Acta Metallurgica Sinica (English Letters) ›› 2018, Vol. 31 ›› Issue (12): 1317-1326.DOI: 10.1007/s40195-018-0808-3
• Orginal Article • Previous Articles Next Articles
Xiao-Wei Zhu1,2, De-Wei Li3, Chun-Lei Wu1,2, Katsukiyo Marukawa1,2, Qiang Wang1()
Received:
2018-06-01
Revised:
2018-08-07
Online:
2018-12-10
Published:
2018-12-18
Xiao-Wei Zhu, De-Wei Li, Chun-Lei Wu, Katsukiyo Marukawa, Qiang Wang. Structural Optimization of Electromagnetic Swirling Flow in Nozzle of Slab Continuous Casting[J]. Acta Metallurgica Sinica (English Letters), 2018, 31(12): 1317-1326.
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Fig. 1 Geometric model including an SEN, a mold and an electromagnetic swirling flow generator used in the simulation: a wide face side view, b narrow face side view, c vertical view (unit: mm)
Process parameters | Value |
---|---|
Casting speed | 1.52 m/min |
Domain width | 1320 mm |
Domain thickness | 230 mm |
Domain length | 3000 mm |
SEN depth | 170 mm |
ρ | 7020 kg/m3 |
ρ slag | 3000 kg/m3 |
\( \mu \) | 0.0062 Pa s |
Specific heat capacity | 680 J/(kg K) |
Thermal conductivity | 26 W/(m K) |
Current intensity | 250 A |
Current frequency | 50 Hz |
Temperature of inlet | 1550 °C |
Temperature of wall | 1525 °C |
Table 1 Simulation parameters
Process parameters | Value |
---|---|
Casting speed | 1.52 m/min |
Domain width | 1320 mm |
Domain thickness | 230 mm |
Domain length | 3000 mm |
SEN depth | 170 mm |
ρ | 7020 kg/m3 |
ρ slag | 3000 kg/m3 |
\( \mu \) | 0.0062 Pa s |
Specific heat capacity | 680 J/(kg K) |
Thermal conductivity | 26 W/(m K) |
Current intensity | 250 A |
Current frequency | 50 Hz |
Temperature of inlet | 1550 °C |
Temperature of wall | 1525 °C |
Fig. 4 Flow field in vertical section of the nozzle with EMSFN: a schematic of mechanical swirling flow nozzle [24], b schematic of EMSFN; c flow field in vertical section with EMSFN
Fig. 7 Flow field of the molten steel in the SEN with and without swirling: a without swirling flow, b with swirling flow, c distribution of tangential velocity in middle section of EMSFN device, d wall shear stress distribution of nozzle with swirling flow
Fig. 11 Flow field in the mold: a without swirling flow (front view), b without swirling flow (top view), c with swirling flow (front view), d with swirling flow (top view)
Fig. 13 Distribution of wall heat flux in wide and narrow surfaces: a without swirling flow and no nozzle rotation, b with swirling flow and no nozzle rotation, c with swirling flow and nozzle rotation
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