Transient Phase-Driven Cyclic Deformation in Additively Manufactured 15-5 PH Steel

Materials (Basel). 2022 Jan 20;15(3):777. doi: 10.3390/ma15030777.

Abstract

The present work extends the examination of selective laser melting (SLM)-fabricated 15-5 PH steel with the 8%-transient-austenite-phase towards fully-reversed strain-controlled low-cycle fatigue (LCF) test. The cyclic-deformation response and microstructural evolution were investigated via in-situ neutron-diffraction measurements. The transient-austenite-phase rapidly transformed into the martensite phase in the initial cyclic-hardening stage, followed by an almost complete martensitic transformation in the cyclic-softening and steady stage. The compressive stress was much greater than the tensile stress at the same strain amplitude. The enhanced martensitic transformation associated with lower dislocation densities under compression predominantly governed such a striking tension-compression asymmetry in the SLM-built 15-5 PH.

Keywords: 15-5 PH stainless steel; in-situ neutron diffraction; low-cycle fatigue; martensite transformation; selective laser melting.