Influence of Fabrication Route and Copper Content on Nature and Kinetics of 475 °C‐ Embrittlement in Cu‐Containing Super Duplex Stainless Steels

Author:

Hosseini Vahid A12ORCID,Thuvander Mattias3,Lindgren Kristina3,Oliver James4,Folkeson Nicklas2,Gonzalez Daniel5,Cengiz Sezgin36,Karlsson Leif1

Affiliation:

1. Department of Engineering Science University West SE-461 86 Trollhättan Sweden

2. ESAB AB SE-417 55 Göteborg Sweden

3. Department of Physics Chalmers University of Technology SE-412 96 Göteborg Sweden

4. Outokumpu Stainless AB SE-774 41 Avesta Sweden

5. Bodycote SE-735 23 Surahammar Sweden

6. Department of Materials Science and Engineering Gebze Technical University TR-41400 Kocaeli Turkey

Abstract

The influence of hot‐rolling, hot isostatic pressing (HIP), welding, as well as copper content on 475 °C‐embrittlement is studied in super duplex stainless steels. The as‐received samples are solution annealed and quenched. Then, to study the kinetics and nature of phase transformations during fabrication, the samples are aged for a very short duration of 5 min at 475 °C. Atom probe tomography results reveal that the processes involving more plastic deformation such as hot rolling and HIP accelerate chromium and iron phase separation and cause precipitation of copper‐rich particles (CRPs) in ferrite, resulting in significant toughness loss. In contrast, the weld does not show a high level of chromium and iron phase separation or CRPs precipitation, preserving its toughness after the short aging. The experiment and the inverse interdiffusion calculations reveal that raising the copper content slow down chromium and iron phase separation but significantly increase the CRP number density and decrease the toughness of the HIPed material. Precipitation simulation of CPRs show that the model must be modified based on each processing condition. It is concluded that hot rolling and HIP accelerate 475 °C‐embrittlement, which cannot be prevented by raising the copper content.

Funder

Stiftelsen för Kunskaps- och Kompetensutveckling

Publisher

Wiley

Subject

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

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