|
|
Kinetics of Dynamic Recrystallization of TB6 Ti-Alloy During Hot Compressive Deformation atTemperatures of β-phase Range |
Delai OUYANG1,Shiqiang LU1,Xia CUI1( ),Yong XU1,Haiming DU2,Huian ZHU1 |
1. School of Materials Science and Engineering, Nanchang Hangkong University, Nanchang 330063, China 2. Jiangxi Normal University, Nanchang 330022, China |
|
Cite this article:
Delai OUYANG,Shiqiang LU,Xia CUI,Yong XU,Haiming DU,Huian ZHU. Kinetics of Dynamic Recrystallization of TB6 Ti-Alloy During Hot Compressive Deformation atTemperatures of β-phase Range. Chinese Journal of Materials Research, 2019, 33(12): 918-926.
|
Abstract Hot compression tests of as-forged Ti-alloy TB6 were conducted via thermecmaster-Z hot simulation test machine through rapid heating the alloy up to the temperature range for the presence of β-phase and then compression tests by strain rates of 0.001~1 s-1 at temperatures in the range of 825~1100℃, while the dynamic recrystallization (DRX) volume fraction were acquired by processing the collected rheological data during compression deformation with work hardening rate approach, then the kinetics of DRX of the alloy deformed at β-phase temperature was studied. The results show that the stress increases with the decrease of deformation temperature or the increase of strain rate, and the stress-strain curves present the type of DRX. With the decrease of strain rate and the increase of deformation temperature, the DRX volume fraction and the grain size of dynamic recrystallization increase. The DRX grain coarsening is observed for the alloy deformed at temperatures above 950℃ and strain rates below 0.001 s-1. The DRX kinetics curves possess three typical stages: slow increase-fast increase-slow increase, showing a typical "S" type characteristic. Furthermore, the strain corresponding to the presence of 50% DRX volume fraction was determined and the relevant DRX kinetics model of TB6 Ti-alloy is established.
|
Received: 04 July 2019
|
|
Fund: National Natural Science Foundation of China(51761029);National Natural Science Foundation of China(51864035) |
[1] | Kapoor R, Reddy G B, Sarkar A. Discontinuous dynamic recrystallization in α-Zr [J]. Mater. Sci. Eng., A, 2018, 718: 104 | [2] | Liu J, Wang X, Liu J, et al. Hot deformation and dynamic recrystallization behavior of Cu-3Ti-3Ni-0.5Si alloy [J]. J. Alloys Compd., 2019, 782: 224 | [3] | Nicola? A, Fiorucci G, Franchet J M, et al. Influence of strain rate on subsolvus dynamic and post-dynamic recrystallization kinetics of Inconel 718 [J]. Acta Mater., 2019, 174: 406 | [4] | Qu J, Xie X, Bi Z, et al. Hot deformation characteristics and dynamic recrystallization mechanism of GH4730 Ni-based superalloy [J]. J. Alloys Compd., 2019, 785: 918 | [5] | Chen M, Lin Y C, Ma X. The kinetics of dynamic recrystallization of 42CrMo steel [J]. Mater. Sci. Eng., A, 2012, 556: 260 | [6] | Xu Y, Chen C, Zhang X, et al. Dynamic recrystallization kinetics and microstructure evolution of an AZ91D magnesium alloy during hot compression [J]. Mater. Charact., 2018, 145: 39 | [7] | Ma C, Wang G C. Superplastic tensile experiment by the fixed m value method at high-temperature for titanium alloy TB6 [J]. Forging & Stamping Technology, 2016, 41(10): 88 | [7] | (马 超, 王高潮. TB6钛合金定m值法高温超塑性拉伸试验研究 [J]. 锻压技术. 2016, 41(10): 88) | [8] | G?ken J, Fayed S, Skubisz P. Strain-Dependent Damping of Ti-10V-2Fe-3Al at Room Temperature [J]. Acta Phys. Pol., A, 2016, 130(6): 1352 | [9] | Illarionov A G, Trubochkin A V, Shalaev A M, et al. Isothermal Decomposition of β-Solid Solution in Titanium Alloy Ti-10 V-2Fe-3Al [J]. Met. Sci. Heat Treat., 2017, 58(11-12): 674 | [10] | Wu J, Zou S, Zhang Y, et al. Microstructures and mechanical properties of β forging Ti17 alloy under combined laser shock processing and shot peening [J]. Surf. Coat. Tech., 2017, 328: 283 | [11] | Bao R Q, Huang X, Cao C X. Deformation behavior and mechanisms of Ti-1023 alloy [J]. T Nonferr Metal Soc., 2006, 16(2): 274 | [12] | Ouyang D L, Fu M W, Lu S Q. Study on the dynamic recrystallization behavior of Ti-alloy Ti-10V-2Fe-3V in β processing via experiment and simulation [J]. Mater. Sci. Eng., A, 2014, 619(0): 26 | [13] | Ji G, Li Q, Li L. The kinetics of dynamic recrystallization of Cu-0.4Mg alloy [J]. Mater. Sci. Eng., A, 2013, 586: 197 | [14] | Jia D, Sun W, Xu D, et al. Dynamic recrystallization behavior of GH4169G alloy during hot compressive deformation [J]. J. Mater. Sci. Technol., 2019, 35(9): 1851 | [15] | Zhang Y, Liu P, Tian B H, et al. Dynamic recrystallization behavior of Cu-Ni-Si-P alloy [J]. T Mater Heat Treat, 2010, 31(7): 45 | [15] | (张 毅, 刘 平, 田保红等. Cu-Ni-Si-P合金动态再结晶行为 [J]. 材料热处理学报, 2010, 31(7): 45 | [16] | Ouyang D L, Cui X, Lu S Q, et al. Hot compressive deformation behavior and dynamic recrystallization of as-forged titanium alloy TB6 during β process [J]. Chin J Mater Res., 2019, 33(03): 218 | [16] | (欧阳德来, 崔 霞, 鲁世强等. 锻态TB6钛合金β相区压缩变形行为和动态再结晶 [J]. 材料研究学报. 2019, 33(03): 218) | [17] | Prasad G V, Goerdeler M, Gottstein G. Work hardening model based on multiple dislocation densities [J]. Mater. Sci. Eng., A, 2005, 400-401: 231 | [18] | Rollett A D, Kocks U F. A Review of the Stages of Work Hardening [J]. Solid State Phenom., 1993, 35-36(36): 1 | [19] | Wang M, Li Y, Wang W, et al. Quantitative Analysis of Work Hardening and Dynamic Softening Behavior of low carbon alloy Steel Based on the Flow Stress [J]. Mater. Des., 2013, 45: 384 | [20] | Wahabi M E, Cabrera J M, Prado J M. Hot working of two AISI 304 steels: a comparative study [J]. Mater. Sci. Eng., A, 2003, 343(1): 116 |
|
No Suggested Reading articles found! |
|
|
Viewed |
|
|
|
Full text
|
|
|
|
|
Abstract
|
|
|
|
|
Cited |
|
|
|
|
|
Shared |
|
|
|
|
|
Discussed |
|
|
|
|