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Chinese Journal of Materials Research  2026, Vol. 40 Issue (8): 561-571    DOI: 10.11901/1005.3093.2025.315
SPECIAL TOPiC: TITANIUM ALLOY Current Issue | Archive | Adv Search |
Effect of Drawing Reduction on Strength-ductility of Ultra-high Strength Ti-alloy Bar
HU Ming, WANG Qirui, QIU Jianke(), LEI Xiaofei, ZHANG Jinhu, DONG Limin, YANG Rui
Institute of Metal Research, Chinese Academy of Sciences, Shenyang 110016, China
Cite this article: 

HU Ming, WANG Qirui, QIU Jianke, LEI Xiaofei, ZHANG Jinhu, DONG Limin, YANG Rui. Effect of Drawing Reduction on Strength-ductility of Ultra-high Strength Ti-alloy Bar. Chinese Journal of Materials Research, 2026, 40(8): 561-571.

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Abstract  

The effect of drawing deformation on the microstructure, texture and mechanical properties of ultra-high strength TC10 Ti-alloy bars were investigated. TC10 alloy bars with a diameter of 16.4 mm were warm-drawn to various reductions, followed by annealing and solution-aging treatments, after which microstructure and mechanical properties were characterized. The results indicate that with the increasing drawing deformation, α-grains elongate along the drawing direction and develop a strong <101¯0> fiber texture. Grain refinement plus work-hardening collectively raise strength but reduce plasticity of the Ti-alloy bar. After annealing, recovery and recrystallization occur, leading to an initial strengthening and subsequent weakening of the <101¯0> texture. The strength of the annealed alloy slightly decreases compared to the as-drawn state, while the ductility improves. Solution-aging treatment leads to the precipitation of fine, acicular secondary α-phases, further increasing the strength but reducing the plasticity of Ti-alloy. At a drawing deformation of 59%, the solution-aged alloy exhibits optimal comprehensive properties, achieving a tensile strength of 1402 MPa and an elongation of 11.0%. These findings provide a meaningful reference for determining the drawing process parameters of TC10 alloy bars used in fastener manufacturing.

Key words:  metallic materials      ultra-high strength Ti-alloy      microstructure      texture      mechanical property     
Received:  27 October 2025     
ZTFLH:  TG146.2  
Fund: National Key Research and Development Program of China(2022YFB3708300);Youth Innovation Promotion Association of Chinese Academy of Sciences(2022188)
Corresponding Authors:  QIU Jianke, Tel: (024)23971958, E-mail: jkqiu@imr.ac.cn

URL: 

https://www.cjmr.org/EN/10.11901/1005.3093.2025.315     OR     https://www.cjmr.org/EN/Y2026/V40/I8/561

Pass0123456791112
Reduction04.810.721.827.141.950.859.069.979.184.3
Table 1  Variation in drawing deformation with pass for TC10 alloy bar (%)
Fig.1  SEM images of as-drawn TC10 alloy with different drawing deformations (a) 0%, (b) 21.8%, (c) 41.9%, (d) 59.0%, (e) 84.3%
Fig.2  Orientation maps of α grains in as-drawn TC10 alloy with different drawing deformations (a) 0%, (b) 21.8%, (c) 41.9%, (d) 59.0%, (e) 84.3%
Fig.3  Inverse pole figures of α phase in as-drawn TC10 alloy with different drawing deformations (a) 0%, (b) 21.8%, (c) 41.9%, (d) 59.0%, (e) 84.3%
Fig.4  Mechanical properties of as-drawn TC10 alloy with different drawing deformations
Fig.5  SEM images of annealed TC10 alloy with different drawing deformations (a) 0%, (b) 21.8%, (c) 41.9%, (d) 59.0%, (e) 84.3%
Fig.6  Orientation maps of α grains in annealed TC10 alloy with different drawing deformations (a) 0%, (b) 21.8%, (c) 41.9%, (d) 59.0%, (e) 84.3%
Fig.7  Inverse pole figures of α phase in annealed TC10 alloy with different drawing deformations (a) 0%, (b) 21.8%, (c) 41.9%, (d) 59.0%, (e) 84.3%
Fig.8  Mechanical properties of TC10 alloy with different drawing deformations after annealing
Fig.9  SEM images of solution-treated and aged TC10 alloy with different drawing deformations (a) 0%, (b) 21.8%, (c) 41.9%, (d) 59.0%, (e) 84.3%
Fig.10  Orientation maps of α grains in solution-treated and aged TC10 alloy with different drawing deformations (a) 0%, (b) 21.8%, (c) 41.9%, (d) 59.0%, (e) 84.3%
Fig.11  Inverse pole figures of α phase in solution-treated and aged TC10 alloy with different drawing deformations (a) 0%, (b) 21.8%, (c) 41.9%, (d) 59.0%, (e) 84.3%
Fig.12  Mechanical properties of solution-treated and aged TC10 alloy with different drawing deformations
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