Microstructure and Mechanical Response of Commercially Pure Titanium VT1-0 After Short-Term Hot Deformation

Short-term (1–2 s) hot bulk plastic deformation of commercially pure titanium VT1-0 was studied at 25, 500, 600 and 700 °C without post-deformation annealing. Optical metallography, XRD line-profile analysis and Vickers micro-hardness testing were used to characterize the as-deformed structural state. The α-Ti single-phase structure was retained across the entire temperature range. Both microhardness and grain size evolved non-monotonically: hardness ranged from 161.7 ± 11.2 HV at 600 °C to 184.5 ± 10.8 HV at 700 °C, while grain size varied between 21.5 and 24.9 μm against 36.5 μm in the initial material. Such non-monotonic hardness evolution with deformation temperature is consistent with the interplay between deformation strengthening and thermally activated softening reported for CP-Ti processed under other conditions. The fitted FWHM of the α-Ti (101) reflection ranged from 0.463° to 0.738° in the deformed specimens, compared with 0.24° in the as-received reference. Size-related and strain-related broadening were not separated, precluding a unique interpretation of these differences in terms of coherent-domain size or defect structure. Hardness evolution cannot be attributed to grain refinement alone. Thermally activated restoration processes may contribute to the observed differences; however, the present measurements do not establish the underlying mechanisms. Among the investigated specimens, the specimen processed at 700 °C exhibited the highest mean microhardness. This observation does not establish an optimal processing temperature or an optimum across other material properties.

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Publication Details

Journal
Inorganics
Published
2026-09-30
DOI
https://doi.org/10.3390/inorganics14100255
Primary Topic
Titanium Alloys Microstructure and Properties
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article
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article

Microstructure and Mechanical Response of Commercially Pure Titanium VT1-0 After Short-Term Hot Deformation

Bagila A. Baitimbetova, Balzhan Kshibekova, Aidar Karaulovich Kenzhegulov, Axaule Mamaeva et al.
Inorganics
Titanium Alloys Microstructure and Properties
article

Microstructure and Mechanical Response of Commercially Pure Titanium VT1-0 After Short-Term Hot Deformation

Bagila A. Baitimbetova, Balzhan Kshibekova, Aidar Karaulovich Kenzhegulov, Axaule Mamaeva, Talshyn Yetish, Alexander Panichkin
article en

Abstract

Short-term (1–2 s) hot bulk plastic deformation of commercially pure titanium VT1-0 was studied at 25, 500, 600 and 700 °C without post-deformation annealing. Optical metallography, XRD line-profile analysis and Vickers micro-hardness testing were used to characterize the as-deformed structural state. The α-Ti single-phase structure was retained across the entire temperature range. Both microhardness and grain size evolved non-monotonically: hardness ranged from 161.7 ± 11.2 HV at 600 °C to 184.5 ± 10.8 HV at 700 °C, while grain size varied between 21.5 and 24.9 μm against 36.5 μm in the initial material. Such non-monotonic hardness evolution with deformation temperature is consistent with the interplay between deformation strengthening and thermally activated softening reported for CP-Ti processed under other conditions. The fitted FWHM of the α-Ti (101) reflection ranged from 0.463° to 0.738° in the deformed specimens, compared with 0.24° in the as-received reference. Size-related and strain-related broadening were not separated, precluding a unique interpretation of these differences in terms of coherent-domain size or defect structure. Hardness evolution cannot be attributed to grain refinement alone. Thermally activated restoration processes may contribute to the observed differences; however, the present measurements do not establish the underlying mechanisms. Among the investigated specimens, the specimen processed at 700 °C exhibited the highest mean microhardness. This observation does not establish an optimal processing temperature or an optimum across other material properties.

InorganicsVol. 14(10)
Satbayev University (KZ), "Institute of Metallurgy and Ore Beneficiation" JSC (KZ)
Openalex Percentile: Top 26%
Titanium Alloys Microstructure and Properties
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