aged specimens demonstrated high strength but limited ductility, with an ultimate tensile strength (UTS) of 1762 ± 44 MPa, a yield strength (YS) of 1699 ± 23 MPa, an elongation at break (ɛ) of 1.3 ± 0.2%, and a microhardness of 554.7 ± 10.5 HV0.5. The limited ductility may have resulted from the coupled detrimental effects of pores, inclusions, and the hardened matrix.