Microstructural characterization of 15Cr steel after quenching and slow cooling rates

Author:

Ahmadi M. R.1,Meixner F.1,Dománková M.2,Raus M.1,Sonderegger B.3,Sommitsch C.1

Affiliation:

1. Institute of Materials Science, Joining and Forming, Graz University of Technology , Kopernikusgasse 24/I , Graz 8010 , Austria

2. Institute of Materials Science of MTF STU , Bottova 24 , Trnava , Slovakia

3. Institute for Engineering Materials – Metals and Alloys, Johannes Kepler University Linz , Altenberger Straße 69, 4040 Linz , Austria

Abstract

Abstract Ferritic 15 %-Cr steels have better oxidation resistance, due to their higher chromium content, and creep strength, their lower dislocation density and lack of lath microstructure than conventional martensitic steels such as MarBN. Their mechanical properties are sensitive to chemical composition and heat treatment. In this study, we first simulated the formation of stable phases in two ferritic steels containing 2 % nickel (wt.%) and an alloy without nickel using the thermomechanical software MATCALC. Microstructural analysis using scanning electron microscope (SEM) and energy dispersive X-ray spectroscopy (EDS) reveals the formation of carbides and intermetallic phases after diffusion annealing, both during rapid cooling in oil and slow cooling in the furnace. Dilatometry and XRD studies confirm the gradual phase transformation of ferrite to austenite from 650 °C onwards during heating. Dilatometry also shows that ferritic steels have a lower coefficient of thermal expansion than martensitic steels, austenitic steels, and superalloys, which results in lower thermal stresses during frequent start-up and shutdown of power plants.

Publisher

Walter de Gruyter GmbH

Subject

Metals and Alloys,Mechanics of Materials,Condensed Matter Physics,Electronic, Optical and Magnetic Materials

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