On brittle fracture resistance determination of chromium stainless steel irradiated in ion accelerator

Author:

Margolin B. Z.1,Fomenko V. N.1,Shishkov F. L.1,Yurchenko E. V.1

Affiliation:

1. NRC «Kurchatov Institute» – CRISM «Prometey»

Abstract

The possibility of brittle fracture resistance (BFR) determination is investigated with mechanical testing for ion-irradiated chromium stainless steel. To consider the ion irradiation effect on material properties disc specimens in initial and irradiated states were tested by mechanical loading until brittle fracture. The micro- hardness of specimens before and after ion irradiation was also determined. It was found that the microhardness of ion-irradiated steel is higher than the microhardness of steel in initial state. However, critical loads for brittle fracture of disc specimens are practically equal for initial and ion-irradiated states. The performed calculations, SEM investigations and also analysis of mechanisms of cleavage microcrack nucleation in disc specimen surfaces allowed us to explain the brittle fracture test results. As fracture tests do not allow us to estimate BFR, it is proposed to estimate BFR by microhardness measurement results.

Publisher

FSUE CRISM Prometey

Reference13 articles.

1. Interactions of Ions with Matter, SRIM – The Stopping and Range of Ions in Matter. URL: http://www.srim.org (reference date 10/05/2023).

2. Busby, J.T., Hash, M.C., Was, G.S., The relationship between hardness and yield stress in irradiated austenitic and ferritic steels, Journ. Nucl. Materials, 2005, V. 336, pp. 267–278.

3. RD EO 0027: Instruktsiya po opredeleniyu mekhanicheskikh svoistv metallov oborudovaniya atomnykh stantsy bezobraztsovymi metodami po kharakteristikam tverdosti [Instructions for determining the mechanical properties of metals of nuclear power plant equipment by methods without specimens according to hardness characteristics], Rosenergoatom, 2005.

4. Margolin, B., Fomenko, V., Shvetsova, V., Yurchenko, E., On the link of the embrittlement mechanisms and microcrack nucleation and propagation properties for RPV steels, Part 1: Materials, study strategy and deformation properties, Engineering Fracture Mechanics, 2022, V. 267, Art. 08400.

5. Margolin, B., Fomenko, V., Shvetsova, V., Yurchenko, E., On the link of the embrittlement mechanisms and microcrack nucleation and propagation properties for RPV steels, Part 2: Fracture properties and modelling, Engineering Fracture Mechanics, 2022, V. 270, Art. 108556.

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