Integral inductor-susceptor
An induction heating inductor and perforated susceptor are formed as an integral unit to provide a low cost, physically stable, efficient, and easily cleaned unit.
1. A susceptor for heating work product materials, comprising:
a plate of electrically conductive material having oppositely facing first and second side surfaces and an axis;
a non-conductive coating on the first and second side surfaces of the plate;
electrically conductive first and second strips, the first strip being bonded to the coating on the first side surface of the plate, the second strip being bonded to the coating on the second side surface of the plate, each of the strips extending continuously in turns around the axis;
a first electrical connector tab on of the first side surface and joining one end of the first strip;
a second electrical connector tab on the second side surface and joining one end of the second strip;
a conductive link electrically joining opposite ends of the first and second strips to each other so that an electrical current path extends from first electrical connector tab through the first strip and conductive link and back through the second strip to the second electrical connector tab; and
a plurality of holes in the plate extending from the first side surface to the second side surface.
2. The susceptor according to claim 1 , wherein at least some of the holes extend through the coating and each of the strips.
3. The susceptor according to claim 1 , wherein:
the conductive link extends through one of the holes in the plate.
4. The susceptor according to claim 1 , wherein:
the plate is a flat disc; and
the axis is in a center of the disc perpendicular to each of the side surfaces.
5. The susceptor according to claim 1 , wherein:
the plate is a flat disc having a circular periphery; and
each of the connector tabs is located at the periphery.
6. The susceptor according to claim 1 , wherein:
the plate is a flat disc;
the axis extends through a center of the disc;
a center one of the holes is located on the axis; and
the conductive link extends through the center one of the holes.
7. The susceptor according to claim 1 , wherein:
the plate is a flat disc having a circular periphery;
the axis extends through a center of the disc;
a center one of the holes is located on the axis;
each of the connector tabs is located at the periphery; and
the conductive link extends through the center one of the holes.
8. The susceptor according to claim 1 , wherein each of the strips comprises a copper plating.
9. The susceptor according to claim 1 , wherein:
at least some of the turns of the first strip have widths that differ from others of the turns of the first strip; and
at least some of the turns of the second strip have widths that differ from others of the turns of the second strip.
10. The susceptor according to claim 1 , wherein the plate is formed of sheet steel.
11. The susceptor according to claim 1 , wherein each of the first and second strips extends in a spiral pattern located in a single plane.
12. The susceptor according to claim 1 , wherein the first and second side surfaces of the plate are parallel with each other.
13. The susceptor according to claim 1 , wherein the plate is formed of sheet steel and the first and second strips are formed of copper.
14. A susceptor for heating work product materials, comprising:
a plate of electrically conductive material having a central portion with a central axis, a peripheral portion and oppositely facing first and second side surfaces;
an electrical insulation coating on the first and second side surfaces of the plate;
an electrically conductive first strip plated on the coating on the first side surface of the plate, the first strip having a first terminal end adjacent the periphery on the first side surface and extending continuously in turns around the axis in a spiral pattern from the first terminal end to the central portion of the plate;
an electrically conductive second strip plated on the coating on the second side surface of the plate, the second strip having a second terminal end adjacent the periphery on the second side surface and extending continuously in turns around the axis in a spiral pattern from the second terminal end to the central portion of the plate;
a central hole located on the axis in the central portion of the plate;
a link of electrically conductive material plated on an edge of the central hole and electrically joining the first and second strips so that an electrical current path extends from the first terminal end to the second terminal end; and
a plurality of perforations in the plate extending from the first side surface to the second side surface.
15. The susceptor according to claim 14 , wherein at least some of the perforations extend through the coating and each of the strips.
16. The susceptor according to claim 14 , wherein the plate is flat.
17. The susceptor according to claim 14 , wherein:
at least some of the turns of the first strip have widths that differ from others of the turns of the first strip; and
at least some of the turns of the second strip have widths that differ from others of the turns of the second strip.
18. The susceptor according to claim 14 , further comprising electrical connector tabs at the first and second terminal ends for joining the strips to high frequency electrical power.
19. The susceptor according to claim 14 , wherein the peripheral portion of the plate is circular.
20. A method of melting a work product material, comprising:
applying a non-conductive coating to oppositely-facing first and second side surfaces of a plate of electrically conductive material;
bonding an electrically conductive first strip to the coating on the first side surface of the plate, and bonding an electrically conductive second strip to the coating on the second side surface of the plate, each of the strips extending continuously in turns around an axis of the plate from a terminal end to a linking end;
electrically joining the linking ends of the strips;
providing a plurality of holes in the plate extending from the first side surface to the second side surface;
applying electrical energy to the terminal ends of the first and second strips, creating a magnetic field that heats the plate; and
heating the work product material with the heat from the plate, and causing the work product material to flow through the holes between the first and second side surfaces.