Claims
- 1. A magnetic confining apparatus employing the proximity effect for preventing the escape of molten metal through the open side of a vertically extending gap between two horizontally spaced members and between which said molten metal is located, said apparatus comprising:
- electrically conductive coil means, adjacent the open side of said gap, for directly generating a horizontal magnetic field which extends through the open side of said gap to said molten metal;
- said coil means being sufficiently proximate to said open side of the gap so that said directly generated horizontal magnetic field has a strength sufficient to exert a confining pressure against the molten metal in the gap;
- said coil means having a surface portion facing the open side of said gap;
- magnetic means, associated with said coil means, and comprising means for concentrating the flow of electric current in said surface portion of the coil means which faces the open side of the gap;
- and non-magnetic, electrical conductor means in electrically conductive relation with said surface portion;
- said non-magnetic, electrical conductor means facing said open side of the gap and comprising means sufficiently proximate to said open side of the gap to confine said magnetic field substantially to said open side of the gap.
- 2. An apparatus as recited in claim 1 wherein:
- said open side of the gap lies in a vertical plane;
- and said conductor means is disposed in substantially parallel relation to said open side of the gap.
- 3. An apparatus as recited in claim 2 wherein:
- said coil means has an upper portion and a lower portion;
- and said conductor means occupies substantially the entire area between the upper and lower portions of said coil means.
- 4. An apparatus as recited in claim 1 wherein:
- said magnetic means comprises a low reluctance return path for said directly generated magnetic field which extends through the open side of said gap.
- 5. An apparatus as recited in claim 4 and comprising:
- an electrically conductive shield comprising means for confining that part of said directly generated magnetic field, which is outside of said low reluctance return path, to substantially a space defined on one side by said surface portion of the coil means and on the other side by said molten metal.
- 6. An apparatus as recited in claim 4 wherein said two horizontally disposed members are rotatable rolls having parallel axes and wherein:
- said magnetic means comprises a vertically disposed magnetic member associated with said coil means;
- said coil means comprises a multiplicity of vertically disposed coil turns wrapped around said magnetic member;
- each coil turn comprising a vertically disposed front portion facing said open side of the gap;
- and said non-magnetic conductor means comprises a multiplicity of vertically disposed metal strips each conductively attached to the front portion of a respective coil turn and each facing the open side of the gap;
- each metal strip having a width which narrows downwardly along the vertical dimension of said strip in conformity with a narrowing in the width of said open side of the gap, so that, when current flows through said coil means and said strip, the current density in said strip increases with decreasing strip width.
- 7. An apparatus as recited in claim 6 wherein:
- said magnetic member has a front surface facing the open side of the gap;
- said front portion of each coil turn is located in front of the front surface of the magnetic member;
- each front portion of a coil turn has a pair of sides each covered by a strip of magnetic material extending between (a) the front surface of the magnetic member and (b) the metal strip attached to said front portion of the coil turn, to concentrate the electric current flowing through said front portion on said metal strip.
- 8. An apparatus as recited in claim 7 wherein:
- said coil means comprises a tube through which a cooling fluid can be circulated.
- 9. An apparatus as recited in claim 8 wherein:
- said magnetic member has a rear surface, and a pair of downwardly substantially converging side walls which conform the shape of said member substantially to the shape of said open side of the gap;
- each coil turn has top and bottom portions connected to said front portion of the coil turn;
- the front portion of each coil turn is located in front of the front surface of the magnetic member;
- and a plurality of said coil turns have a rear portion located behind the rear surface of the magnetic member and extending between the bottom portion of that coil turn and the top portion of an adjacent coil turn.
- 10. An apparatus as recited in claim 9 wherein:
- each coil turn has a vertical dimension differing from the vertical dimension of adjacent coil turns and substantially corresponding to the vertical dimension of that part of the magnetic member around which said coil turn is wrapped.
- 11. An apparatus as recited in claim 10 wherein:
- each vertically disposed metal strip is substantially vertically coextensive with the coil front portion to which the strip is conductively attached.
- each strip has a pair of side edges;
- and the side edges of adjacent strips define a space therebetween which is insubstantial.
- 12. An apparatus as recited in claim 11 wherein:
- said space between side edges of adjacent strips is electrically insulated.
- 13. An apparatus as recited in claim 8 wherein:
- said magnetic member has a width (a) which varies in a vertical direction along the member and (b) which substantially corresponds to the width of the open side of the gap in the same horizontal plane.
- 14. An apparatus as recited in claim 7 and comprising:
- a refractory member disposed between said conductor means and the open side of the gap.
- 15. An apparatus as recited in claim 14 and comprising:
- a space between said refractory member and said conductor means;
- said space comprising means through which a cooling gas can be passed;
- and means for directing a cooling gas through said space.
- 16. An apparatus as recited in claim 5 wherein:
- said surface portion of the coil means and said electrical conductor means coincide.
- 17. An apparatus as recited in claim 16 wherein:
- said coil means comprises a single-turn coil;
- each of said apart members has (a) a side edge defining an edge of said open side of the gap and (b) a side edge portion adjacent said side edge;
- said conductor means has (a) a pair of horizontally spaced outside edges and (b) an outside edge portion adjacent each outside edge;
- the horizontal distance between the two outside edges on said conductor means is greater than the horizontal distance between said two side edges defining the open side of said gap, at the same vertical location along said gap;
- each outside edge portion on said conductor means is spaced away from a respective side edge portion of a member to define a narrow space therebetween;
- said outside edge portion on the conductor means and said side edge portion on the member comprise means cooperating to provide an increased magnetic flux density in the magnetic field in said narrow space, compared to the flux density of the magnetic field extending across said open side of the gap, thereby preventing molten metal from flowing laterally outwardly through said narrow space.
- 18. An apparatus as recited in claim 17 wherein:
- said molten metal is molten steel;
- and said conductor means and at least said edge portions of said members are composed of copper or copper alloy.
- 19. An apparatus as recited in claim 16 wherein said coil means and said conductor means are each composed of copper or copper base alloy.
- 20. An apparatus as recited in claim 16 wherein said two horizontally spaced members are rotatable rolls having parallel axes and wherein:
- said coil means comprises a single coil turn;
- and said magnetic means comprises a vertically disposed substantially planar, first magnetic member which (a) lies in a plane which is parallel to the axes of said rolls and (b) has a pair of opposite side surfaces;
- said coil turn having a pair of vertically disposed, substantially half-coils each located adjacent a respective opposite side surface of said magnetic member and electrically insulated therefrom;
- each half-coil having a vertically disposed front wall facing the open side of said gap;
- the two front walls of said two half-coils constituting said electrical conductor means
- 21. An apparatus as recited in claim 20 wherein:
- each front wall of a half-coil has a width which narrows downwardly along the vertical dimension of said half-coil in conformity with a narrowing in the width of said open side of the gap, so that, when current flows through said coil, the current density in said front wall increases with decreasing width of the front wall.
- 22. An apparatus as recited in claim 21 wherein:
- the conductor means defined by said two front walls has a shape conforming substantially to the shape of the open side of said gap.
- 23. An apparatus as recited in claim 21 wherein:
- each half-coil has an outside wall, an inside wall and a rear wall each extending between upper and lower ends of the half-coil.
- 24. An apparatus as recited in claim 23 wherein:
- said coil comprises means conductively connecting said two half-coils adjacent an end of each.
- 25. An apparatus as recited in claim 22 or claim 24 wherein:
- said coil has a hollow interior defining a passage through which a cooling fluid may be circulated.
- 26. An apparatus as recited in claim 23 wherein said magnetic means further comprises:
- a second magnetic member having a rear wall, enclosing the rear wall of both half-coils and electrically insulated therefrom, and a pair of spaced-apart sidewalls each enclosing the outside wall of a respective half-coil and electrically insulated therefrom.
- 27. An apparatus as recited in claim 26 wherein:
- said first magnetic member has a front edge, facing said open side of the gap in substantially the same close proximity thereto as said conductor means, and a rear edge in substantially abutting relation with the rear wall of said second magnetic member;
- each sidewall of said second magnetic member having a front end facing a respective rotatable roll adjacent said peripheral side edge of the roll;
- said first magnetic member and said second magnetic member comprising means cooperating to produce said low reluctance return path.
- 28. An apparatus as recited in claim 27 wherein:
- said shield has a rear wall portion, enclosing the rear wall of said second magnetic member from behind and electrically insulated therefrom, and a pair of sidewall portions each enclosing a respective sidewall of said second magnetic member from the outside and electrically insulated therefrom.
- 29. An apparatus as recited in claim 28 wherein:
- each side wall portion of said shield has an inner surface which (a) is in close proximate relation to the adjacent side wall of said second magnetic member and (b) follows the contour of said adjacent side wall;
- and said rear wall portion of the shield has an inner surface in close proximate relation to the rear wall of said second magnetic member.
- 30. An apparatus as recited in claim 29 wherein:
- said shield has a hollow interior defining a passage through which a cooling fluid can be circulated.
- 31. An apparatus as recited in claim 29 wherein:
- each sidewall of the second magnetic member is in close proximate relation with the outside wall of a respective half-coil and follows the contour of that outside wall.
- 32. An apparatus as recited in claim 31 wherein:
- the conductor means defined by said two front walls has a shape conforming substantially to the shape of the open side of said gap;
- each front wall having a respective outside edge and an outside edge portion adjacent said outside edge.
- 33. An apparatus as recited in claims 27 or 28 wherein said apparatus further comprises:
- a refractory member covering the front edge of said first magnetic member and the front wall of each half-coil.
- 34. An apparatus as recited in claim 33 wherein:
- said refractory member has a pair of opposed side edges each abutting against a respective sidewall of the second magnetic member.
- 35. An apparatus as recited in claim 34 wherein:
- said refractory member has a vertically disposed outside surface; and
- said outside surface and each front end of a sidewall on the second magnetic member lie in substantially the same vertical plane.
- 36. An apparatus as recited in claim 20 wherein:
- said first magnetic member has a lower portion at substantially the same vertical level as the narrowest part of said open side of the gap;
- said lower portion being composed of a plurality of horizontally disposed, vertically layered strips of grain oriented silicon steel.
- 37. An apparatus as recited in claim 16 and comprising:
- means, including the configuration of said conductor means, for increasing the magnetic pressure associated with said magnetic field in conformity with increasing static pressure of the molten metal in said gap.
- 38. An apparatus as recited in claim 16 wherein said two horizontally spaced members are rotatable rolls having parallel axes and peripheral side edges defining the open side of said gap and wherein:
- said coil means comprises a single-turn coil having a pair of vertically disposed, substantially half-coils;
- a first of said half-coils having a vertically disposed front wall facing the open side of said gap and constituting said electrical conductor means;
- the second of said half-coils being located behind said one half-coil and being more remote from said open side of the gap than said one half-coil.
- 39. An apparatus as recited in claim 38 wherein:
- said front wall of said first half-coil has a width which narrows downwardly along the vertical dimension of said half-coil in conformity with a narrowing in the width of said open side of the gap, so that, when current flows through said coil, the current density in said front wall increases with decreasing width of the front wall.
- 40. An apparatus as recited in claim 39 wherein:
- the conductor means defined by said front wall has a shape conforming substantially to the shape of the open side of said gap.
- 41. An apparatus as recited in claim 38 wherein:
- said first half-coil has a pair of side walls and a rear wall each extending between upper and lower ends of the half-coil.
- 42. An apparatus as recited in claim 41 wherein:
- said coil comprises means conductively connecting said two half-coils adjacent an end of each.
- 43. An apparatus as recited in claim 39 or claim 42 wherein:
- at least said first half-coil has a hollow interior defining a passage through which a cooling fluid may be circulated.
- 44. An apparatus as recited in claim 41 wherein said magnetic means comprises:
- a magnetic member having a rear wall, enclosing the rear wall of the first half-coil and electrically insulated therefrom, and a pair of spaced-apart sidewalls each enclosing a respective side wall of the first half-coil and electrically insulated therefrom.
- 45. An apparatus as recited in claim 44 wherein:
- each sidewall of said magnetic member has a front end facing a respective rotatable roll adjacent said peripheral side edge of the roll.
- 46. An apparatus as recited in claim 45 wherein:
- said shield has a rear wall portion, enclosing the rear wall of said magnetic member from behind and electrically insulated therefrom, and a pair of sidewall portions each enclosing a respective sidewall of said magnetic member from the outside and electrically insulated therefrom.
- 47. An apparatus as recited in claim 46 wherein:
- each side wall portion of said shield has an inner surface which (a) is in close proximate relation to the adjacent side wall of said magnetic member and (b) follows the contour of said adjacent side wall;
- and said rear wall portion of the shield has an inner surface in close proximate relation to the rear wall of said magnetic member.
- 48. An apparatus as recited in claim 47 wherein:
- said shield has a hollow interior defining a passage through which a cooling fluid can be circulated.
- 49. An apparatus as recited in claim 47 wherein:
- each sidewall of the magnetic member is in close proximate relation with a respective sidewall of the first half-coil and follows the contour of that sidewall of the first half-coil.
- 50. An apparatus as recited in claim 49 wherein:
- the conductor means defined by the front wall of the first half-coil has a shape conforming substantially to the shape of the open side of said gap.
- 51. An apparatus as recited in claim 45 or claim 46 wherein said apparatus further comprises:
- a refractory member covering the front wall of said first half-coil.
- 52. An apparatus as recited in claim 51 wherein:
- said refractory member has a pair of opposed side edges each abutting against a respective sidewall of the magnetic member.
- 53. An apparatus as recited in claim 52 wherein:
- said refractory member has a vertically disposed outside surface; and
- said outside surface and each front end of a sidewall on the magnetic member lie in substantially the same vertical plane.
- 54. A magnetic confining method employing the proximity effect for preventing the escape of molten metal through the open side of a vertically extending gap between two horizontally spaced members and between which said molten metal is located, said method comprising the steps of:
- directly generating, at a location adjacent the open side of said gap, a horizontal magnetic field which extends through the open side of said gap to said molten metal;
- generating said horizontal magnetic field sufficiently proximate to said open side of the gap so that said directly generated horizontal magnetic field has a strength sufficient to exert a confining pressure against the molten metal in said gap;
- confining said magnetic field to said open side of the gap.; and providing a low reluctance return path, composed of magnetic material, for said directly generated magnetic field which extends through said open side of the gap.
- 55. A method as recited in claim 54 wherein said generating step comprises:
- providing a current-conducting coil adjacent the open side of said gap with a coil surface portion facing said open side of the gap;
- conducting electric current through said coil to directly generate said horizontal magnetic field;
- and concentrating the flow of electric current in that surface portion of the coil which faces the open side of said gap.
- 56. A method as recited in claim 55 and comprising:
- confining that part of said directly generated magnetic field, which is outside of said low reluctance return path, to substantially a space defined on one side by said coil surface portion and on the other side by said molten metal.
- 57. A method as recited in claim 56 and comprising:
- increasing the magnetic pressure associated with said magnetic field in conformity with increasing static pressure of the molten metal in said gap.
- 58. A magnetic confining apparatus for preventing the escape of molten metal through the open side of a vertically extending gap between two horizontally spaced members and between which said molten metal is located, said apparatus comprising:
- electrically conductive coil means, adjacent the open side of said gap, for generating a horizontal magnetic field which extends through the open side of said gap to said molten metal and exerts a confining pressure against the molten metal in the gap;
- said coil means having a surface portion facing the open side of said gap;
- magnetic means, associated with said coil means, and comprising means for concentrating the flow of electric current in said surface portion of the coil means which faces the open side of the gap;
- and surface portion of said coil means comprising non-magnetic, electrical conductor means facing said open side of the gap;
- said non-magnetic, electrical conductor means comprising means sufficiently proximate to said open side of the gap to confine said magnetic field to said open side of the gap.
- 59. An apparatus as recited in claim 58 wherein:
- said open side of the gap lies in a vertical plane;
- and said conductor means is disposed in substantially parallel relation to said open side of the gap.
- 60. An apparatus as recited in claim 58 wherein:
- said magnetic means comprises a low reluctance return path for said directly generated magnetic field which extends through the open side of said gap.
- 61. An apparatus as recited in claim 60 and comprising:
- an electrically conductive shield comprising means for confining that part of said magnetic field, which is outside of said low reluctance return path, to substantially a space defined on one side by said non-magnetic, electrical conductor means and on the other side by said molten metal.
- 62. An apparatus as recited in claim 58 or claim 61 wherein:
- said coil means comprises a single-turn coil;
- each of said apart members has (a) a side edge defining an edge of said open side of the gap and (b) a side edge portion adjacent said side edge;
- said conductor means has (a) a pair of horizontally spaced outside edges and (b) an outside edge portion adjacent each outside edge;
- the horizontal distance between the two outside edges on said conductor means is greater than the horizontal distance between said two side edges defining the open side of said gap, at the same vertical location along said gap;
- each outside edge portion on said conductor means is spaced away from a respective side edge portion of a member to define a narrow space therebetween;
- said outside edge portion on the conductor means and said side edge portion on the member comprise means for cooperating to provide an increased magnetic flux density in the magnetic field in said narrow space, compared to the flux density of the magnetic field extending across said open side of the gap, thereby preventing molten metal from flowing laterally outwardly through said narrow space.
- 63. An apparatus as recited in claim 61 wherein:
- said molten metal is molten steel;
- and said conductor means is composed of copper or copper alloy.
- 64. An apparatus as recited in claim 61 wherein:
- said coil means and said conductor means are each composed of copper or copper base alloy.
- 65. An apparatus as recited in claim 58 or claim 61 and comprising:
- means, including the configuration of said conductor means, for increasing the magnetic pressure associated with said magnetic field in conformity with increasing static pressure of the molten metal in said gap.
- 66. An apparatus as recited in claim 58 or claim 61 wherein said two horizontally spaced members are rotatable rolls having parallel axes and peripheral side edges defining the open side of said gap and wherein:
- said coil means comprises a single-turn coil having a pair of vertically disposed, substantially half-coils;
- a first of said half-coils having a vertically disposed front wall facing the open side of said gap and constituting said electrical conductor means;
- the second of said half-coils being located behind said one half-coil and being more remote from said open side of the gap than said one half-coil.
- 67. An apparatus as recited in claim 66 wherein:
- said front wall of said first half-coil has a width which narrows downwardly along the vertical dimension of said half-coil in conformity with a narrowing in the width of said open side of the gap, so that, when current flows through said coil, the current density in said front wall increases with decreasing width of the front wall.
- 68. An apparatus as recited in claim 67 wherein:
- the conductor means defined by the front wall has a shape conforming substantially to the shape of the open side of said gap.
- 69. An apparatus as recited in claim 66 wherein:
- said first half-coil has a pair of side walls and a rear wall each extending between upper and lower ends of the half-coil.
- 70. An apparatus as recited in claim 69 wherein:
- said coil comprises means conductively connecting said two half-coils adjacent an end of each.
- 71. An apparatus as recited in claim 69 wherein:
- at least said first half-coil has a hollow interior defining a passage through which a cooling fluid may be circulated.
- 72. An apparatus as recited in claim 69 wherein said magnetic means comprises:
- a magnetic member having a rear wall, enclosing the rear wall of the first half-coil and electrically insulated therefrom, and a pair of spaced-apart sidewalls each enclosing a respective side wall of the first half-coil and electrically insulated therefrom.
- 73. An apparatus as recited in claim 72 wherein:
- each sidewall of said magnetic member has a front end facing a respective rotatable roll adjacent said peripheral side edge of the roll.
- 74. An apparatus as recited in claim 73 through its dependency from claim 63 wherein:
- said shield has a rear wall portion, enclosing the rear wall of said magnetic member from behind and electrically insulated therefrom, and a pair of sidewall portions each enclosing a respective sidewall of said magnetic member from the outside and electrically insulated therefrom.
- 75. An apparatus as recited in claim 74 wherein:
- each side wall portion of said shield has an inner surface which (a) is in close proximate relation to the adjacent side wall of said magnetic member and (b) follows the contour of said adjacent side wall;
- and said rear wall portion of the shield has an inner surface in close proximate relation to the rear wall of said magnetic member.
- 76. An apparatus as recited in claim 75 wherein:
- each sidewall of the magnetic member is in close proximate relation with a respective sidewall of the first half-coil and follows the contour of that sidewall of the first half-coil.
- 77. An apparatus as recited in claim 76 wherein:
- the conductor means defined by the front wall of the first half-coil has a shape conforming substantially to the shape of the open side of said gap.
- 78. An apparatus as recited in claim 74 wherein said apparatus further comprises:
- refractory means covering the front wall of said first half-coil.
- 79. A magnetic confining method for preventing the escape of molten metal through the open side of a vertically extending gap between two horizontally spaced members and between which said molten metal is located, said method comprising the steps of:
- providing a current-conducting coil adjacent the open side of said gap, with a surface portion of the coil facing said open side of the gap;
- conducting electric current through said coil to generate a horizontal magnetic field which extends through the open side of said gap to said molten metal and exerts a confining pressure against the molten metal in said gap;
- associating the magnetic means with said coil so as to concentrate the flow of electric current in said surface portion of the coil facing the open side of said gap.
- confining said magnetic field substantially to said open side of the gap;
- and providing a low reluctance return path, composed of magnetic material, for said magnetic field which extends through said open side of the gap.
- 80. A method as recited in claim 79 and comprising:
- confining that part of said magnetic field, which is outside of said low reluctance return path, to substantially a space defined on one side by said surface portion of the coil and on the other side by said molten metal.
- 81. A method as recited in claim 80 and comprising:
- increasing the magnetic pressure associated with said magnetic field in conformity with increasing static pressure of the molten metal in said gap.
Parent Case Info
This application is a continuation of application Ser. No. 07/739,223, filed Aug. 1, 1991, now abandoned.
US Referenced Citations (6)
Foreign Referenced Citations (2)
| Number |
Date |
Country |
| 60-106651 |
Jun 1985 |
JPX |
| 62-104653 |
May 1987 |
JPX |
Non-Patent Literature Citations (3)
| Entry |
| J. S. LaMonte and M. R. Black, "How flux field concentrators improve inductor efficiency," Heat Treating, Jun. 1989 pp. 30-31. |
| "Induction Hardening with a Flux Field Concentrator," Electrical Power Research Institute Technical Application, vol. 1, No. 11, 1987. |
| "Guarantee only from Fluxtrol," an advertisement mailed by Fluxtrol of unknown date. |
Continuations (1)
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Number |
Date |
Country |
| Parent |
739223 |
Aug 1991 |
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