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Wear mechanism transforming of ultrafine-grained pure titanium by multi-axial forging and low-temperature annealing

Authors :
Rongyou Chen
Shubo Guo
Xiaolian Zhao
Yutang Yin
Sijie Du
Yang Song
Wei Liang
Aoke Jiang
Yiting He
Chunhua Wei
Source :
Journal of Materials Research and Technology, Vol 28, Iss , Pp 2980-2989 (2024)
Publication Year :
2024
Publisher :
Elsevier, 2024.

Abstract

The effect of microstructure and mechanical properties of submicro grained commercial pure titanium (CP–Ti) on the wear mechanism is still unclear. In the present work, CP-Ti samples were subjected to multi-axial forging (MAF) and low-temperature annealing treatment to prepare ultrafine-grained (UFG) material. The mechanical properties, microstructure, and tribological characterization between coarse-grained (CG) sample and UFG samples were comparatively studied. The results showed that the MAF sample could reach a grain size of 165 nm, while its grains coarsened slightly after low-temperature annealing. The MAF sample had the highest strength and hardness and the lowest coefficient of friction, but only a 7.3 % decrease in wear rate compared to the CG sample. The 400 °C annealed MAF sample possessed a good combination of tensile strength (814 MPa) and elongation (18.6 %), resulting in the lowest wear rate of 16.8 × 10−5mm3/(N∙m). The dominated wear mechanisms of the CG sample, MAF sample and 500 °C annealed MAF sample were abrasive wear, adhesive wear and delamination wear, while the primary mechanism of the 400 °C annealed MAF sample was abrasive wear and adhesive wear. It was found that the wear mechanism transforming, higher hardness and sufficient work hardening could be responsible for lower wear rate of the 400 °C annealed MAF sample. The 400 °C annealed MAF sample showed a thinner and more homogeneous deformation layer near the worn surface, and its thickness of deformation layer was about 8 μm.

Details

Language :
English
ISSN :
22387854
Volume :
28
Issue :
2980-2989
Database :
Directory of Open Access Journals
Journal :
Journal of Materials Research and Technology
Publication Type :
Academic Journal
Accession number :
edsdoj.242c037accd04086b554864c7766080d
Document Type :
article
Full Text :
https://doi.org/10.1016/j.jmrt.2023.12.229