Claims
- 1. A method of melting and decarburizing an iron carbon melt in an electric arc furnace comprising the steps of:
forming a reaction zone in the iron carbon melt; injecting a flow of high velocity oxidizing gas toward said reaction zone; directing said oxidizing gas flow from an injection point at an injection angle such that the oxidizing gas flow travels along a diagonal path from the injection point to the iron carbon melt; and directing said oxidizing gas flow from the injection point at an injection distance such that the distance along said diagonal path from the injection point to the iron carbon melt is less than the distance along a colinear diagonal path from the side wall of the furnace to the iron carbon melt.
- 2. A method of melting and decarburizing an iron carbon melt in an electric arc furnace as set forth in claim 1 further comprising the steps of:
injecting a flow of high velocity combustion gas toward said reaction zone; directing said combustion gas flow from an injection point at an injection angle such that the combustion gas flow travels along a diagonal path from the injection point to the iron carbon melt; and directing said combustion gas flow from the injection point at an injection distance such that the distance along said diagonal path from the injection point to the iron carbon melt is less than the distance along a colinear diagonal path from the side wall of the furnace to the iron carbon melt.
- 3. A method of melting and decarburizing an iron carbon melt in an electric arc furnace comprising the steps of:
forming a reaction zone in the iron carbon melt; injecting a flow of high velocity combustion gas toward said reaction zone; directing said combustion gas flow from an injection point at an injection angle such that the combustion gas flow travels along a diagonal path from the injection point to the iron carbon melt; directing said combustion gas flow from the injection point at an injection distance such that the distance along said diagonal path from the injection point to the iron carbon melt is less than the distance along a colinear diagonal path from the side wall of the furnace to the iron carbon melt; melting scrap with said combustion gas flow along said diagonal path; injecting a flow of high velocity oxidizing gas toward said reaction zone after the scrap has been melted and an iron carbon melt has formed in said reaction zone; directing said oxidizing gas flow from an injection point at an injection angle such that the oxidizing gas flow travels along a diagonal path from the injection point to the iron carbon melt; and directing said oxidizing gas flow from the injection point at an injection distance such that the distance along said diagonal path from the injection point to the iron carbon melt is less than the distance along a colinear diagonal path from the side wall of the furnace to the iron carbon melt.
- 4. A method of melting and decarburizing an iron carbon melt as set forth in claim 3 wherein:
said injection distance is less than 65″.
- 5. A method of melting and decarburizing an iron carbon melt as set forth in claim 4 wherein:
said injection point is less than 24″ vertically above the sill line of the furnace.
- 6. A method of melting and decarburizing an iron carbon melt as set forth in claim 4 wherein:
said injection point is less than 80% of the vertical distance from the sill line to the 24″ above the sill line.
- 7. A method of melting and decarburizing an iron carbon melt as set forth in claim 4 wherein:
said injection point is less than the horizontal distance from the hot face of the refractory to the side wall.
- 8. A method of melting and decarburizing an iron carbon melt as set forth in claim 4 wherein:
said injection point is less than 80% of the horizontal distance from the hot face of the refractory to the side wall.
- 9. A method of melting and decarburizing an iron carbon melt as set forth in claim 3 wherein:
said injection point is between 0″ and 24″ above the sill line of the furnace.
- 10. A method of melting and decarburizing an iron carbon melt as set forth in claim 3 wherein:
said oxidizing gas is more than 50% oxygen.
- 11. A method of melting and decarburizing an iron carbon melt as set forth in claim 3 wherein:
said oxidizing gas is injected at a sonic or greater velocity.
- 12. A method of metal melting, refining or processing for an iron carbon melt, comprising the following steps:
forming a plurality of reaction zones for the iron carbon melt; and injecting a flow of high velocity oxidizing gas toward each of said reaction zones from an apparatus having a discharge end mounted near the intersection of the sill line and the hot face of the refractory of the furnace.
- 13. A method of metal melting, refining or processing for an iron carbon melt as set forth in claim 12 wherein:
said plurality of reaction zones are evenly distributed around the periphery of the furnace.
- 14. A method of metal melting, refining or processing for an iron carbon melt as set forth in claim 13 further including the step of:
controlling the total flow of oxidizing gas based upon the carbon content of the iron carbon melt.
- 15. A method of metal melting, refining or processing for an iron carbon melt as set forth in claim 13 wherein:
there are four of said reaction zones.
- 16. A method of metal melting, refining or processing for an iron carbon melt as set forth in claim 15 wherein the method is practiced in an electric arc furnace having a slag door defining a 0 degree reference point and wherein:
a first reaction zone is located 0-90 degrees from said reference point; a second reaction zone is located 90-180 degrees from said reference point; a third reaction zone is located 180-270 degrees from said reference point; and a fourth reaction zone is located 270-360 degrees from said reference point.
- 17. A method of metal melting, refining or processing for an iron carbon melt as set forth in claim 13 wherein the method is practiced in an electric arc furnace having at least a melting phase and a refining phase, and wherein said step of injecting further includes:
injecting said flow of oxidizing gas at least partially during the melting phase of the furnace.
- 18. A method of metal melting, refining or processing for an iron carbon melt as set forth in claim 17 wherein said step of injecting further includes:
injecting said flow of oxidizing gas for more than 20% of the melting phase of the furnace.
- 19. A method of metal melting, refining or processing for an iron carbon melt as set forth in claim 17 wherein said step of injecting further includes:
injecting said flow of oxidizing gas for approximately 50% of the melting phase of the furnace.
- 20. A method of metal melting, refining or processing for an iron carbon melt as set forth in claim 17 wherein said step of injecting further includes:
initiating said injecting of the flow of the oxidizing gas when effective decarburization can take place in said reaction zone.
- 21. A method of metal melting, refining or processing for an iron carbon melt as set forth in claim 13 wherein said step of injecting further comprises:
mounting said discharge end of said apparatus at an injection angle which causes said oxidizing gas to penetrate the iron carbon melt.
- 22. A method of metal melting, refining or processing for an iron carbon melt as set forth in claim 21 wherein:
said injection angle is approximately 45 degrees.
- 23. A method of metal melting, refining or processing for an iron carbon melt as set forth in claim 13 wherein said step of injecting further comprises:
mounting said discharge end of said apparatus less than 80% of the horizontal distance from the hot face of the refractory to the side wall.
- 24. A method of metal melting, refining or processing for an iron carbon melt as set forth in claim 13 wherein said step of injecting further comprises:
mounting said discharge end of said apparatus less than 80% of the vertical distance from the sill line to the 24″ above the sill lime.
- 25. A method of metal melting, refining or processing for an iron carbon melt as set forth in claim 13 wherein said step of injecting further comprises:
mounting said discharge end of said apparatus at the intersection of the sill line and the hot face of the refractory of the furnace.
- 26. A method of metal melting, refining or processing for an iron carbon melt as set forth in claim 13 wherein said step of injecting further comprises:
mounting said apparatus in an enclosure.
- 27. A method of metal melting, refining or processing for an iron carbon melt as set forth in claim 26 wherein:
said enclosure protects said apparatus from the conditions inside the furnace.
- 28. A method of metal melting, refining or processing for an iron carbon melt as set forth in claim 27 wherein said enclosure further includes:
means for cooling the enclosure with a fluid.
- 29. A method of metal melting, refining or processing for an iron carbon melt as set forth in claim 27 wherein said enclosure further includes:
means for deflecting scrap away from said apparatus.
- 30. A method of metal melting, refining or processing for an iron carbon melt as set forth in claim 27 wherein said enclosure further includes:
means for forming and retaining a protective slag covering.
- 31. A method of metal melting, refining or processing for an iron carbon melt, as set forth in claim 13 further comprising the step of:
injecting a flow of high velocity combustion gas toward each of said reaction zones from an apparatus having a discharge end mounted near the intersection of the sill line and the hot face of the refractory of the furnace.
- 32. A method of metal melting, refining or processing for an iron carbon melt as set forth in claim 31 wherein the method is practiced in an electric arc furnace having at least a melting phase and a refining phase, and wherein said step of injecting a flow of combustion gas further includes:
injecting said flow of combustion gas at least partially during the melting phase of the furnace.
- 33. A method of metal melting, refining or processing for an iron carbon melt as set forth in claim 32 wherein said step of injecting a flow of combustion gas further includes:
injecting said flow of combustion gas less than 80% of the melting phase of the furnace.
- 34. A method of metal melting, refining or processing for an iron carbon melt as set forth in claim 32 wherein said step of injecting a flow of combustion gas further includes:
injecting said flow of combustion gas approximately 50% of the melting phase of the furnace.
- 35. A method of metal melting, refining or processing for an iron carbon melt as set forth in claim 32 wherein said step of injecting the flow of combustion gas further includes:
said injecting of the flow of the combustion gas ending when effective decarburization can take place in said reaction zone.
- 36. A method of metal melting, refining or processing for an iron carbon melt practiced in an electric arc furnace having at least a melting phase and a refining phase comprising the following steps:
forming a plurality of reaction zones for the iron carbon melt evenly distributed around the periphery of the furnace; providing a plurality of injection apparatus, each associated with one of said reaction zones and each being mounted by a water cooled enclosure so that a discharge end of said apparatus is mounted near the intersection of the sill line and the hot face of the refractory of the furnace and at an injection angle of approximately 45 degrees; injecting a flow of high velocity combustion gas toward each of said reaction zones from said associated apparatus during at least part of the melting phase of the furnace until effective decarburizing can take place; injecting a flow of supersonic oxygen toward each of said reaction zones from said associated apparatus during at least part of the melting phase and refining phase of the furnace until decarburization is complete; and controlling the total flow of supersonic oxygen supplied to said reaction zones based upon the carbon content of the iron carbon melt.
- 37. A method of metal melting, refining or processing for an iron carbon melt, comprising the following steps:
forming a plurality of reaction zones for the iron carbon melt, injecting each reaction zone with a flow of high velocity oxidizing gas; and controlling the total flow of oxidizing gas based upon the carbon content of the iron carbon melt.
- 38. A method of metal melting, refining or processing for an iron carbon melt as set forth in claim 37 wherein said step of controlling further comprises:
turning off one or more of said injections when the iron carbon melt reaches a critical carbon content.
- 39. A method of metal melting, refining or processing for an iron carbon as set forth in claim 37 wherein said step of controlling further comprises:
varying the duty cycle of one or more of said injections when the iron carbon melt reaches a critical carbon content.
- 40. A method of metal melting, refining or processing for an iron carbon melt as set forth in claim 37 wherein said step of controlling further comprises:
varying the flow rate of one or more of said injections when the iron carbon melt reaches a critical carbon content.
- 41. A method of metal melting, refining or processing for an iron carbon melt as set forth in claim 37 wherein said step of controlling further comprises:
turning off one or more of said injections when the iron carbon melt reaches a critical carbon content; and varying the duty cycle of one or more of said injections when the iron carbon melt reaches a critical carbon content.
- 42. A method of metal melting, refining or processing for an iron carbon melt as set forth in claim 37 wherein said step of controlling further comprises:
turning off one or more of said injections when the iron carbon melt reaches a critical carbon content; and varying the flow rate of one or more of said injections when the iron carbon melt reaches a critical carbon content.
- 43. A method of metal melting, refining or processing for an iron carbon melt as set forth in claim 37 wherein said step of controlling further comprising:
turning off one or more of said injections when the iron carbon melt reaches a critical carbon content; varying the duty cycle of one or more of said injections when the iron carbon melt reaches a critical carbon content; and varying the flow rate of one or more of said injections when the iron carbon melt reaches a critical carbon content.
RELATED APPLICATIONS
[0001] This application is a continuation in part of application U.S. Ser. No. 09/502,064 filed Feb. 10, 2000 by Shver, now U.S. Pat. No. ______. The disclosure of U.S. Ser. No: 09/502,064 is hereby incorporated by reference herein.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
09502064 |
Feb 2000 |
US |
Child |
09875153 |
Jun 2001 |
US |