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Structural, Thermal and Mechanical Properties of mechanically alloyed Ni80Co17Mo3 powder mixture

Article dans une revue avec comité de lecture
Auteur
SMILI, B.
266547 Université Badji Mokhtar [Annaba] = Badji Mokhtar University [Annaba] = (عنابة) جامعة باجي مختار–عنابة [UBMA]
480606 Université Ahmed Draia d’Adrar
RAFAI, H.
480606 Université Ahmed Draia d’Adrar
SAKHER, E.
480606 Université Ahmed Draia d’Adrar
SAKMECHE, M.
480606 Université Ahmed Draia d’Adrar
CHADLI, S.
480606 Université Ahmed Draia d’Adrar
TIGRINE, R.
240526 Laboratoire de Physique et Chimie Quantique [Tizi-Ouzou] [LPCQ ]
480606 Université Ahmed Draia d’Adrar
ccPESCI, Raphaël
178323 Laboratoire d'Etude des Microstructures et de Mécanique des Matériaux [LEM3]
BOUOUDINA, M.
1159827 Prince Sultan University [Riyad]
BELLUCCI, S.
24847 Laboratori Nazionali di Frascati = National Laboratory of Frascati [LNF]

URI
http://hdl.handle.net/10985/26127
DOI
10.1016/j.matchemphys.2025.130586
Date
2025-06
Journal
Materials Chemistry and Physics

Résumé

This study investigates the evolution of structure and microstructure alongside thermomechanical properties of Ni80Co17Mo3 alloy powder mixture subjected to high-energy mechanical milling. Scanning electron microscopy observations reveal a consistent particle size reduction to 22 ± 2 μm. X-ray diffraction analysis confirms the formation of an FCC nanostructured solid solution NiCo(Mo) after 6h of milling, with a mean crystallite size ⁓ 56.4 nm and microstrain up to 6.5×10−3 % after 72 h. Thermogravimetric analysis manifests a precise mass gain trend, showing a strong correlation (R2 = 0.90–0.99) between milling time and compositional changes, with an average activation energy of 70.68 ± 3.5 kJ/mol supporting the thermodynamic modelling results. Due to structural and microstructural modifications associated with mechanical milling, the microhardness significantly increases from 134.00 to 285.00 HV. These findings highlight insights into optimizing nanostructured materials and provide a framework for designing advanced materials for water splitting and aerospace.

Fichier(s) constituant cette publication

Nom:
LEM3_MCP_2025_PESCI.pdf
Taille:
12.17Mo
Format:
PDF
Fin d'embargo:
2026-01-01
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