Compelling Evidence for the Role of Retained Austenite in the Formation of Low Cycle Fatigue Extrusions in a 9Ni Steel

Author:

Cota Araujo Mahira A.12,Olive Jean-Marc3,Pecastaings Gilles4,Addad Ahmed1,Bouquerel Jérémie1ORCID,Vogt Jean-Bernard1ORCID

Affiliation:

1. CNRS, INRAE, Centrale Lille, UMR 8207—UMET—Unité Matériaux et Transformations, Université de Lille, 59000 Lille, France

2. Villares Metals, SA. Sumaré, São Paulo 13178-902, Brazil

3. CNRS, Institut de Mécanique et d’Ingénierie, UMR 5295, Université de Bordeaux, 33405 Talence, France

4. Centre de Recherche Paul Pascal, UMR 5031 CNRS, Université de Bordeaux, 33600 Pessac, France

Abstract

The 9Ni martensitic steels have a martensitic microstructure which contains retained austenite after solution heat treatment and water quenching. Under low cycle fatigue, extrusions formed at the surface of the material and were very close to martensite lath boundaries. The presence of retained austenite at martensite laths has been highly suspected to impact the cyclic plasticity. However, the nano-size of the austenitic phase makes it difficult to obtain clear evidence of its role. The paper focuses on the precise determination of these extrusions and the link with the retained austenite. The paper also emphasizes the innovative and promising use of magnetic force microscopy (MFM) to document cyclic plasticity of a 9Ni steel. It is shown that electron microscopies, even the most advanced ones, may be unsuccessful in reaching this goal, while magnetic force microscopy (MFM) overcame the difficulty. This technique has allowed imaging of both the extrusion and the retained austenite. These analyses confirm that the fatigue extrusions originated from a local displacement of martensite lath. The proposed mechanism, in which the retained austenitic film acts as a lubricant film or greasy film promoting a flowing of martensite along the interfaces, is unambiguously demonstrated.

Publisher

MDPI AG

Subject

General Materials Science,Metals and Alloys

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