Temperature Field Simulation and Experimental Confirmation of Laser Cladding High-Entropy Alloy Coating on Cr12MoV
Abstract
:1. Introduction
2. Materials and Methods
3. Establishment Method of Finite Element Model
- (1)
- The material is isotropic;
- (2)
- During the laser cladding process, both the substrate and powder remain stable without undergoing evaporation, and the volume loss of the material is disregarded;
- (3)
- The shape of the coating is semi-cylindrical and ignores the model fillet and other fine structures;
- (4)
- The powder particles do not affect each other and fully absorb the energy.
3.1. Heat Conduction Equation
3.2. Boundary Conditions
- (1)
- The rigid boundary condition is shown in Equation (3):
- (2)
- The heat transfer boundary condition is shown in Equation (4):
- (3)
- Heat flux boundary condition is shown in Equation (5):
- (4)
- The contact boundary condition, including laser radiation and the air convection generated during the laser cladding process, is shown in Equation (6):
3.3. Heat Source Model
3.4. Thermophysical Parameters of Materials
3.5. Establishment of the Finite Element Model
4. Results and Discussion
4.1. Distribution of Temperature Field under Different Laser Powers
4.2. Distribution of Temperature Field under Power of 1600 W at Different Time
4.3. Macroscopic Morphology of the Coatings under Different Laser Powers
4.4. Phase Composition of the Coatings under Different Laser Powers
4.5. Microstructure of the Cladding Zone under Different Laser Powers
4.6. Hardness Analysis of Al2CrFeNiMo High-Entropy Cladding Layers under Different Laser Power
5. Conclusions
- (1)
- We used the double ellipsoidal heat source to establish a finite element model to simulate the process of laser cladding Al2CrFeNiMo on Cr12MoV. The optimal process parameters are obtained through the simulation, and are the power of 1600 W and the scanning speed of 180 mm/min. The simulated melt pool depth is 1.82 mm under these parameters.
- (2)
- The results of the temperature field simulation showed that the temperature field exhibited a elliptical distribution. The temperature on the horizontal and vertical tracking paths presented a periodic change. The quality of cladding layers was ensured due to the stable heat transfer during the laser cladding process, and the small range of the heat-affected zone.
- (3)
- Al2CrFeNiMo coatings under different powers ranging from1400 W to 1700 W were prepared. It was found that the coating morphology under the laser power of 1600 W was smoother and better than that of other powers. The result of XRD showed that the coatings under different powers were all composed of BCC, and had different degrees of lattice distortion. At the laser power of 1600 W, the lattice distortion value of the coating was the maximum, which was 2.43 × 10−2, and the solid solution strengthening effect was the best.
- (4)
- With the increase in laser power, the microstructure changed from a cellular crystal to equiaxed crystal, and the grain size gradually increased. The microhardness of the coatings is 127~150% higher than that of the substrate (240 HV). The coating with the power of 1600 W has a high microhardness; the highest hardness even reaches to 725 HV, which is 202% higher than that of the substrate.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Elements | C | Si | Mn | Cr | Mo | V | Fe |
---|---|---|---|---|---|---|---|
Mass percentage | 1.4~1.70 | ≤0.4 | ≤0.4 | 11.0~12.5 | 0.4~0.6 | 0.2~0.3 | Bal. |
Element | Al | Cr | Fe | Ni | Mo |
---|---|---|---|---|---|
Mass percentage | 17.05 | 16.43 | 17.65 | 18.55 | 30.32 |
Power (P) | 1400 W | 1500 W | 1600 W | 1700 W |
---|---|---|---|---|
2θ (°) | 43.537 | 43.406 | 43.408 | 43.592 |
Lattice constant (Å) | 2.937 | 2.946 | 2.946 | 2.934 |
Lattice distortion | 2.12 × 10−2 | 2.43 × 10−2 | 2.43 × 10−2 | 2.02 × 10−2 |
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Gao, Y.; Jiang, S.; Tong, Y.; Bai, S.; Lu, P. Temperature Field Simulation and Experimental Confirmation of Laser Cladding High-Entropy Alloy Coating on Cr12MoV. Processes 2024, 12, 257. https://doi.org/10.3390/pr12020257
Gao Y, Jiang S, Tong Y, Bai S, Lu P. Temperature Field Simulation and Experimental Confirmation of Laser Cladding High-Entropy Alloy Coating on Cr12MoV. Processes. 2024; 12(2):257. https://doi.org/10.3390/pr12020257
Chicago/Turabian StyleGao, Yali, Shan Jiang, Yan Tong, Sicheng Bai, and Pengyong Lu. 2024. "Temperature Field Simulation and Experimental Confirmation of Laser Cladding High-Entropy Alloy Coating on Cr12MoV" Processes 12, no. 2: 257. https://doi.org/10.3390/pr12020257
APA StyleGao, Y., Jiang, S., Tong, Y., Bai, S., & Lu, P. (2024). Temperature Field Simulation and Experimental Confirmation of Laser Cladding High-Entropy Alloy Coating on Cr12MoV. Processes, 12(2), 257. https://doi.org/10.3390/pr12020257