Effect of the Dislocation Substructure Parameters of Hadfield Steel on Its Strain Hardening

Author:

Russakova Alyona1ORCID,Zhilkashinova Almira1ORCID,Alontseva Darya2ORCID,Abilev Madi3ORCID,Khozhanov Alexandr2,Zhilkashinova Assel1ORCID

Affiliation:

1. National Scientific Laboratory for Collective Use, Sarsen Amanzholov East Kazakhstan University, 34 Tridtsatoy Gvardeiskoy Divizii Str., Ust-Kamenogorsk 070002, Kazakhstan

2. School of Information Technologies and Intelligent Systems, D. Serikbayev East-Kazakhstan Technical University, 69 Protozanov Str., Ust-Kamenogorsk 070004, Kazakhstan

3. Department of Analytical, Colloid Chemistry and Technology of Rare Elements, al-Farabi Kazakh National University, 71 al-Farabi ave., Almaty 050040, Kazakhstan

Abstract

This article presents a study of changes in the microstructure of Hadfield steel depending on the tensile deformation and cold rolling with the strain/stress level. It has been established that the change in the “σ-ε” curve (at ε = 5%) is accompanied by a 1.5-times decrease in the strain-hardening coefficient. At ε = 0 to 5%, the structure contains dislocation loops, the interweaving of elongated dislocations, single-layer stacking faults. At ε = 5%, the structure contains multilayer stacking faults and mechanical microtwins. At ε > 5%, there is an intense microtwinning with no long dislocations and stacking faults. The most intense twinning develops in the range of deformation degrees of 5–20%, while the number of twins in the pack increases from 3–4 at ε = 10% to 6–8 at ε = 20%. When mechanical twinning is included, a cellular dislocation substructure begins to develop intensively. The cell size decreases from 700 nm at ε = 5% to 150 nm at ε = 40%. Twinning develops predominantly in systems with the largest Schmid factor and facilitates the dislocation glide. The results may be of interest to the researchers of the deformation processes of austenitic alloys.

Funder

the Science Committee of the Ministry of Science and Higher Education of the Republic of Kazakhstan

the Education, Audiovisual and Culture Executive Agency

Publisher

MDPI AG

Subject

General Materials Science

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