Effects of Unidirection/Bidirection Torsional Thermomechanical Processes on Grain Boundary Characteristics and Plasticity of Pure Nickel
Abstract
:1. Introduction
2. Materials and Methods
3. Results and Discussion
3.1. Micro GB Characteristics
3.2. Vickers Hardness
3.3. Relationship between Microstructure Characteristics and Plasticity
4. Conclusions
- The SPs, especially Σ3 boundaries, increased and effectively broke the random boundary networks after “torsion and annealing” thermomechanical treatment. Samples with a diameter of 2 mm generally had higher fraction of SPs, larger average grain size and lower hardness than that of the 1 mm diameter sample. The Fsp and average grain size were higher by bidirectional torsion than those by unidirectional method, whereas the hardness was much lower. The bidirectional torsion with small torsional circulation unit (10 r) was the most appropriate way to improve the fraction of SPs.
- Vickers hardness of nickel samples decreased with the increase in the Fsp. That is, there was a good linear correlation between Fsp and hardness. No clear regularity existed between grain size and hardness.
- The plasticization mechanism of thermomechanical treated nickel wires was as follows. On one hand, numerous Σ3 boundaries broke the random boundary network, which was easy to fracture, and hindered the crack initiation and propagation. On the other hand, the Σ3 annealing twin boundaries formed in thermomechanical treatment were stimulated by a [001] dominated orientation distribution which had low TF. Thus, the hardness was reduced and the plasticity of materials was improved.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Diameter [mm] | Positive Torsion Cycles [r] | Reverse Torsion Cycles [r] | Circulation Numbers | Total Cycles [r] | No. |
---|---|---|---|---|---|
1 | 60 | - | 1 | 60 | φ1-Uni-1 |
10 | 10 | 3 | φ1-Bi-10-1 | ||
30 | 30 | 1 | φ1-Bi-30-1 | ||
120 | - | 1 | 120 | φ1-Uni-2 | |
10 | 10 | 6 | φ1-Bi-10-2 | ||
30 | 30 | 2 | φ1-Bi-30-2 | ||
2 | 60 | - | 1 | 60 | φ2-Uni-1 |
10 | 10 | 3 | φ2-Bi-10-1 | ||
30 | 30 | 1 | φ2-Bi-30-1 | ||
120 | - | 1 | 120 | φ2-Uni-2 | |
10 | 10 | 6 | φ2-Bi-10-2 | ||
30 | 30 | 2 | φ2-Bi-30-2 |
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Lin, Y.; Liu, S.; Wu, T.; Wang, G. Effects of Unidirection/Bidirection Torsional Thermomechanical Processes on Grain Boundary Characteristics and Plasticity of Pure Nickel. Materials 2022, 15, 236. https://doi.org/10.3390/ma15010236
Lin Y, Liu S, Wu T, Wang G. Effects of Unidirection/Bidirection Torsional Thermomechanical Processes on Grain Boundary Characteristics and Plasticity of Pure Nickel. Materials. 2022; 15(1):236. https://doi.org/10.3390/ma15010236
Chicago/Turabian StyleLin, Yao, Shan Liu, Tao Wu, and Guangchun Wang. 2022. "Effects of Unidirection/Bidirection Torsional Thermomechanical Processes on Grain Boundary Characteristics and Plasticity of Pure Nickel" Materials 15, no. 1: 236. https://doi.org/10.3390/ma15010236
APA StyleLin, Y., Liu, S., Wu, T., & Wang, G. (2022). Effects of Unidirection/Bidirection Torsional Thermomechanical Processes on Grain Boundary Characteristics and Plasticity of Pure Nickel. Materials, 15(1), 236. https://doi.org/10.3390/ma15010236