Relationship between Flow Behavior and Microstructure Evolution during Isothermal Compression of near β Titanium Alloy Ti-55531 with Acicular Starting Microstructure
Abstract
:1. Introduction
2. Experimental Details
2.1. Material
2.2. Isothermal Compression
2.3. Metallography and Analysis
3. Results
3.1. Heat-Treated Microstructure
3.2. Flow Behavior
3.3. Microstructure Characterization
3.3.1. Continuous/Discontinuous Yielding
3.3.2. Fragmentation of Acicular α
4. Conclusions
- (1)
- In general, the flow behavior of Ti-55531 with an acicular starting microstructure includes a yielding and a subsequent softening during compression at 750–825 °C with a strain rate of 10−3−1 s−1. Furthermore, the stress decreases with the increase of the temperature and the decrease of the strain rate.
- (2)
- Discontinuous or continuous yielding can be related to the hindrance to the dislocation motion caused by the β grain boundary or α phase at different deformation conditions. At higher temperatures, due to the low α content, the hindrance mainly comes from the β grain boundary. Its discontinuous action including the piling-up and then unpinning of dislocations at the β grain boundary, which leads to discontinuous yielding. At lower temperatures, continuous yielding appears by the continuous hindrance to dislocation motion exerted by the β grain boundary and acicular α together.
- (3)
- The substructures in acicular α are evolved from high-density dislocations or local shear bands, which depend on the orientation relationship between neighboring β and α. Sequentially, the β matrix edges into acicular α along the substructure interface, and then fragments the acicular α gradually. A higher strain rate decreases the deformation time to carry out the fragmentation of acicular α, while a higher temperature decreases the dislocation density in the β matrix via promoting β recovery, which does not benefit the substructure formation and the subsequent fragmentation in acicular α. Therefore, the retardation of acicular fragmentation and the resultant decreased flow softening rate can be observed at higher strain rates and temperatures.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Element | Al | Mo | V | Cr | Zr | Fe | Impurity Elements |
---|---|---|---|---|---|---|---|
wt % | 5.20 | 4.92 | 4.96 | 2.99 | 1.08 | 0.40 | 0.16 |
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Li, S.; Lv, Y.; Zhang, X.; Zhou, K. Relationship between Flow Behavior and Microstructure Evolution during Isothermal Compression of near β Titanium Alloy Ti-55531 with Acicular Starting Microstructure. Metals 2018, 8, 467. https://doi.org/10.3390/met8060467
Li S, Lv Y, Zhang X, Zhou K. Relationship between Flow Behavior and Microstructure Evolution during Isothermal Compression of near β Titanium Alloy Ti-55531 with Acicular Starting Microstructure. Metals. 2018; 8(6):467. https://doi.org/10.3390/met8060467
Chicago/Turabian StyleLi, Shaojun, Yaping Lv, Xiaoyong Zhang, and Kechao Zhou. 2018. "Relationship between Flow Behavior and Microstructure Evolution during Isothermal Compression of near β Titanium Alloy Ti-55531 with Acicular Starting Microstructure" Metals 8, no. 6: 467. https://doi.org/10.3390/met8060467
APA StyleLi, S., Lv, Y., Zhang, X., & Zhou, K. (2018). Relationship between Flow Behavior and Microstructure Evolution during Isothermal Compression of near β Titanium Alloy Ti-55531 with Acicular Starting Microstructure. Metals, 8(6), 467. https://doi.org/10.3390/met8060467