Effects of Quasi-Static Strain Rate and Temperature on the Microstructural Features of Post-Processed Microstructures of Laser Powder Bed Fusion Ti6Al4V Alloy
Abstract
:1. Introduction
2. Materials and Methods
2.1. Production, Preparation, and Investigation of Ti6Al4V(ELI) Test Samples with Different Microstructures
2.2. Low-Strain-Rate Compression Tests at Ambient Temperature
2.3. Low-Strain-Rate Compression Testing at Elevated Temperatures
3. Results and Discussion
3.1. Microstructures
3.2. Flow Properties at Different Strain Rates and Temperatures
3.3. Strain Hardening
3.4. Analysis of Deformed Surfaces
3.4.1. Deformed Surfaces of Samples Tested at Ambient Temperature (25 °C)
3.4.2. Deformed Surfaces of Samples Tested at 200 °C
3.4.3. Deformed Surfaces of Samples Tested at 500 °C
4. Conclusions
- ▪
- The heat treatment of LPBF Ti6Al4V(ELI) at temperatures near the α→β transformation temperature leads to the growth of α-laths and therefore the coarsening of the microstructure. The heat treatment of this alloy above the α→β transformation temperature, followed by furnace cooling, results in the formation of typical Widmanstätten microstructures characterised by colonies consisting of several parallel α-laths.
- ▪
- The α-phase is dominant in the annealed microstructures of LPBF Ti6Al4V(ELI). However, the volume fraction of the β-phase increases with increasing heat treatment temperature.
- ▪
- The flow stresses in different forms of LPBF Ti6Al4V(ELI) generally increase with increasing strain rate and decrease with increasing test temperatures. However, the effects of strain rate are comparatively low.
- ▪
- The yield and flow stresses are dependent on the thickness of the α-laths, and it is worth noting here that the microstructure of LPBF Ti6Al4V(ELI) with fine α-laths (sample C) recorded the highest values of these properties at all test conditions. While both the Hall–Petch effect and the presence of LAGBs contribute to the strengthening of materials, the effects of grain size (the Hall–Petch effect) outweigh those of LAGBs in the manner in which they increase the yield and flow stresses in the LPBF Ti6Al4V (ELI) alloy.
- ▪
- The strain hardening rate is higher for finer microstructures of the LPBF Ti6Al4V (ELI) alloy.
- ▪
- An increase in test temperature decreases the strain hardening rate in the LPBF Ti6Al4V (ELI) alloy.
- ▪
- The deformation of LPBF Ti6Al4V(ELI) is generally characterised by the formation of ASBs. Flow stress localization for this alloy at quasi-static strain rates occurs at higher plastic strains for tests conducted at high temperatures.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Appendix A
xavg = mean ([x1 x2], 2); | % assuming xs are column vectors of the same size. | |
Initializing values of stress as (y1, y2, y3); | ||
y1avg= interp1(x1, y1, xavg); | % computed and interpolated to obtain the average of y (stress) for the value of xavg. | |
y2avg = interp1(x2, y2, xavg); | ||
y3avg = interp1(x3, y3, xavg); | ||
Yavg = mean (y1avg y2avg y3avg], 2); | % assuming yavgs are column vectors of the same size. |
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Samples | Temperature (°C) | Residence Time (h) | Cooling Rate (CC) (°C/min) |
---|---|---|---|
C | 800 | 2.5 | 10 |
D | 950 followed by 750 | 2.5 at 950 °C, followed by 2 h at 750 °C | 19, followed by 6 |
E | 1020 | 2.5 h | 17 |
Test Strain Rates | Test Temperatures | No. of Specimens | Total No. of Specimens | Testing Machine |
---|---|---|---|---|
25 °C | 0.1 s−1, 0.005 s−1, and 0.001 s−1 | 3 specimens at each strain rate | 9 | UTM |
200 °C | 9 | Gleeble machine | ||
500 °C | 9 | Gleeble machine |
Samples | Strain Rate (s−1) | 25 °C | 200 °C | 500 °C | |||
---|---|---|---|---|---|---|---|
σs (MPa) | σucs (MPa) | σs (MPa) | σucs (MPa) | σs (MPa) | σucs (MPa) | ||
C | 0.1 | 1164 | 1237 | 1011 | 1114 | 738 | 842 |
0.005 | 1133 | 1220 | 968 | 1132 | 738 | 819 | |
0.001 | 1040 | 1177 | 956 | 1132 | 738 | 816 | |
D | 0.1 | 995 | 1146 | 842 | 1076 | 608 | 796 |
0.005 | 969 | 1145 | 841 | 1074 | 575 | 724 | |
0.001 | 935 | 1145 | 794 | 1024 | 575 | 700 | |
E | 0.1 | 946 | 1190 | 797 | 1027 | 526 | 773 |
0.005 | 940 | 1184 | 740 | 1011 | 517 | 726 | |
0.001 | 903 | 1184 | 740 | 967 | 517 | 726 |
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Muiruri, A.; Maringa, M.; du Preez, W. Effects of Quasi-Static Strain Rate and Temperature on the Microstructural Features of Post-Processed Microstructures of Laser Powder Bed Fusion Ti6Al4V Alloy. Appl. Sci. 2024, 14, 4261. https://doi.org/10.3390/app14104261
Muiruri A, Maringa M, du Preez W. Effects of Quasi-Static Strain Rate and Temperature on the Microstructural Features of Post-Processed Microstructures of Laser Powder Bed Fusion Ti6Al4V Alloy. Applied Sciences. 2024; 14(10):4261. https://doi.org/10.3390/app14104261
Chicago/Turabian StyleMuiruri, Amos, Maina Maringa, and Willie du Preez. 2024. "Effects of Quasi-Static Strain Rate and Temperature on the Microstructural Features of Post-Processed Microstructures of Laser Powder Bed Fusion Ti6Al4V Alloy" Applied Sciences 14, no. 10: 4261. https://doi.org/10.3390/app14104261