A Study on the Heat Transfer Characteristics of Steel Plate in the Matrix Laminar Cooling Process
Abstract
:1. Introduction
2. Experiment
2.1. Experimental Raw Material
2.2. Experimental Apparatus
2.3. Experimental Method
3. Experimental Results and Analysis
3.1. The Rule of Temperature Changing with Time at the Tp Position in the Whole Cooling Process
3.2. The Temperature Change with Time at Other Positions in the Whole Cooling Process
4. Solution of Temperature and Integrated Convection Heat Transfer at the Center of the Surface by TSFM
4.1. Solution of Temperature at the Center of the Laminar Cooling Surface
- (1)
- The temperature distribution of the steel plate is mainly along its thickness direction, so the cooling process is simplified as a one-dimensional unsteady heat transfer process, that is, from Tp to the center of the steel plate surface, the thickness is 1 mm;
- (2)
- The time and space are dispersed from the Tp position to the center of the steel plate surface. The time step is ∆t = 0.5 s according to the thermocouple response time. The calculation time is 12.5–77 s, i.e., the laminar spray cooling process, yielding N = 54/∆t = 109;
- (3)
- The heat transfer process of the steel plate includes only the heat conduction and the surface convection heat transfer, ignoring the radiation heat transfer;
- (4)
- There is no internal heat source;
- (5)
- The bottom of Tp is filled with cotton, which can be considered as insulation. The heat is transmitted along the direction perpendicular to the upper surface, so the temperature change at each time step is caused by the temperature difference in the center of the surface, namely:
- (1)
- The heat transfer process of the steel plate includes only the heat conduction and the surface convection heat transfer, ignoring the radiation heat transfer;
- (2)
- There is no internal heat source;
4.2. Solution of the Integrated Convection Heat Transfer at the Center of the Laminar Cooling Surface
4.3. Solution of the Temperature and the Integrated Convection Heat Transfer Coefficient at Other Positions of the Laminar Cooling Surface
4.4. Verification of the Calculation Results
4.4.1. Verification Using SFM
4.4.2. Verification Using FDM
5. Conclusions
- (1)
- At the beginning of water cooling, the temperature of the measuring point dropped sharply, with a drop rate of 8% and a drop multiplying power of 36%; at the stage of air cooling, the temperature of the measuring point ascended, with an increase of 35%, showing the phenomenon of “re-reddening”.
- (2)
- In the laminar cooling process of the hot-rolled steel plate, the surface temperature and the integrated convection heat transfer coefficient of the surface exhibited non-linear behavior with time. When the cooling time was 12.5–14 s, the surface temperature decreased sharply, while the integrated convection heat transfer coefficient increased periodically with time. When the time was more than 14 s, the surface temperature dropping rate decreased, and the integrated convection heat transfer coefficient declined periodically, finally approaching slight changes;
- (3)
- The SFM was used to verify the calculated results. The relative average errors of the surface temperature and the comprehensive convective heat transfer coefficient were 0.39 and 0.18%, respectively, which proved that the TSFM was a successful approach.
- (4)
- The FDM was used to verify the correctness of the calculated results indirectly. The results show that when the boundary conditions calculated by TSFM were brought back to the governing equation for solving, the calculated results were in good agreement with the experimental results.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Conflicts of Interest
References
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Types | Process Parameters | Fluid Properties | Steel Plate Properties | Environmental Properties |
---|---|---|---|---|
Nozzle types [7] | Thermal properties of fluid [8] | Thermal properties of steel plate [9] | Air properties [10] | |
Nozzle height [11] | Fluid viscosity [12] | Surface roughness [13] | ||
Nozzle caliber [14] | Surface tension [15] | Undercooling [16] | ||
Jet volocity [17] | Surfactant [18] | |||
Nozzle angle [19] | Latent heat of vaporization [20] | |||
Jet flow rate [21] | ||||
Fluid temperature [22] | ||||
Droplet size [23] |
Experimental Condition | Water Temperature | Nozzle Height | Nozzle Diameter | Nozzle Water Flow | Steel Plate Speed |
---|---|---|---|---|---|
Case1 | 25 °C | 465 mm | 3 mm | 0.125 m3/h | 3 m/min |
Experimental Parameter | Uncertainty |
---|---|
Thermocouple response time/s | ±0.01 |
Plate speed/m/min | ±0.03 |
Water temperture/°C | ±0.5 |
Nozzle height/mm | ±0.1 |
Water flow/m3/h | ±0.001 |
Thermocouple accuracy/°C | ±0.01 |
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Xu, J.; Chen, G.; Bao, X.; He, X.; Duan, Q. A Study on the Heat Transfer Characteristics of Steel Plate in the Matrix Laminar Cooling Process. Materials 2021, 14, 5680. https://doi.org/10.3390/ma14195680
Xu J, Chen G, Bao X, He X, Duan Q. A Study on the Heat Transfer Characteristics of Steel Plate in the Matrix Laminar Cooling Process. Materials. 2021; 14(19):5680. https://doi.org/10.3390/ma14195680
Chicago/Turabian StyleXu, Jing, Guang Chen, Xiangjun Bao, Xin He, and Qingyue Duan. 2021. "A Study on the Heat Transfer Characteristics of Steel Plate in the Matrix Laminar Cooling Process" Materials 14, no. 19: 5680. https://doi.org/10.3390/ma14195680
APA StyleXu, J., Chen, G., Bao, X., He, X., & Duan, Q. (2021). A Study on the Heat Transfer Characteristics of Steel Plate in the Matrix Laminar Cooling Process. Materials, 14(19), 5680. https://doi.org/10.3390/ma14195680