Effect of the Injection Structure on Gas Velocity Distribution in a 3D Vertical Oven
Abstract
:1. Introduction
2. Numerical Model
2.1. Pyshical Model
2.2. Mathematical Model
2.3. Simulation Setup
2.4. Indicated Parameters
3. Results and Discussion
3.1. Wall Temperature Distribution
3.2. Effect of Gas-Feeding Layers
3.3. Effect of the Particle Size
3.4. Effect of Gas Feeding Velocity
3.5. Effect of Gas Feeding Angle
4. Model Validation
5. Preliminary Economic Analysis
5.1. Cost Breakdown
- ✧
- Raw coal washing and screening;
- ✧
- Vertical oven and auxiliary equipment;
- ✧
- Gas purification and air system;
- ✧
- Tar recovery equipment;
- ✧
- Power distribution and control system;
- ✧
- Waste gas and wastewater treatment.
5.2. Potential Income
6. Conclusions
- The number of gas injection layers had a significant effect on the gas velocity distribution in the lower zone but a small impact on the upper zone. In the upper zone, the velocity profile closely resembled the contour of an open–upward parabola with a large range. Compared with one or three injection layers, the distribution of coal particles was more uniform when two injection layers were used.
- The decrease in the particle size led to an increase in the bed resistance, which in turn led to a decrease in the gas velocity in the Y direction in the upper zone. Small particle sizes of 6–15 mm increased the bed resistance and solid fraction standard deviation and made the gas fraction distribution uneven.
- The increased inlet gas velocity could increase the velocity values in the Y direction. The reduction of the gas velocity had no significant effect on the gas distribution uniformity. The simulation results suggested using an angle of 45°, instead of the present angle of 90°, could improve the gas distribution.
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Nomenclature
Pressure (Pa) | |
Gas velocity mixing entropy | |
Velocity (m s−1) | |
Phase fraction | |
Density (kg m−3) | |
Viscosity (Pa s) | |
Standard deviation | |
Subscripts | |
cell | Cell |
g | Gas phase |
m | Mean diameter |
s | Solid phase |
Particle shape factor |
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Items | Unit | Value |
---|---|---|
Oven size (length × width × height) | mm | 15,580 mm × 3600 mm × 8200 mm |
Oven combustion chamber number | / | 14 |
Oven section area | m2 | 56.088 m2 |
Amount of raw coal treated | t/a | 30 × 104 |
Coal diameter | mm | 0–30 |
Residence time | h | 9~11 |
Oven air feeding volume | m3/t | 330 |
Oven coal gas feeding volume | m3/t | 550 |
Pyrolysis temperature | °C | 600~750 |
Raw gas outlet temperature | °C | 60~80 |
Blue-coke outlet temperature | °C | <90 |
Raw gas outlet pressure | pa | −100~150 |
Furnace pressure in middle position | pa | 1200~1800 |
Tar yield | wt% | 6.5 |
Number of Grids | Solid Volume Fraction Mixing Entropy |
---|---|
515,000 | 0.15723 |
825,000 | 0.15766 |
1,425,000 | 0.15794 |
2,193,000 | 0.15793 |
3,046,000 | 0.15802 |
Central Line | Distance from the Bottom H (m) |
---|---|
R1 | 0.75 |
R2 | 0.89 |
R3 | 1.02 |
R4 | 1.09 |
R5 | 1.54 |
R6 | 1.94 |
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Zhou, Q.; Yang, Z.; Zheng, C.; Wei, L.; Li, D.; Fan, X. Effect of the Injection Structure on Gas Velocity Distribution in a 3D Vertical Oven. Coatings 2023, 13, 1707. https://doi.org/10.3390/coatings13101707
Zhou Q, Yang Z, Zheng C, Wei L, Li D, Fan X. Effect of the Injection Structure on Gas Velocity Distribution in a 3D Vertical Oven. Coatings. 2023; 13(10):1707. https://doi.org/10.3390/coatings13101707
Chicago/Turabian StyleZhou, Qiucheng, Zhanyu Yang, Changsong Zheng, Liping Wei, Dong Li, and Xiaoyong Fan. 2023. "Effect of the Injection Structure on Gas Velocity Distribution in a 3D Vertical Oven" Coatings 13, no. 10: 1707. https://doi.org/10.3390/coatings13101707
APA StyleZhou, Q., Yang, Z., Zheng, C., Wei, L., Li, D., & Fan, X. (2023). Effect of the Injection Structure on Gas Velocity Distribution in a 3D Vertical Oven. Coatings, 13(10), 1707. https://doi.org/10.3390/coatings13101707