IP Library Granted Patent US 7,237,597
Granted Patent B2
US 7,237,597 · App. 11/230,535 · Granted Jul 3, 2007

Method and device for continuous casting of metals in a mold

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Quick Facts
Patent No.
US 7,237,597
App. No.
11/230,535
Granted
Jul 3, 2007
Kind
B2
Abstract

A device for continuous or semi-continuous casting of metals, comprising a casting mold ( 1 ) which is open in both ends in the casting direction, means ( 2 ) for supplying melt to the mold ( 1 ), a first electromagnetic induction coil ( 4 ) energized by A.C. current and adapted to induce a stirring motion to the melt ( 7 ) in the mold ( 1 ), and a second electromagnetic induction coil ( 3 ) arranged upstream of the first induction coil ( 4 ) and adapted to control the stirring motion of the melt in the region adjacent to the upper free surface ( 5 ) of the melt. The second induction coil ( 3 ) is arranged to be interchangeably energized by either D.C. or A.C. current. The invention also relates to methods for control of stirring motion in a casting mold ( 1 ).

Claims (15)

1. A method for control of stirring motion in a casting mold for continuous or semi-continuous casting of metals, which mold is open in both ends in a casting direction, melt being supplied to the mold, a stirring motion being induced to the melt in the mold by means of a first electromagnetic induction coil energized by A.C. current, the stirring motion of the melt in a region adjacent to an upper free surface of the melt being controlled by means of a second electromagnetic induction coil arranged upstream of the first induction coil, wherein the second induction coil is selectively energized by either D.C. or A.C. current in accordance with requirements of casting operations; and including providing a mode of operation in which the second induction coil is energized by D.C. current so as to produce a horizontally-directed D.C. magnetic field which induces electromagnetic forces in the melt opposing fluid flow direction, in transversal as well as longitudinal spatial planes of the mold, in the region of the melt adjacent to the upper free surface thereof the magnetic field produced by the second induction coil thereby reducing a velocity of the stirring motion induced in the region of the melt adjacent to the upper free surface thereof by the first induction coil, a velocity of longitudinal flows produced in the melt by the stirring action of the first induction coil, as well as longitudinal flows produced by continuously discharging melt into the mold.

2. A method according to claim 1 , wherein the current to the second induction coil is switched from A.C. to D.C. and vice versa by switching means.

3. A method according to claim 1 wherein the first induction coil is supplied with A.C. current from a first power source, and the second induction coil is selectively supplied with A.C. or D.C. current from a second power source.

4. A method according to claim 3 , wherein the second power source is converted from an A.C. current source into a D.C. current source and vice versa by electronic and programming means.

5. A method for control of stirring motion in a casting mold for continuous or semi-continuous casting of metals, which mold is open in both ends in a casting direction, melt being supplied to the mold, a stirring motion being induced to the melt in the mold by means of a first electromagnetic induction coil energized by A.C. current, the stirring motion of the melt in the region adjacent to an upper free surface of the melt being controlled by means of a second electromagnetic induction coil arranged upstream of the first induction coil, wherein the second induction coil being selectively energized by an AC current or a DC current for providing three different modes of operation, including:

a first mode in which the second induction coil is energized by A.C. current and a rotational direction of a magnetic field produced by the second induction coil coincides with a rotational direction of a magnetic field produced by the first induction coil, the magnetic field produced by the second induction coil thereby enhancing a velocity of the stirring motion induced in the region of the melt adjacent to the upper free surface thereof by the first induction coil, the stirring velocity of the melt in said region being controlled by adjusting the value of the A.C. current supplied to the second induction coil,

a second mode in which the second induction coil is energized by A.C. current and the rotational direction of the magnetic field produced by the second induction coil opposes the rotational direction of the magnetic field produced by the first induction coil, the magnetic field produced by the second induction coil thereby reducing the velocity of the stirring motion induced in the region of the melt adjacent to the upper free surface of the melt by the first induction coil, the stirring velocity of the melt in said region being controlled by adjusting the value of the A.C. current supplied to the second induction coil, and

a third mode in which the second induction coil is energized by D.C. current so as to produce a horizontally-directed D.C. magnetic field which induces electromagnetic forces in the melt opposing the direction of fluid flows, in transversal as well as longitudinal spatial planes of the mold, in the region of the melt adjacent to the upper free surface of the melt, the magnetic field produced by the second induction coil thereby reducing the velocity of the stirring motion induced in the region of the melt adjacent to the upper free surface of the melt by the first induction coil, the velocity of longitudinal flows produced in the melt by the stirring action of the first induction coil as well as longitudinal flows produced by continuously discharging melt into the mold,

the mode of operation being selected depending upon the casting process employed.

6. A method according to claim 5 , wherein the first induction coil is supplied with A.C. current from a first power source, and the second induction coil is selectively supplied with A.C. or D.C. current from a second power source.

7. A method according to claim 6 , wherein the second power source is converted from an A.C. current source into a D.C. current source and vice versa by electronic and programming means.

8. A method according to claim 1 for providing different modes of operation, including

a first mode in which the second induction coil is energized by A.C. current and the rotational direction of the magnetic field produced by the second induction coil coincides with the rotational direction of the magnetic field produced by the first induction coil, the magnetic field produced by the second induction coil thereby enhancing the velocity of the stirring motion induced in the region of the melt adjacent to the upper free surface of the melt by the first induction coil, the stirring velocity of the melt in said region being controlled by adjusting the value of the A.C. current supplied to the second induction coil.

9. A method according to claim 1 for providing different modes of operation, including

a second mode in which the second induction coil is energized by the second A.C. current and the rotational direction of the magnetic field produced by the second induction coil opposes the rotational direction of the magnetic field produced by the first induction coil, the magnetic field produced by the second induction coil thereby reducing the velocity of the stirring motion induced in the region of the melt adjacent to the upper free surface of the melt by the first induction coil, the stirring velocity of the melt in said region being controlled by adjusting the value of the A.C. current supplied to the second induction coil.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 23, 2018
From: ABB AB
To: ABB SCHWEIZ AG
Reel/Frame 045713/0398 →
RELEASE OF SECURITY INTEREST Recorded Sep 29, 2017
From: THE GOVERNOR AND COMPANY OF THE BANK OF IRELAND
To: EVERLAST CLIMBING INDUSTRIES, INC.
Reel/Frame 043744/0676 →