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  4. Study of the irradiation hardening of a Fe9Cr ferritic model alloy by nanoindentations
 
research article

Study of the irradiation hardening of a Fe9Cr ferritic model alloy by nanoindentations

Zhou, D.
•
Spatig, P.  
•
Hayat, Q.
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June 1, 2024
Nuclear Materials and Energy

This paper presents a series of Berkovich indentation results obtained on unirradiated and 7.2 MeV proton irradiated specimens of a Fe9Cr model alloy with an equiaxed ferritic microstructure. Using a energy degrader wheel made of 24 aluminum foils of different thickness, a flat damage profile of about 50 mu m resulted from the irradiation, allowing to perform indentations within a volume material that is homogeneously irradiated. The indentation size effect on measured hardness was analyzed with a model based on the disloction-slip distance theory built on the concept of combined spatial frequency of all obstacles to dislocation motion. The effects on hardness of the tip -specimen contact size (or penetration depth), dislocation density and mean distance between irradiation defects were quantified and discussed. The irradiation hardening was characterized by the increase of hardness determined at large penetration depths.

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Type
research article
DOI
10.1016/j.nme.2024.101667
Web of Science ID

WOS:001240233900001

Author(s)
Zhou, D.
Spatig, P.  
Hayat, Q.
Song, P.
Jennett, N.
Chen, J. -c.
Desgardin, P.
Date Issued

2024-06-01

Publisher

Elsevier

Published in
Nuclear Materials and Energy
Volume

39

Article Number

101667

Subjects

Technology

•

Fe-Cr Model Alloy

•

Nano-Indentations

•

Indentation Size Effect

•

Structural Size Effects

•

Proton Irradiation

•

Irradiation Hardening

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LRS  
FunderGrant Number

Swiss National Science Foundation

200021_184695

Swiss National Science Foundation (SNF)

200021_184695

Available on Infoscience
June 19, 2024
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/208763
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