Numerical Simulation of Multi-Physics Fields in Fused Magnesia Furnace
Abstract
:1. Introduction
- Based on the actual production of fused magnesium oxide, a three-dimensional transient electromagnetic heat flow multi-field coupling model is established to feedback the production state in a furnace.
- The assumption that a furnace is all magnesium oxide in many previous works is removed, and the influence of chemical reactions on temperature distribution is fully considered.
- The frequently used interpolation method is abandoned, and a more accurate two-way coupling method is selected to define the source term of the electromagnetic field equation in the form of user defined functions.
2. Mathematical Model
2.1. Multi-Physics Field Model
2.2. Simulation Assumption
- Under actual conditions, the operation mode of a fused magnesium oxide furnace is intermittent feeding. However, in the model, the calculation domain is initially filled with ore, the furnace gas diffuses upward, and the product diffuses downward; moreover, the cooling process after smelting is not included in the calculation scope.
- Chemical reactions of primary concern are considered, and very few additional reactions are ignored.
- Arc composition is considered to be a mixture of air plasma and magnesium oxide plasma, and its physical parameters obtained from [10].
- Since the mold wall thickness in the fused magnesium oxide furnace is only 3 mm, its physical model is ignored, and the fixed heat flux is replaced.
- Gas products are considered to be incompressible ideal gases.
- Plasma is considered to be a liquid with unique physical properties. Other properties are not taken into account.
3. Simulation Strategy
3.1. Geometry
3.2. Physical Properties
3.3. Boundary Conditions
3.4. Numerical Procedure
4. Results and Discussion
4.1. Model Simplification and Mesh Generation
4.2. Model Validation
4.3. Multi-Physical Field inside the Furnace
4.3.1. Electromagnetic Field Distribution
4.3.2. Arc Temperature Distribution
4.3.3. Reaction Distribution
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
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Parameters | Value |
---|---|
Furnace height | 1.2 m |
Furnace diameter | 1.9 m |
Electrode diameter | 0.2 m |
Electrode length | 1 m |
Electrode insertion depth | 0.5 m |
Wall thickness | 0.003 m |
Reaction | Temperature (K) | A (min−1) | Ea (kj/mol) | Absorb Heat (kj/mol) | |
---|---|---|---|---|---|
1 | MgCO3 = MgO (light burned) + CO2 | >973 | 3.22 × 106 | 79.10 | 100.59 |
2 | MgO (light burned) = MgO (die burned) | 973–2873 | - | - | - |
3 | MgO (die burned) = MgO (fused) | >2873 | - | - | - |
Physical Parameters | Value |
---|---|
Temperature (K) | T |
Density (kg/m3) | 3580 |
Heat capacity [J/(kg·K)] | |
Thermal conductivity [W/(m·K)] | |
Electrical conductivity (S/m) | 19,894.5 |
Temperature (K) | Density (Kg/m3) | Heat Conductivity (W/m·K) | Electric Conductivity (S/m) | Viscosity (Kg/m·s) | Radiation Coefficient (W/sr·m3) | Capacity (J/Kg·K) |
---|---|---|---|---|---|---|
3000 | 105.999 | 0.6 | 19,894.6 | 0.00792 | 7.214 | 131.3 |
5000 | 89.23 | 1.01 | 115,856.3 | 0.0011 | 47.265 | 288.4 |
7000 | 28.26 | 1.44 | 216,795.8 | 0.0012 | 427.977 | 3601.8 |
9000 | 17.39 | 1.51 | 477,875.8 | 0.00065 | 1158.582 | 16,136.5 |
11,000 | 11.89 | 1.74 | 525,808.8 | 0.00049 | 4990.26 | 22,768.5 |
13,000 | 9.00 | 2.15 | 624,092.1 | 0.0004 | 9303.39 | 56,605.7 |
Boundary | Voltage (V) | Magnetic Potential Vector (Vsm−1) | Temperature (K) |
---|---|---|---|
Electrode A | 5000 | ||
Electrode B | 5000 | ||
Electrode C | 5000 | ||
Electrode sidewall | 2300 | ||
Furnace top surface | |||
Furnace sidewall | |||
Furnace bottom |
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Jiang, T.; Zhang, W. Numerical Simulation of Multi-Physics Fields in Fused Magnesia Furnace. Metals 2023, 13, 39. https://doi.org/10.3390/met13010039
Jiang T, Zhang W. Numerical Simulation of Multi-Physics Fields in Fused Magnesia Furnace. Metals. 2023; 13(1):39. https://doi.org/10.3390/met13010039
Chicago/Turabian StyleJiang, Tianchi, and Weijun Zhang. 2023. "Numerical Simulation of Multi-Physics Fields in Fused Magnesia Furnace" Metals 13, no. 1: 39. https://doi.org/10.3390/met13010039
APA StyleJiang, T., & Zhang, W. (2023). Numerical Simulation of Multi-Physics Fields in Fused Magnesia Furnace. Metals, 13(1), 39. https://doi.org/10.3390/met13010039