Analysis on the Quenching Deformation Characteristics of Light Cast Aluminum Alloy Wheels and Their Control Strategies
Abstract
:1. Introduction
2. Mathematical Model of Multi-Phase Coupled Heat Exchange
3. Establishment and Calculation of Fluid Calculation Domain Model
3.1. Fluid Area Gridding
3.2. Setup of Workbench Model
3.3. Fluid Properties and Boundary Conditions
3.4. Solid Properties and Boundary Conditions
4. Analysis of Simulation Results
4.1. Analysis of Heat Transfer Characteristics of Inflow Flow
4.2. Analysis of Heat Exchange Characteristics on Wheel Surface
4.3. Analysis of Quenching Deformation Mechanism
5. Tests and Measurements
5.1. Introduction to Test Wheel and Heat Treatment Platform
5.2. Wheel Deformation Measurement
5.3. Control Strategy for Wheel Deformation
5.4. Analysis of Structure and Mechanical Properties of Wheels
6. Conclusions
- (1)
- Based on Workbench platform, the immersion quenching process was simulated by multi-physical field coupling, and the change characteristics of physical fields and the heat treatment deformation mechanism during the whole quenching process were revealed.
- (2)
- The deformation characteristics of the inner/outer rim end face are affected by the stiffness of the wheel structure, and the deformation of the inner rim presents the deformation characteristics following with the outer rim. However, affected by the uneven heat exchange of the wheel and internal structure defects, the overall deformation presents the characteristics of double-peak and trough.
- (3)
- The mechanical properties and hardness indexes of each monitoring point of the new graded zone quenching process spraying 15 s and water immersion can meet the automobile factories’ requirements for an aluminum alloy wheel. The maximum reduction of the wheel end deformation is 39.2%, which can be used as a new direction of integrated regulation and control of heat treatment formality.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Nomenclatures
u | The velocity vector of flow field, m/s |
Flux of flow field | |
The source term of the mass conservation equation | |
Γ | Diffusion coefficients of the k-ɛ equations, m2/s |
Thermal conductivity, W/(m·°C) | |
Density, kg/m3 | |
Specific heat capacity, J/(kg·°C) | |
Transient temperature of the object, °C | |
Time, s | |
Heat flux density, W/m2 | |
Normal temperature gradient of the boundary layer | |
Surface temperature of the boundary layer, °C | |
Temperature of the flowing fluid, °C | |
Heat exchange coefficient, W/(m2·°C) |
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Chemical Element | Al | Si | Fe | Cu | Mn | Mg | Zn | Ti | Sr |
---|---|---|---|---|---|---|---|---|---|
Standard | ≥90 | 6.5~7.5 | ≤0.20 | ≤0.10 | ≤0.10 | 0.25~0.45 | ≤0.10 | 0.08~0.20 | 0.008~0.20 |
Measured | 92.7 | 6.73 | 0.11 | 0.004 | 0.002 | 0.278 | 0.005 | 0.115 | 0.001 |
Parameter | Functional Relationship | R-Square |
---|---|---|
Specific heat capacity (J/(kg·°C)) | 873.7 + 0.6764 T − 9.9866 × 10−4 T2 + 1.1926 × 10−6 T3 | 0.99991 |
Density (kg/m3) | 2685.6 − 0.1683 T − 6.3294 × 10−5 T2 | 1 |
Thermal conductivity (W/(m·°C)) | 183.25 + 4.50 × 10−2 T − 2.1161 × 10−4 T2 + 1.5977 ×1 0−7 T3 | 0.99931 |
Poisson’s ratio | 0.3305 + 3.3373 × 10−5 T + 3.7497 × 10−8 T2 | 1 |
Young’s modulus (MPa) | 71,642.9 − 31.7224 T − 2.19 × 10−2 T2 | 1 |
Technics Number | Quenching Processes | Transfer Time/s | Average Deformation/μm | Relative Improvement/% | Numbers of Wheel | Wheel Number |
---|---|---|---|---|---|---|
1 | Water | 25 | 470 | Baseline | 3 | 1#, 2#, 3# |
2 | Spraying 15 s + water | 40 | 275 | 39.2 | 3 | 4#, 5#, 6# |
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Chi, H.; Yan, M.; Xu, Z.; Xiang, P.; An, Z.; Huang, H. Analysis on the Quenching Deformation Characteristics of Light Cast Aluminum Alloy Wheels and Their Control Strategies. Metals 2023, 13, 128. https://doi.org/10.3390/met13010128
Chi H, Yan M, Xu Z, Xiang P, An Z, Huang H. Analysis on the Quenching Deformation Characteristics of Light Cast Aluminum Alloy Wheels and Their Control Strategies. Metals. 2023; 13(1):128. https://doi.org/10.3390/met13010128
Chicago/Turabian StyleChi, Hui, Meng Yan, Zhengqi Xu, Pengfei Xiang, Zijun An, and Huagui Huang. 2023. "Analysis on the Quenching Deformation Characteristics of Light Cast Aluminum Alloy Wheels and Their Control Strategies" Metals 13, no. 1: 128. https://doi.org/10.3390/met13010128
APA StyleChi, H., Yan, M., Xu, Z., Xiang, P., An, Z., & Huang, H. (2023). Analysis on the Quenching Deformation Characteristics of Light Cast Aluminum Alloy Wheels and Their Control Strategies. Metals, 13(1), 128. https://doi.org/10.3390/met13010128