Claims
- 1. An induction furnace for heating an electrically conductive material, comprising:
a crucible to contain the electrically conductive material; a bottom support structure to support the bottom of the crucible; a magnetic flux concentrator disposed below the bottom support structure; and an at least one induction coil disposed between the bottom support structure and the magnetic flux concentrator, whereby a magnetic field generated by a flow of an ac current through the at least one induction coil penetrates the electrically conductive material to induce an eddy current in the electrically conductive material that heats the electrically conductive material.
- 2. The induction furnace of claim 1 wherein the magnetic flux concentrator comprises a plurality of discrete ferromagnetic elements disposed in a non-electrically conductive material.
- 3. The induction furnace of claim 1 wherein the crucible has a circular bottom and the magnetic flux concentrator comprises an inner central ring element, an outer perimeter ring element, and a plurality of transverse elements, the plurality of transverse elements spaced radially between and connected to the inner central ring element and the outer perimeter ring element whereby the magnetic field passes through at least the openings between the plurality of transverse elements.
- 4. The induction furnace of claim 1 wherein the at least one induction coil comprises:
an at least one active induction coil section, each of the at least one active induction coil section connected to an ac power supply; and an at least one passive induction coil section connected to a capacitor to form a resonant circuit, whereby the magnetic field generated in the at least one active induction coil section magnetically couples with the at least one passive induction coil section to induce a secondary current flow through the at least one passive induction section to generate a secondary magnetic field that penetrates the electrically conductive material to induce an eddy current in the electrically conductive material that heats the electrically conductive material.
- 5. The induction furnace of claim 4 wherein the at least one active induction coil section and the at least one passive induction coil section are disposed interior and exterior to each other.
- 6. The induction furnace of claim 4 wherein the at least one active induction coil section and the at least one passive induction coil section are interspaced with each other.
- 7. The induction furnace of claim 1 further comprising a plenum formed between the magnetic flux concentrator and the bottom support structure for the flow of a cooling medium to cool the at least one induction coil.
- 8. The induction furnace of claim 1 wherein the crucible forms a substantially cylindrical volume for containing the electrically conductive material, the substantially cylindrical volume having a diameter to height ratio in the range of approximately 3:1 to 6:1.
- 9. An induction furnace for heating an electrically conductive material, comprising:
a crucible to contain the electrically conductive material; a bottom support structure to support the bottom of the crucible, the bottom support structure having passages therein for the transmission of an electromagnetic field; a magnetic flux concentrator disposed below the bottom support structure; and an at least one induction coil disposed between the bottom support structure and the magnetic flux concentrator, the at least one induction coil formed from an at least one active coil section and an at least one passive coil section whereby a magnetic field generated by a flow of current through the at least one induction coil penetrates the electrically conductive material to induce an eddy current in the electrically conductive material that heats the electrically conductive material.
- 10. A method of heating an electrically conductive material comprising the steps:
supporting a crucible on a bottom support structure; placing the electrically conductive material in the crucible; generating a magnetic field from the flow of a current through an at least one induction coil disposed below the bottom support structure; directing the magnetic field towards the bottom of the crucible; and magnetically coupling the magnetic field with the electrically conductive material in the crucible to inductively heat the electrically conductive material.
- 11. The method of claim 10 wherein the step of directing the magnetic field towards the bottom of the crucible includes placing a magnetic flux concentrator below the at least one induction coil.
- 12. The method of claim 10 wherein the frequency of the current is adjusted to electromagnetically stir the electrically conductive material.
- 13. The method of claim 10 further comprising the steps of:
inducing a secondary current in an at least one passive coil section of the at least one induction coil by magnetically coupling the at least one passive coil section to an at least one active coil section of the at least one induction coil, the at least one active coil section connected to a source of ac current, the secondary current generating a secondary magnetic field exterior to the at least one passive coil section; and magnetically coupling the secondary magnetic field with the electrically conductive material in the crucible to inductively heat the material.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the benefit of U.S. Provisional Application No. 60/292,679, filed May 22, 2001.
Provisional Applications (1)
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Number |
Date |
Country |
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60292679 |
May 2001 |
US |