Standard

Effects of Mg on strengthening mechanisms in ultrafine-grained Al–Mg–Zr alloy. / Orlova, T. S.; Latynina, T. A.; Murashkin, M. Y.; Chabanais, F.; Rigutti, L.; Lefebvre, W.

в: Journal of Alloys and Compounds, Том 859, 157775, 01.04.2021.

Результаты исследований: Научные публикации в периодических изданияхстатьяРецензирование

Harvard

Orlova, TS, Latynina, TA, Murashkin, MY, Chabanais, F, Rigutti, L & Lefebvre, W 2021, 'Effects of Mg on strengthening mechanisms in ultrafine-grained Al–Mg–Zr alloy', Journal of Alloys and Compounds, Том. 859, 157775. https://doi.org/10.1016/j.jallcom.2020.157775

APA

Orlova, T. S., Latynina, T. A., Murashkin, M. Y., Chabanais, F., Rigutti, L., & Lefebvre, W. (2021). Effects of Mg on strengthening mechanisms in ultrafine-grained Al–Mg–Zr alloy. Journal of Alloys and Compounds, 859, [157775]. https://doi.org/10.1016/j.jallcom.2020.157775

Vancouver

Orlova TS, Latynina TA, Murashkin MY, Chabanais F, Rigutti L, Lefebvre W. Effects of Mg on strengthening mechanisms in ultrafine-grained Al–Mg–Zr alloy. Journal of Alloys and Compounds. 2021 Апр. 1;859. 157775. https://doi.org/10.1016/j.jallcom.2020.157775

Author

Orlova, T. S. ; Latynina, T. A. ; Murashkin, M. Y. ; Chabanais, F. ; Rigutti, L. ; Lefebvre, W. / Effects of Mg on strengthening mechanisms in ultrafine-grained Al–Mg–Zr alloy. в: Journal of Alloys and Compounds. 2021 ; Том 859.

BibTeX

@article{50526e9fc6f24646a9bb7cdd4df0c8e6,
title = "Effects of Mg on strengthening mechanisms in ultrafine-grained Al–Mg–Zr alloy",
abstract = "The paper studies the effect of high pressure torsion on the microstructure, mechanical properties and electrical conductivity of Al-0.53Mg-0.27Zr (wt.%) alloy preliminarily aged at Т = 375 оС for 366 h. The aging leads to the formation of nanoscale precipitates of Al3Zr (Ll2) phase with the average size of 15 nm. As a result of HPT processing, ultrafine-grained (UFG) structure with the average grain size of 400 nm was formed, the size and amount of Al3Zr precipitates decreased. The HPT processing leads to a remarkable increase of strength to 465 MPa with keeping a good level of electrical conductivity ∼51.5% IACS and acceptable ductility (>3%). The hardening contributions from different microstructural features including grain boundaries, dislocations and solute alloying elements (Zr, Mg) and second phase precipitates were quantitatively calculated on the basis of the obtained microstructural parameters in the UFG Al–Mg–Zr alloy and compared with the similar contributions in the UFG low-doped Al-0. Zr alloy. It was shown that the colossal increase in strength of UFG Al–Mg–Zr alloy could not be explained only by traditional hardening mechanisms. The key role of remarkable strengthening belongs to Mg alloying: Mg not only promotes grain refinement, but also causes additional unusual substantial strengthening (≥150 MPa), which even exceeds grain boundary strengthening (Hall-Petch strengthening). Possible reasons of this additional strengthening are discussed.",
keywords = "Al–Mg–Zr alloy, Electrical conductivity, Mechanical properties, Nanoscale precipitates, Strengthening mechanism, Ultrafine-grained structure, Al-Mg-Zr alloy",
author = "Orlova, {T. S.} and Latynina, {T. A.} and Murashkin, {M. Y.} and F. Chabanais and L. Rigutti and W. Lefebvre",
note = "Funding Information: The present work was partly financially supported by the Russian Foundation for Basic Research (grant № 19-08-00474 ). Publisher Copyright: {\textcopyright} 2020 Elsevier B.V. Copyright: Copyright 2021 Elsevier B.V., All rights reserved.",
year = "2021",
month = apr,
day = "1",
doi = "10.1016/j.jallcom.2020.157775",
language = "English",
volume = "859",
journal = "Journal of Alloys and Compounds",
issn = "0925-8388",
publisher = "Elsevier",

}

RIS

TY - JOUR

T1 - Effects of Mg on strengthening mechanisms in ultrafine-grained Al–Mg–Zr alloy

AU - Orlova, T. S.

AU - Latynina, T. A.

AU - Murashkin, M. Y.

AU - Chabanais, F.

AU - Rigutti, L.

AU - Lefebvre, W.

N1 - Funding Information: The present work was partly financially supported by the Russian Foundation for Basic Research (grant № 19-08-00474 ). Publisher Copyright: © 2020 Elsevier B.V. Copyright: Copyright 2021 Elsevier B.V., All rights reserved.

PY - 2021/4/1

Y1 - 2021/4/1

N2 - The paper studies the effect of high pressure torsion on the microstructure, mechanical properties and electrical conductivity of Al-0.53Mg-0.27Zr (wt.%) alloy preliminarily aged at Т = 375 оС for 366 h. The aging leads to the formation of nanoscale precipitates of Al3Zr (Ll2) phase with the average size of 15 nm. As a result of HPT processing, ultrafine-grained (UFG) structure with the average grain size of 400 nm was formed, the size and amount of Al3Zr precipitates decreased. The HPT processing leads to a remarkable increase of strength to 465 MPa with keeping a good level of electrical conductivity ∼51.5% IACS and acceptable ductility (>3%). The hardening contributions from different microstructural features including grain boundaries, dislocations and solute alloying elements (Zr, Mg) and second phase precipitates were quantitatively calculated on the basis of the obtained microstructural parameters in the UFG Al–Mg–Zr alloy and compared with the similar contributions in the UFG low-doped Al-0. Zr alloy. It was shown that the colossal increase in strength of UFG Al–Mg–Zr alloy could not be explained only by traditional hardening mechanisms. The key role of remarkable strengthening belongs to Mg alloying: Mg not only promotes grain refinement, but also causes additional unusual substantial strengthening (≥150 MPa), which even exceeds grain boundary strengthening (Hall-Petch strengthening). Possible reasons of this additional strengthening are discussed.

AB - The paper studies the effect of high pressure torsion on the microstructure, mechanical properties and electrical conductivity of Al-0.53Mg-0.27Zr (wt.%) alloy preliminarily aged at Т = 375 оС for 366 h. The aging leads to the formation of nanoscale precipitates of Al3Zr (Ll2) phase with the average size of 15 nm. As a result of HPT processing, ultrafine-grained (UFG) structure with the average grain size of 400 nm was formed, the size and amount of Al3Zr precipitates decreased. The HPT processing leads to a remarkable increase of strength to 465 MPa with keeping a good level of electrical conductivity ∼51.5% IACS and acceptable ductility (>3%). The hardening contributions from different microstructural features including grain boundaries, dislocations and solute alloying elements (Zr, Mg) and second phase precipitates were quantitatively calculated on the basis of the obtained microstructural parameters in the UFG Al–Mg–Zr alloy and compared with the similar contributions in the UFG low-doped Al-0. Zr alloy. It was shown that the colossal increase in strength of UFG Al–Mg–Zr alloy could not be explained only by traditional hardening mechanisms. The key role of remarkable strengthening belongs to Mg alloying: Mg not only promotes grain refinement, but also causes additional unusual substantial strengthening (≥150 MPa), which even exceeds grain boundary strengthening (Hall-Petch strengthening). Possible reasons of this additional strengthening are discussed.

KW - Al–Mg–Zr alloy

KW - Electrical conductivity

KW - Mechanical properties

KW - Nanoscale precipitates

KW - Strengthening mechanism

KW - Ultrafine-grained structure

KW - Al-Mg-Zr alloy

UR - http://www.scopus.com/inward/record.url?scp=85096158073&partnerID=8YFLogxK

UR - https://www.mendeley.com/catalogue/338c63eb-c0d3-3004-8c12-88be74c7a6bc/

U2 - 10.1016/j.jallcom.2020.157775

DO - 10.1016/j.jallcom.2020.157775

M3 - Article

AN - SCOPUS:85096158073

VL - 859

JO - Journal of Alloys and Compounds

JF - Journal of Alloys and Compounds

SN - 0925-8388

M1 - 157775

ER -

ID: 73273810