06-Experimental Simulation and Mathematical Modeling of Air Bubble Movement in Slab Caster Mold.pdf
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ISIJ International, Vol. 46 (2006), No. 2, pp. 210–218
Experimental Simulation and Mathematical Modeling of Air
Bubble Movement in Slab Caster Mold
Vikas SINGH,1) S. K. DASH,2) J. S. SUNITHA,1) S. K. AJMANI1) and A. K. DAS1)
1) Tata Steel, Jamshedpur, 831001, India. E-mail: sdash@mech.iitkgp.ernet.in 2) Department of Mechanical Engineering,
IIT Kharagpur, 721302, India.
(Received on March 28, 2005; accepted on November 7, 2005)
Experimental simulation of air bubble movement in a 1/3rd scale model slab caster mold has been done
for parallel, upward and downward port submerged entry nozzle (SEN) with different water flow and air flow
rates in order to study the bubble penetration depth, horizontal dispersion and the air jet angle. It has been
observed that the bubble penetration depth depends more on the flow rate of water rather than that of air.
The bubble penetration depth also depends on the port angle and on the “well” provided on the SEN. Below
a certain critical water flow rate the flow becomes asymmetric in the slab caster mold for a given flow rate
of air. SEN with a well depth may help to avoid bubble entrapment defects in the slab at the cost of higher
surface disturbances on the mold. A mathematical modeling of the air bubble movement in water was also
carried out for the same experimental set up where it was observed that for same air flow rate the bubble
penetration depth was more for higher water flow rate confirming to the experimental findings. The experi-
ence gained from the experiment and mathematical modeling helped to fine tune the parameters at the
caster so that the strike rate of ultra low carbon grade steel could be improved substantially.
KEY WORDS: air bubble movem
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