Claims
- 1. In a continuous casting method wherein a stream of molten metal is poured into a casting mold having end walls and side walls that are longer than said end walls, said mold including a nozzle having a discharge opening directed toward at least one of said end walls, the steps which comprise:
- (a) applying to said molten metal magnetic fields which cover substantially the entire lengths of said side walls,
- (b) said fields being effective upon both of said side walls and being spaced above and below said discharge opening, said fields extending continuously along the lengths of said side walls, at locations spaced apart from said nozzle openings.
- 2. The method of claim 1 in which said magnetic fields are produced by continuous magnets positioned adjacent to said side walls.
- 3. The method of claim 2 including the step of during pouring controlling the magnetic flux density of a magnetic field in accordance with casting conditions.
- 4. The method of claim 2, further including the step of controlling the magnetic flux density of one set of magnets to be equal to or less than the magnetic flux density of another set of magnets.
- 5. The method of claim 2 in which said magnets have iron cores and are mounted outside the side walls of said casting mold, and in which the lengths of said iron cores are equal to or greater than the lengths of said side walls of said casting mold.
- 6. In a continuous casting method wherein a stream of molten metal is poured into a casting mold having end walls and side walls that are longer than said end walls, having a discharge directed toward at least one of said end walls; the steps which comprise:
- (a) directing static magnetic fields in a direction and with an influence to reduce the molten metal stream speed to unify the flow profile of said molten metal in the said mold;
- (b) applying to said molten metal spaced-apart magnetic fields which cover substantially the entire width of the casting mold;
- (c) one of said fields being located above said nozzle discharge and another of said fields being located below said nozzle discharge, and both of said fields being substantially uniform across the width of said molten metal in said mold.
- 7. In a continuous casting machine wherein a stream of molten metal is poured into a casting mold through an immersion nozzle having an opening, said mold having end walls and side walls that are longer than said end walls, said stream being directed from said immersion nozzle toward an end wall of said mold, the combination which comprises:
- (a) a plurality of magnets positioned to apply a static magnetic field to modify molten metal stream flow in said mold,
- (b) said magnets being positioned to apply magnetic fields which are as long as or longer than the lengths of said mold side walls, said magnets being located above and below said discharge nozzle opening, and
- (c) said magnets being arranged in relation to said casting mold to provide substantially uniform magnetic fluxes along the lengths of said side walls.
- 8. The continuous casting machine of claim 7 in which magnetic flux density control apparatus is provided for changing the distances between said magnets.
- 9. The continuous casting machine of claim 8 in which said control apparatus includes pivot means connected for controlling the flux densities of said magnets.
- 10. The continuous casting machine of claim 7 in which magnetic flux density control apparatus is provided for changing the distance between magnetic poles.
- 11. In a continuous casting method wherein a stream of molten metal is poured through an immersion nozzle having an outlet port extending into a casting mold, and wherein said stream is acted on by static magnetic fields each having a magnetic flux density to reduce the molten metal stream speed to control the flow profile of molten metal from the nozzle; the improvement which comprises the steps of applying to the molten metal separate static magnetic fields of adjustable strength produced by upper and lower pairs of magnetic poles separated by a distance transverse to the molten metal stream, each pole having a predetermined magnetic field strength and orientation, and wherein one said static magnetic field is an upper magnetic field which covers an area from the meniscus down to a position above the outlet port of the immersion nozzle and which covers substantially the entire width of the casting mold in a direction transverse of the molten metal stream direction, and another static magnetic field covers substantially an area from lower-end line of the casting mold up to a portion below the outlet port of said immersion nozzle, and which also covers substantially the entire width of the casting mold in a direction transverse of the molten metal stream direction and including the step of adjusting the magnetic flux density of the magnetic field across substantially the entire width of the molten metal flow to control the direction of the metal stream exiting from the nozzle in which the magnetic flux density of the upper magnetic pole is controlled to be equal to or less than the magnetic flux density of the lower magnetic pole by changing the distance between each of said pair of upper and lower magnetic poles.
- 12. In a continuous casting method wherein a stream of molten metal is poured by an immersion nozzle having an outlet port extending into a casting mold and wherein said stream is acted on by static magnetic fields to reduce the molten metal stream speed to control the flow profile of molten metal from the nozzle; the improvement which comprises the steps of applying to the molten metal two static magnetic fields of adjustable strength produced by magnetic poles each having a predetermined magnetic field strength and orientation, and wherein said static magnetic field covers an upper magnetic field, an area from meniscus down to a portion which does not include the outlet port of the immersion nozzle and a lower magnetic field, an area from lower-end line of the casting mold up to a portion which does not include the outlet port of said immersion nozzle and also cover the entire width of the casting mold in a direction transverse of the molten metal stream direction and including the step of controlling the magnetic flux density of the magnetic field in accordance with the casting condition wherein a portion of iron core of said upper magnetic pole is replaced with a non-magnetic material to locally reduce magnetic flux density.
- 13. In a continuous casting method wherein a stream of molten metal is poured by an immersion nozzle having an outlet port extending into a casting mold and wherein said stream is acted on by static magnetic fields to reduce the molten metal stream speed to control the flow profile of molten metal from the nozzle; the improvement which comprises the steps of applying to the molten metal two static magnetic fields of adjustable strength produced by magnetic poles each having a predetermined magnetic field strength and orientation, and wherein said static magnetic field covers an upper magnetic field, an area from meniscus down to a portion which does not include the outlet port of the immersion nozzle and a lower magnetic field, an area from lower-end line of the casting mold up to a portion which does not include the outlet port of said immersion nozzle and also cover the entire width of the casting mold in a direction transverse of the molten metal stream direction and including the step of controlling the magnetic flux density of the magnetic field in accordance with the casting condition wherein said magnetic flux density of the upper magnetic pole is controlled by changing the distance between the poles with a cylinder having a pivot as a center.
- 14. The method of claims 11, 12 or 13 in which the distance between the upper and lower magnetic fields is 200 mm.
- 15. In a continuous casting machine wherein a stream of molten metal is poured by an immersion nozzle having an outlet port extending into a casting mold and wherein said stream is acted on by static magnetic fields to reduce the molten metal stream speed to control the flow profile of molten metal from said nozzle; the improvement which comprises providing two magnetic poles which consist of an upper magnetic pole covering an area from the meniscus down to a portion above the outlet port of the immersion nozzle and a lower magnetic pole covering an area from the lower end line of the casting mold up to the outlet port of said immersion nozzle, and are at least as wide as or wider than the minimum width of the cast products, and wherein the magnetic fields are produced by an iron core arranged on a face of the casting mold with mutually opposite polarities in the drawing direction, said iron core being arranged to provide an adjustable uniform magnetic flux across the width of said molten metal and in which magnetic flux density control apparatus is provided for changing the distance between the upper magnetic poles as measured transverse to the strand drawing direction by changing the distance between the poles with a cylinder having a pivot as the center.
- 16. In a continuous casting machine wherein a stream of molten metal is poured by an immersion nozzle having an outlet port extending into a casting mold and wherein said stream is acted on by static magnetic fields to reduce the molten metal stream speed to control the flow profile of molten metal from said nozzle; the improvement which comprises providing two magnetic poles which consist of an upper magnetic pole covering an area from the meniscus down to a portion above the outlet port of the immersion nozzle and a lower magnetic pole covering an area from the lower end line of the casting mold up to the outlet port of said immersion nozzle, and are at least as wide as or wider than the minimum width of the cast products, and wherein the magnetic fields are produced by an iron core arranged on a face of the casting mold with mutually opposite polarities in the drawing direction, said iron core being arranged to provide an adjustable uniform magnetic flux across the width of said molten metal and in which magnetic flux density control apparatus is provided with a portion of iron core of the upper magnetic pole being replaced with a non-magnetic material to locally reduce magnetic flux density.
Priority Claims (2)
Number |
Date |
Country |
Kind |
1-105817 |
Apr 1989 |
JPX |
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1-279958 |
Oct 1989 |
JPX |
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Parent Case Info
This application is a continuation of application Ser. No. 07/991,478 filed Dec. 15, 1992, which is a continuation of application Ser. No. 07/742,094, filed Aug. 2, 1991, which is a continuation of application Ser. No. 07/512,756, filed Apr. 20, 1990 and all abandoned.
US Referenced Citations (2)
Number |
Name |
Date |
Kind |
2743492 |
Easton |
May 1956 |
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4495984 |
Kollbers |
Jan 1985 |
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Foreign Referenced Citations (4)
Number |
Date |
Country |
58-55157 |
Apr 1983 |
JPX |
61-129261 |
Jun 1986 |
JPX |
63-154246 |
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JPX |
64-66052 |
Mar 1989 |
JPX |
Continuations (3)
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Number |
Date |
Country |
Parent |
991478 |
Dec 1992 |
|
Parent |
742094 |
Aug 1991 |
|
Parent |
512756 |
Apr 1990 |
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