Hot Deformation Mechanisms in AZ31 Magnesium Alloy Extruded at Different Temperatures: Impact of Texture
1. Introduction
2. Experimental Section
3. Results and Analysis
3.1. Initial Microstructure and Texture
3.2. Cast-Homogenized AZ31 Alloy
Material condition | Domain | Domain characteristics | Kinetic parameters | Suggested mechanism | ||
---|---|---|---|---|---|---|
T & range | Peak η at T & | n | Q, kJ/mol | |||
C-H (Near-random Texture) | Domain #1 | 300–450 °C & 0.0003–0.001 s−1 | 38% at 375 °C & 0.0003 s−1 | 4.26 | 131 | DRX/Lattice Diffusion |
Domain #2 | 300–450 °C & 1–10 s−1 | 28% at 400 °C & 10 s−1 | 6.14 | 110 | DRX/Grain Boundary Diffusion | |
Domain #3 | 475–550 °C & 0.0003–0.3 s−1 | 46% at 550 °C & 0.001 s−1 | 3.35 | 190 | DRX/Cross-slip | |
Extruded at 300 °C | Domain #1 | 300–450 °C & 0.001–0.01 s−1 | 34% at 400 °C & 0.001 s−1 | 4.88 | 138 | DRX/Lattice Diffusion |
Domain #2 | 300–450 °C & 1–10 s-1 | 46% at 300 °C & 10 s−1 | 5.26 | 103 | DRX/Grain Boundary Diffusion | |
Domain #3 | 450–550° C & 0.001–0.1 s−1 | 48% at 550 °C & 0.001 s−1 | 3.85 | 184 | DRX/Cross-slip | |
Extruded at 350 °C | Domain #1 | 300–450°C & 0.001–0.01 s−1 | 56% at 375 °C & 0.001 s−1 | 5.33 | 133 | DRX/Lattice Diffusion |
Domain #2 | 300–450 °C & 1–10 s−1 | 42% at 350 °C & 10 s−1 | 5.60 | 105 | DRX/Grain Boundary Diffusion | |
Domain #3 | 500–550 °C & 0.001–0.01 s−1 | 82% at 550 °C & 0.001 s−1 | 4.16 | 160 | DRX/Cross-slip (Superplasticity) | |
Extruded at 450 °C | Domain #1 | 300–550 °C & 0.0003–0.003 s−1 | 44% at 475 °C & 0.0003 s−1 | 4.21 | 137 | DRX/Lattice Diffusion |
Domain #2 | 275–525 °C & 1–10 s−1 | 44% at 400 °C & 10 s−1 | 5.00 | 104 | DRX/Grain Boundary Diffusion | |
Domain #3 | **** ABSENT **** |
3.3. Hot Compression of AZ31Extruded at 300 °C
3.4. Hot Compression of AZ31 Extruded at 350 °C
- (i) Domain #1 occurs in the temperature range 300–450 °C and strain rate range 0.001–0.01 s−1 and has a peak efficiency of about 56% at 375 °C and 0.001 s−1.
- (ii) Domain #2 occurs in the temperature range 300–450 °C and strain rate range 1–10 s−1 and has a peak efficiency of about 42% at 350 °C and 10 s−1.
- (iii) Domain #3 occurs in the temperature range 500–550 °C and strain rate range 0.001–0.01 s−1 and has a peak efficiency of about 82% at 550 °C and 0.001 s−1.
3.5. Hot Compression of AZ31 Extruded at 450 °C
- (i) Domain #1 occurs in the temperature range 300–550 °C and strain rate range 0.0003–0.003 s−1 with a peak efficiency of about 44% located at 475 °C/0.0003 s−1.
- (ii) Domain #2 occurs in the temperature range 275–525 °C and strain rate range 1–10 s−1 with a peak efficiency of about 44% located at 400 °C/10 s−1.
4. Conclusions
- (i) The AZ31 alloy rods exhibited <10 0> fiber texture, the intensity of which increased when extruded at 300 °C and 350 °C but the texture was weakened and <10 0> pole rotated away from the extrusion direction when extruded at 450 °C.
- (ii) The processing maps for AZ31 with near-random texture (cast-homogenized), and rods extruded at 300 °C as well as 350 °C exhibited three DRX domains in the general temperature strain rate ranges of: 300–450 °C and 0.001–0.01 s−1, (2) 300–450 °C and 1–10 s−1, and (3) 450–550 °C and 0.001–0.1 s−1, while the material extruded at 450 °C exhibited only domains #1 and #2 at higher temperatures.
- (iii) In domains #1 and #2, prismatic slip is the dominant process and DRX is controlled by lattice self-diffusion and grain boundary self-diffusion, respectively, while in domain #3, pyramidal slip occurs extensively and DRX is controlled by cross-slip on pyramidal systems.
- (iv) Intense <10 0> fiber texture, as in the rod extruded at 350 °C, will enhance the occurrence of prismatic slip in domains #1 and #2 and promotes pyramidal slip at temperatures >450 °C (domain #3).
- (v) When the texture is weakened and rotated as in the rod extruded at 450 °C, domains #1 and #2 move to higher temperatures due to higher difficulty for the occurrence of prismatic slip, while domain #3 does not occur due to the curtailment of pyramidal slip.
Acknowledgments
Conflict of Interest
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Rao, K.P.; Prasad, Y.V.R.K.; Dzwonczyk, J.; Hort, N.; Kainer, K.U. Hot Deformation Mechanisms in AZ31 Magnesium Alloy Extruded at Different Temperatures: Impact of Texture. Metals 2012, 2, 292-312. https://doi.org/10.3390/met2030292
Rao KP, Prasad YVRK, Dzwonczyk J, Hort N, Kainer KU. Hot Deformation Mechanisms in AZ31 Magnesium Alloy Extruded at Different Temperatures: Impact of Texture. Metals. 2012; 2(3):292-312. https://doi.org/10.3390/met2030292
Chicago/Turabian StyleRao, Kamineni Pitcheswara, Yellapregada Venkata Rama Krishna Prasad, Joanna Dzwonczyk, Norbert Hort, and Karl Ulrich Kainer. 2012. "Hot Deformation Mechanisms in AZ31 Magnesium Alloy Extruded at Different Temperatures: Impact of Texture" Metals 2, no. 3: 292-312. https://doi.org/10.3390/met2030292
APA StyleRao, K. P., Prasad, Y. V. R. K., Dzwonczyk, J., Hort, N., & Kainer, K. U. (2012). Hot Deformation Mechanisms in AZ31 Magnesium Alloy Extruded at Different Temperatures: Impact of Texture. Metals, 2(3), 292-312. https://doi.org/10.3390/met2030292