Fluid Flow in Ladle and Its Effect on Decarburization Rate in RH Degasser.
Yoshiei Kato, Hakaru Nakato, Tetsuya Fujii, Shigeru Ohmiya, Seiji Takatori
Abstract
Open-access reader
Yoshiei Kato, Hakaru Nakato, Tetsuya Fujii, Shigeru Ohmiya, Seiji Takatori
Abstract
Open-access reader
Theoretical and experimental studies were carried out to quantitatively understand the effect of fluid flow on the decarburization reaction rate in an RH degasser.Hydrodynamiccalculations on fluid flow in the ladle were proved reasonable by a cold model experiment.The decarburization model in conjuction with the fluid flow by hydrodynamic calculations in the ladle made it clear that the decarburization rate obtained from this model was faster than that for perfectly mixed flow, and slower than that for plug flow when the same parameters were used for the calculations.Thedecarburization modelenabled us to predict the concentration distribution of carbon in the ladle during an RHtreatment.The maximum carbon content, which was found in the recirculating zone in the ladle, reached about twice the minimumvalue obtained in the region just below the down-leg.No dead zone existed which would disturb the decarburization rate in the process, and it was also made clear that the shape of ladle had liule effect on the decarburization rate.
OpenAlex reports 54 citations for this work. Citation counts describe recorded attention and do not establish research quality.
A contribution statement is not available in the OpenAlex record.
Method details are not available in the OpenAlex metadata.
Findings are not separately available in the OpenAlex metadata.
Limitations are not available in the OpenAlex metadata.
Application details are not available in the OpenAlex metadata.
Theoretical and experimental studies were carried out to quantitatively understand the effect of fluid flow on the decarburization reaction rate in an RH degasser.Hydrodynamiccalculations on fluid flow in the ladle were proved reasonable by a cold model experiment.The decarburization model in conjuction with the fluid flow by hydrodynamic calculations in the ladle made it clear that the decarburization rate obtained from this model was faster than that for perfectly mixed flow, and slower than that for plug flow when the same parameters were used for the calculations.Thedecarburization modelenabled us to predict the concentration distribution of carbon in the ladle during an RHtreatment.The maximum carbon content, which was found in the recirculating zone in the ladle, reached about twice the minimumvalue obtained in the region just below the down-leg.No dead zone existed which would disturb the decarburization rate in the process, and it was also made clear that the shape of ladle had liule effect on the decarburization rate.
Key concepts: Decarburization, Ladle, Metallurgy, Fluid dynamics, Volumetric flow rate, Flow (mathematics), Thermodynamics, Materials science