Exploring the Strain Hardening Mechanisms of Ultrafine Grained Nickel Processed by Spark Plasma Sintering
Ultrafine grained (UFG) materials in the bigger grain size range (0.5–1) µm display a good combination of strength and ductility, unlike smaller size UFG and nanostructured metals, which usually exhibit high strength but low ductility. Such difference can be attributed to a change in plasticity mech...
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doaj-7208fdcb071b4cfabe48004e3f9e4f5c2020-12-31T00:05:30ZengMDPI AGMetals2075-47012021-12-0111656510.3390/met11010065Exploring the Strain Hardening Mechanisms of Ultrafine Grained Nickel Processed by Spark Plasma SinteringLucía García de la Cruz0Mayerling Martinez Celis1Clément Keller2Eric Hug3Laboratoire CRISMAT, UNICAEN, Normandie University, CNRS, 6 Bvd du Maréchal Juin, 14050 Caen, FranceLaboratoire CRISMAT, UNICAEN, Normandie University, CNRS, 6 Bvd du Maréchal Juin, 14050 Caen, FranceGroupe de Physique des Matériaux, CNRS-UMR6634, Université de Rouen, INSA de Rouen, Avenue de l′Université, 76800 Saint-Etienne du Rouvray, FranceLaboratoire CRISMAT, UNICAEN, Normandie University, CNRS, 6 Bvd du Maréchal Juin, 14050 Caen, FranceUltrafine grained (UFG) materials in the bigger grain size range (0.5–1) µm display a good combination of strength and ductility, unlike smaller size UFG and nanostructured metals, which usually exhibit high strength but low ductility. Such difference can be attributed to a change in plasticity mechanisms that modifies their strain hardening capability. The purpose of this work is to investigate the work hardening mechanisms of UFG nickel considering samples with grain sizes ranging from 0.82 to 25 µm. Specimens processed combining ball milling and spark plasma sintering were subjected to monotonous tensile testing up to fracture. Then, microstructural observations of the deformed state of the samples were carried out by electron backscattered diffraction and transmission electron microscopy. A lower strain hardening capability is observed with decreasing grain size. Samples in the submicrometric range display the three characteristic stages of strain hardening with a short second stage and the third stage beginning soon after yielding. Microstructural observations display a low fraction of low angle grain boundaries and dislocation density for the sample with d = 0.82 µm, suggesting changes in plasticity mechanisms early in the UFG range.https://www.mdpi.com/2075-4701/11/1/65nickelspark plasma sinteringultrafine grained microstructureplasticity mechanismsdeformed statedislocation structures |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Lucía García de la Cruz Mayerling Martinez Celis Clément Keller Eric Hug |
spellingShingle |
Lucía García de la Cruz Mayerling Martinez Celis Clément Keller Eric Hug Exploring the Strain Hardening Mechanisms of Ultrafine Grained Nickel Processed by Spark Plasma Sintering Metals nickel spark plasma sintering ultrafine grained microstructure plasticity mechanisms deformed state dislocation structures |
author_facet |
Lucía García de la Cruz Mayerling Martinez Celis Clément Keller Eric Hug |
author_sort |
Lucía García de la Cruz |
title |
Exploring the Strain Hardening Mechanisms of Ultrafine Grained Nickel Processed by Spark Plasma Sintering |
title_short |
Exploring the Strain Hardening Mechanisms of Ultrafine Grained Nickel Processed by Spark Plasma Sintering |
title_full |
Exploring the Strain Hardening Mechanisms of Ultrafine Grained Nickel Processed by Spark Plasma Sintering |
title_fullStr |
Exploring the Strain Hardening Mechanisms of Ultrafine Grained Nickel Processed by Spark Plasma Sintering |
title_full_unstemmed |
Exploring the Strain Hardening Mechanisms of Ultrafine Grained Nickel Processed by Spark Plasma Sintering |
title_sort |
exploring the strain hardening mechanisms of ultrafine grained nickel processed by spark plasma sintering |
publisher |
MDPI AG |
series |
Metals |
issn |
2075-4701 |
publishDate |
2021-12-01 |
description |
Ultrafine grained (UFG) materials in the bigger grain size range (0.5–1) µm display a good combination of strength and ductility, unlike smaller size UFG and nanostructured metals, which usually exhibit high strength but low ductility. Such difference can be attributed to a change in plasticity mechanisms that modifies their strain hardening capability. The purpose of this work is to investigate the work hardening mechanisms of UFG nickel considering samples with grain sizes ranging from 0.82 to 25 µm. Specimens processed combining ball milling and spark plasma sintering were subjected to monotonous tensile testing up to fracture. Then, microstructural observations of the deformed state of the samples were carried out by electron backscattered diffraction and transmission electron microscopy. A lower strain hardening capability is observed with decreasing grain size. Samples in the submicrometric range display the three characteristic stages of strain hardening with a short second stage and the third stage beginning soon after yielding. Microstructural observations display a low fraction of low angle grain boundaries and dislocation density for the sample with d = 0.82 µm, suggesting changes in plasticity mechanisms early in the UFG range. |
topic |
nickel spark plasma sintering ultrafine grained microstructure plasticity mechanisms deformed state dislocation structures |
url |
https://www.mdpi.com/2075-4701/11/1/65 |
work_keys_str_mv |
AT luciagarciadelacruz exploringthestrainhardeningmechanismsofultrafinegrainednickelprocessedbysparkplasmasintering AT mayerlingmartinezcelis exploringthestrainhardeningmechanismsofultrafinegrainednickelprocessedbysparkplasmasintering AT clementkeller exploringthestrainhardeningmechanismsofultrafinegrainednickelprocessedbysparkplasmasintering AT erichug exploringthestrainhardeningmechanismsofultrafinegrainednickelprocessedbysparkplasmasintering |
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