Multi-Physics Coupling Parameter Analysis of TiZrHf Medium Entropy Alloy
Abstract
1. Introduction
2. Materials and Methods
2.1. Experimental Materials
2.2. Experimental System
2.2.1. High Temperature Quasi-Static Compression
2.2.2. Electrical Parameter Measurement
2.2.3. Thermoelectric Experimental System
3. Results
3.1. Mechanical Properties
3.2. Compressive Fracture-Induced Electrical Response Characteristics
3.3. Electrical Properties
3.4. Thermal Property
3.5. Thermoelectric Properties
4. Discussion
4.1. Effect of T on Mechanical Parameters
4.1.1. Quasi-Static Mechanical Properties of TiZrHf
- (1)
- Elastic modulus
- (2)
- The compression strength
4.1.2. Quasi-Static Mechanical Properties of TiZrHfCu0.8
- (1)
- Multilinear mechanical behavior
- (2)
- Quasi-plastic stage
- (3)
- The yield limit
4.1.3. Verification of Mechanical Parameters
4.2. Effect of Temperature/Stress on the Electrical Properties
4.2.1. Relative Dielectric Constant
4.2.2. Resistivity
4.3. Thermal Parameters
4.3.1. Thermal Conductivity
4.3.2. Thermoelectric Coefficient
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| BCC | Body-Centered Cubic |
| FCC | Face-Centered Cubic |
| AC | Alternating Current |
| DSC | Differential Scanning Calorimetry |
| SMA | Shape Memory Alloy |
| CBH | Correlated Barrier Hopping |
| NVAP | Non-Variable Amplitude Pulses |
| IVPA | Inhomogeneous Variable Amplitude Pulses |
| Φ | Diameter |
| H | Height |
| PI | Polyimide |
| T | Temperature |
| Th | Temperature of the Heating Table |
| C | Capacitance |
| R | Resistance |
| LCR | Inductance-Capacitance-Resistance |
| Stress | |
| F | Pressure |
| Ss | Cross Section of Specimen |
| Strain | |
| Change in Calibration Line Distance | |
| L | Initial Distance Between Calibration Lines |
| RLCR | Resistance Measured by LCR |
| R | Resistance of Specimen |
| R0 | Resistance of Air Domain |
| The relation between resistivity and resistance is | |
| ρ0 | Resistivity of Air |
| ρ | Resistivity of Specimen |
| H(σ) | Stress-Related Height of Specimen |
| Sa | Cross-Sectional Areas of the Air |
| CLCR | Capacitance Measured by LCR |
| C | Capacitance of Specimen |
| C0 | Capacitance of Air Domain |
| Vacuum Dielectric Constant | |
| εr | Relative Dielectric Constant of Specimens |
| f | Frequency |
| Average Temperature | |
| Ts | Stable Temperature |
| Temperature Difference | |
| U | Thermoelectric Voltage |
| Temperature Gradient | |
| Heating Rate | |
| A | Yield Strength |
| B | Strain Hardening Constant |
| n | Strain Hardening Exponent |
| Plastic Strain | |
| C | Strain Rate Strengthening Constant |
| Plastic Strain Rate | |
| Reference Strain Rate | |
| Tm | Melting Temperature |
| Tr | Reference Temperature |
| m | Temperature Softening Parameter |
| E | Elastic modulus |
| Compression Strength | |
| WYeoh | Strain Energy Function |
| I | First Invariants of Strain Tensor |
| σs | Yield Limit |
| ωp | Resonance Frequency |
| τ | Relaxation Time of Electron |
| ω | Frequency of the Electromagnetic Wave |
| Initial Ferroelectric Expansion Coefficient | |
| Quantum Vibration Temperature | |
| “effective” Curie Temperature | |
| u(x,t) | Temperature distribution |
| Thermal Conductivity | |
| S | Seebeck Coefficient |
| Sc | Constant part of S |
| k | Heating Rate Related Parameter |
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| Materials | Chemical Formula | D | PDF-# 1 | #d/l 2 | Space Group | a 3 | b 3 | c 3 | Z |
|---|---|---|---|---|---|---|---|---|---|
| TiZrHf | Hf | C | 89-5154 | 5 | Im-3m (299) | 3.500 | 3.500 | 3.500 | 2 |
| TiZrHf | Zr | C | 34-0657 | 10 | Im-3m (229) | 3.545 | 3.545 | 3.545 | 2 |
| TiZrHf | Ti | C | 44-1288 | 9 | Im-3m (229) | 3.306 | 3.306 | 3.306 | 2 |
| TiZrHfCu0.8 | CuZr3 | C | 65-2803 | 28 | P4/mmm (123) | 4.541 | 4.541 | 3.719 | 1 |
| TiZrHfCu0.8 | Hf | C | 70-2820 | 12 | P63/mmc (194) | 3.198 | 3.198 | 5.061 | 2 |
| TiZrHfCu0.8 | CuHf2 | X | 18-0440 | 35 | I4/mmm (139) | 3.170 | 3.170 | 11.133 | 2 |
| TiZrHfCu0.8 | Ti | D | 44-1294 | 17 | P63/mmc (194) | 2.951 | 2.951 | 4.683 | 2 |
| TiZrHfCu0.8 | Zr | D | 05-0665 | 25 | P63/mmc (194) | 3.232 | 3.232 | 5.147 | 2 |
| No. | Specimens | T/°C | No. | Specimens | T/°C |
|---|---|---|---|---|---|
| 1 | TiZrHf | 25 | 5 | TiZrHfCu0.8 | 25 |
| 2 | TiZrHf | 50 | 6 | TiZrHfCu0.8 | 50 |
| 3 | TiZrHf | 75 | 7 | TiZrHfCu0.8 | 75 |
| 4 | TiZrHf | 100 | 8 | TiZrHfCu0.8 | 100 |
| No. | Specimens | Stress/MPa | T/°C |
|---|---|---|---|
| 9 | TiZrHf | 0, 300, 600, 900 | 25, 50, 75, 100 |
| 10 | TiZrHfCu0.8 | 0, 300, 600, 900 | 25, 50, 75, 100 |
| No. | Specimens | Th/°C | No. | Specimens | Th/°C |
|---|---|---|---|---|---|
| 11 | TiZrHf | 50 | 14 | TiZrHfCu0.8 | 50 |
| 12 | TiZrHf | 100 | 15 | TiZrHfCu0.8 | 100 |
| 13 | TiZrHf | 150 | 16 | TiZrHfCu0.8 | 150 |
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Chang, M.; Wang, B.; Chen, C.; Tang, E. Multi-Physics Coupling Parameter Analysis of TiZrHf Medium Entropy Alloy. Metals 2026, 16, 274. https://doi.org/10.3390/met16030274
Chang M, Wang B, Chen C, Tang E. Multi-Physics Coupling Parameter Analysis of TiZrHf Medium Entropy Alloy. Metals. 2026; 16(3):274. https://doi.org/10.3390/met16030274
Chicago/Turabian StyleChang, Mengzhou, Bo Wang, Chuang Chen, and Enling Tang. 2026. "Multi-Physics Coupling Parameter Analysis of TiZrHf Medium Entropy Alloy" Metals 16, no. 3: 274. https://doi.org/10.3390/met16030274
APA StyleChang, M., Wang, B., Chen, C., & Tang, E. (2026). Multi-Physics Coupling Parameter Analysis of TiZrHf Medium Entropy Alloy. Metals, 16(3), 274. https://doi.org/10.3390/met16030274

