The pickup of alumina in the mold causes the formation of calcium aluminates. Since there are a variety of different calcium aluminate morphs(each one with a higher melting temp.) over time the mold flux can and will begin to thicken up and the fluid lubrication on the strand mold faces can be interrupted causing surface defects & breakouts. Old timers used to throw Calcium flourides (spar) into the mold to liquify it but each time you do that you also increase the CA content which in turn will eventually thicken back up. Spar is a bad actor in the mold. In order to stay fluid there is a delicate chemical balance between CA & Al.
Showing posts with label mold. Show all posts
Showing posts with label mold. Show all posts
Wednesday, May 23, 2012
Thursday, May 3, 2012
Benefits of using Steel Fibers and Organic Fibers in Refractory Castables and Monolithics
One of the most effective ways of improving the mechanical and thermal properties of refractory castables and other monolithic refractories is adding in suitable proportions of stainless steel fibers and organic fibers to the castable respectively.
Steel Fibers
Steel fiber reinforced refractory castables are very resistant to the tendency of the material to fall apart on thermal cycling. Stainless steel fibers greatly improve the flexural strength of the castable. And this added increase in ductility contributes significantly to the thermal shock and spalling resistance of the material. The fibers generally used are in size varying between 0.1 to 0.4 mm2 in cross-section & 20-40 mm in length. For monolithic SS is used either high chrome or high chrome nickel steels available in the market with different grades. One reason commonly reported that the thermal shock resistance of castables is greatly increased through addition of SS fibers because these fibers act as crack arresters, preventing cracks propagating. This is also possible that the microcracks caused by a mismatch in thermal expansion coefficients of matrix and fibers dissipate energy from larger cracks propagating as a result of thermal stress. However percentage of these fibers added becomes important because of two reasons as it has a direct impact on the fluidity of the castable, then it may also cause mixing difficult due to fiber-balling when added beyond 3% by volume. Another critical factor will be the maximum application temperature for the castable that those fibers present in the castable can resist oxidation (since these fibers can not perform beyond their melting temperature).
Organic Fibers
An effective means for improving the explosive spalling resistance of a castable is to add organic fibers to the formulation. It has been reported that the composition & concentration of fibers are not as important as melting temperature of the fiber, since these fibers after melting increase permeability at certain temp. & thereby reducing the explosive spalling tendency of the castables. The fibers generally used for this purpose are Polypropylene fibers, Polyester staple fibers, etc.
Because of these different advantages it have been found that both organic and SS fiber reinforced refractory castables provide substantial increase in service life and therefore, a considerable reduction in refractory maintenance cost and furnace down-time.
Steel Fibers
Steel fiber reinforced refractory castables are very resistant to the tendency of the material to fall apart on thermal cycling. Stainless steel fibers greatly improve the flexural strength of the castable. And this added increase in ductility contributes significantly to the thermal shock and spalling resistance of the material. The fibers generally used are in size varying between 0.1 to 0.4 mm2 in cross-section & 20-40 mm in length. For monolithic SS is used either high chrome or high chrome nickel steels available in the market with different grades. One reason commonly reported that the thermal shock resistance of castables is greatly increased through addition of SS fibers because these fibers act as crack arresters, preventing cracks propagating. This is also possible that the microcracks caused by a mismatch in thermal expansion coefficients of matrix and fibers dissipate energy from larger cracks propagating as a result of thermal stress. However percentage of these fibers added becomes important because of two reasons as it has a direct impact on the fluidity of the castable, then it may also cause mixing difficult due to fiber-balling when added beyond 3% by volume. Another critical factor will be the maximum application temperature for the castable that those fibers present in the castable can resist oxidation (since these fibers can not perform beyond their melting temperature).
Organic Fibers
An effective means for improving the explosive spalling resistance of a castable is to add organic fibers to the formulation. It has been reported that the composition & concentration of fibers are not as important as melting temperature of the fiber, since these fibers after melting increase permeability at certain temp. & thereby reducing the explosive spalling tendency of the castables. The fibers generally used for this purpose are Polypropylene fibers, Polyester staple fibers, etc.
Because of these different advantages it have been found that both organic and SS fiber reinforced refractory castables provide substantial increase in service life and therefore, a considerable reduction in refractory maintenance cost and furnace down-time.
Monday, April 2, 2012
KT2000 LadleSLAG
The KT500 OnLineMOMS system integrates caster variable inputs to provide a complete monitoring system for process and mechanical/control analysis of the caster. The system consists of:
main control unit with system computer and software;
four compact sensors, which are permanently attached to the mold table;
and high temperature system cables.
TYPICALLY INTEGRATED SIGNALS
• Oscillation speed
• Casting speed
• Mold level
• Tundish temperature
• Tundish slide gate position
• Tundish weight
• Ladle weight
ADVANTAGES
• Monitor real-time casting conditions
• Evaluate variables that effect cast product quality
• Provide early indication of maintenance issues
• Compare noncasting to casting conditions
• Evaluate mold lubrication practices
MEASUREMENTS AND CALCULATIONS
• Up/Down Displacement
• Left/Right Displacement
• Front/Back Displacement
• Residual Displacement
• Phase
• Rise/Fall Ratio
• Low, Medium and High Frequency Vibrations
• Negative Strip Time and Ratio
• Positive Strip Time and Ratio
• Mold Lead
• Friction Index
• Oscillation Mark Depth
Wednesday, August 17, 2011
mold plate wear reasons..
1) Chemistry of cast Steel
4) Mold Taper
5) Wall Thickness
8) Adjustment of Oscillation Unit
9) Width change
2) Mold Flux
3) Casting Speed4) Mold Taper
5) Wall Thickness
6) Cooling conditions (water quality, flow rate,velocity)
7) Adjustment of strand guide8) Adjustment of Oscillation Unit
9) Width change
Subscribe to:
Posts (Atom)