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Исследование изгиба толстолистового проката с градиентом прочностных свойств по толщине. / Максимов, А.Б. ; Пронина, Ю.Г.

в: Izvestiya Ferrous Metallurgy, Том 65, № 1, 11.02.2022, стр. 21-27.

Результаты исследований: Научные публикации в периодических изданияхстатьяРецензирование

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@article{6bcb703f159840a68829aa753c85f0e8,
title = "Исследование изгиба толстолистового проката с градиентом прочностных свойств по толщине",
abstract = "The paper considers the studies of bending of a plate made of A32 ship steel with a through-the-thickness gradient of strength properties. The grading was produced by accelerated one-sided cooling of the plate from the austenitic area. As a result, a spectrum of microstructures was formed over the thickness of the plate: from ferrite-bainite on the cooled surface to ferrite-perlite on the other. During elastic-plastic bending of a steel plate with a homogeneous microstructure, the neutral surface shifts towards the compressed fibers, which is explained by the greater resistance of the material to compression than to tension. The purpose of this work was to develop a finite plastic deformation model of bending of a steel plate with tension/ compression (T/C) asymmetry and a strength gradient to confirm the expediency of one-sided thermal reinforcement of rolled sheets. It is confirmed that the displacement of the neutral surface caused by T/C asymmetry depends on the asymmetry ratio and does not depend on the steel microstructure, and is directed towards the compressed fibers. The displacement caused by the strength gradient depends on the absolute value of this gradient and is directed towards it. Calculations revealed that the critical bending moment for a plate made of A32 steel with a strength gradient is not less than that for the normalized and thermally hardened (by quenching and tempering) states, at any direction of the strength gradient with respect to the bending direction. It is concluded that the proposed technology of thermal reinforcement of heavy-plate rolled products made of carbon and low-alloy steels using accelerated one-sided cooling provides mechanical properties not worse than for the thermally hardened state. This saves up to 40 % of cooling water.",
keywords = "Analytical solution, Critical bending moment, Displacement of neutral surface, One-sided accelerated cooling, Plastic bending, Resource saving, Ship steel, Steel plate, Strength gradient, Analytical solution, Critical bending moment, Displacement of neutral surface, One-sided accelerated cooling, Plastic bending, Resource saving, Ship steel, Steel plate, Strength gradient",
author = "А.Б. Максимов and Ю.Г. Пронина",
note = "Funding Information: Funding: The work was partially supported by the Russian Science Foundation (grant No. 21-19-00100). Publisher Copyright: {\textcopyright} 2022 National University of Science and Technology MISIS. All rights reserved.",
year = "2022",
month = feb,
day = "11",
doi = "10.17073/0368-0797-2022-1-21-27",
language = "русский",
volume = "65",
pages = "21--27",
journal = "Izvestiya Vysshikh Uchebnykh Zavedenij. Chernaya Metallurgiya",
issn = "0368-0797",
publisher = "Moskovskii Gosudarstvennyi Institut Stali i Splavov",
number = "1",

}

RIS

TY - JOUR

T1 - Исследование изгиба толстолистового проката с градиентом прочностных свойств по толщине

AU - Максимов, А.Б.

AU - Пронина, Ю.Г.

N1 - Funding Information: Funding: The work was partially supported by the Russian Science Foundation (grant No. 21-19-00100). Publisher Copyright: © 2022 National University of Science and Technology MISIS. All rights reserved.

PY - 2022/2/11

Y1 - 2022/2/11

N2 - The paper considers the studies of bending of a plate made of A32 ship steel with a through-the-thickness gradient of strength properties. The grading was produced by accelerated one-sided cooling of the plate from the austenitic area. As a result, a spectrum of microstructures was formed over the thickness of the plate: from ferrite-bainite on the cooled surface to ferrite-perlite on the other. During elastic-plastic bending of a steel plate with a homogeneous microstructure, the neutral surface shifts towards the compressed fibers, which is explained by the greater resistance of the material to compression than to tension. The purpose of this work was to develop a finite plastic deformation model of bending of a steel plate with tension/ compression (T/C) asymmetry and a strength gradient to confirm the expediency of one-sided thermal reinforcement of rolled sheets. It is confirmed that the displacement of the neutral surface caused by T/C asymmetry depends on the asymmetry ratio and does not depend on the steel microstructure, and is directed towards the compressed fibers. The displacement caused by the strength gradient depends on the absolute value of this gradient and is directed towards it. Calculations revealed that the critical bending moment for a plate made of A32 steel with a strength gradient is not less than that for the normalized and thermally hardened (by quenching and tempering) states, at any direction of the strength gradient with respect to the bending direction. It is concluded that the proposed technology of thermal reinforcement of heavy-plate rolled products made of carbon and low-alloy steels using accelerated one-sided cooling provides mechanical properties not worse than for the thermally hardened state. This saves up to 40 % of cooling water.

AB - The paper considers the studies of bending of a plate made of A32 ship steel with a through-the-thickness gradient of strength properties. The grading was produced by accelerated one-sided cooling of the plate from the austenitic area. As a result, a spectrum of microstructures was formed over the thickness of the plate: from ferrite-bainite on the cooled surface to ferrite-perlite on the other. During elastic-plastic bending of a steel plate with a homogeneous microstructure, the neutral surface shifts towards the compressed fibers, which is explained by the greater resistance of the material to compression than to tension. The purpose of this work was to develop a finite plastic deformation model of bending of a steel plate with tension/ compression (T/C) asymmetry and a strength gradient to confirm the expediency of one-sided thermal reinforcement of rolled sheets. It is confirmed that the displacement of the neutral surface caused by T/C asymmetry depends on the asymmetry ratio and does not depend on the steel microstructure, and is directed towards the compressed fibers. The displacement caused by the strength gradient depends on the absolute value of this gradient and is directed towards it. Calculations revealed that the critical bending moment for a plate made of A32 steel with a strength gradient is not less than that for the normalized and thermally hardened (by quenching and tempering) states, at any direction of the strength gradient with respect to the bending direction. It is concluded that the proposed technology of thermal reinforcement of heavy-plate rolled products made of carbon and low-alloy steels using accelerated one-sided cooling provides mechanical properties not worse than for the thermally hardened state. This saves up to 40 % of cooling water.

KW - Analytical solution

KW - Critical bending moment

KW - Displacement of neutral surface

KW - One-sided accelerated cooling

KW - Plastic bending

KW - Resource saving

KW - Ship steel

KW - Steel plate

KW - Strength gradient

KW - Analytical solution

KW - Critical bending moment

KW - Displacement of neutral surface

KW - One-sided accelerated cooling

KW - Plastic bending

KW - Resource saving

KW - Ship steel

KW - Steel plate

KW - Strength gradient

UR - http://www.scopus.com/inward/record.url?scp=85125726925&partnerID=8YFLogxK

UR - https://www.mendeley.com/catalogue/3982031c-5a3c-3e91-a7fe-ee39eba5c848/

U2 - 10.17073/0368-0797-2022-1-21-27

DO - 10.17073/0368-0797-2022-1-21-27

M3 - статья

AN - SCOPUS:85125726925

VL - 65

SP - 21

EP - 27

JO - Izvestiya Vysshikh Uchebnykh Zavedenij. Chernaya Metallurgiya

JF - Izvestiya Vysshikh Uchebnykh Zavedenij. Chernaya Metallurgiya

SN - 0368-0797

IS - 1

ER -

ID: 93448415