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About formability of ultrafine grained metallic materials. / Сабиров, Ильшат Нухович; Moreno-Valle, E. C.; Мурашкин, Максим Юрьевич; Валиев, Руслан Зуфарович.

в: Materials Science Forum, Том 838-839, 20.01.2016, стр. 476-481.

Результаты исследований: Научные публикации в периодических изданияхстатьяРецензирование

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Сабиров, ИН, Moreno-Valle, EC, Мурашкин, МЮ & Валиев, РЗ 2016, 'About formability of ultrafine grained metallic materials', Materials Science Forum, Том. 838-839, стр. 476-481.

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@article{2cba454e7e534cdd92b057fa8ce698d2,
title = "About formability of ultrafine grained metallic materials",
abstract = "Ultra-fine grained (UFG) and nanostructured metallic materials obtained via severe plastic deformation typically show very high mechanical strength but low tensile ductility, which dramatically limits their practical utility. Significant efforts were made to improve uniaxial tensile ductility of ultra-fine grained and nanostructured metallic materials. The developed strategies can be divided into two main groups. (1) The {\textquoteleft}mechanical{\textquoteright} strategies employ the mechanical characteristics of these materials, such as their work hardening ability and/or strain rate sensitivity. These mechanical characteristics can be varied via changing testing parameters, such as temperature and/or strain rate. (2) The {\textquoteleft}microstructural{\textquoteright} strategies are based on idea of intelligent microstructural design to suppress necking at early stages of plastic deformation thus improving ductility. However, not much attention was paid to the fact, that in metallforming operations, metallic materials are not deformed uniaxially, but have to undergo deformation under complex strain paths. This work aims to demonstrate that despite UFG metallic materials have low tensile ductility, they can show enhanced formability during plastic deformation in complex stress state (such as formability under biaxial stretch, which is sufficient for metalforming operations.",
keywords = "Ductility, Formability, Mechanical Strength, Severe Plastic Deformation, Ultra-Fine Grained Materials",
author = "Сабиров, {Ильшат Нухович} and Moreno-Valle, {E. C.} and Мурашкин, {Максим Юрьевич} and Валиев, {Руслан Зуфарович}",
year = "2016",
month = jan,
day = "20",
language = "English",
volume = "838-839",
pages = "476--481",
journal = "Materials Science Forum",
issn = "0255-5476",
publisher = "Trans Tech Publications Ltd",

}

RIS

TY - JOUR

T1 - About formability of ultrafine grained metallic materials

AU - Сабиров, Ильшат Нухович

AU - Moreno-Valle, E. C.

AU - Мурашкин, Максим Юрьевич

AU - Валиев, Руслан Зуфарович

PY - 2016/1/20

Y1 - 2016/1/20

N2 - Ultra-fine grained (UFG) and nanostructured metallic materials obtained via severe plastic deformation typically show very high mechanical strength but low tensile ductility, which dramatically limits their practical utility. Significant efforts were made to improve uniaxial tensile ductility of ultra-fine grained and nanostructured metallic materials. The developed strategies can be divided into two main groups. (1) The ‘mechanical’ strategies employ the mechanical characteristics of these materials, such as their work hardening ability and/or strain rate sensitivity. These mechanical characteristics can be varied via changing testing parameters, such as temperature and/or strain rate. (2) The ‘microstructural’ strategies are based on idea of intelligent microstructural design to suppress necking at early stages of plastic deformation thus improving ductility. However, not much attention was paid to the fact, that in metallforming operations, metallic materials are not deformed uniaxially, but have to undergo deformation under complex strain paths. This work aims to demonstrate that despite UFG metallic materials have low tensile ductility, they can show enhanced formability during plastic deformation in complex stress state (such as formability under biaxial stretch, which is sufficient for metalforming operations.

AB - Ultra-fine grained (UFG) and nanostructured metallic materials obtained via severe plastic deformation typically show very high mechanical strength but low tensile ductility, which dramatically limits their practical utility. Significant efforts were made to improve uniaxial tensile ductility of ultra-fine grained and nanostructured metallic materials. The developed strategies can be divided into two main groups. (1) The ‘mechanical’ strategies employ the mechanical characteristics of these materials, such as their work hardening ability and/or strain rate sensitivity. These mechanical characteristics can be varied via changing testing parameters, such as temperature and/or strain rate. (2) The ‘microstructural’ strategies are based on idea of intelligent microstructural design to suppress necking at early stages of plastic deformation thus improving ductility. However, not much attention was paid to the fact, that in metallforming operations, metallic materials are not deformed uniaxially, but have to undergo deformation under complex strain paths. This work aims to demonstrate that despite UFG metallic materials have low tensile ductility, they can show enhanced formability during plastic deformation in complex stress state (such as formability under biaxial stretch, which is sufficient for metalforming operations.

KW - Ductility, Formability, Mechanical Strength, Severe Plastic Deformation, Ultra-Fine Grained Materials

M3 - Article

VL - 838-839

SP - 476

EP - 481

JO - Materials Science Forum

JF - Materials Science Forum

SN - 0255-5476

ER -

ID: 35182997