Claims
- 1. A device for heating a material, the device comprising:a path for an electromagnetic wave, the path having a first segment and a second segment, the first segment and the second segment connected by a curved segment; the first segment and the second segment each having an opening, the opening to the first segment aligned with the opening to the second segment so that the material can travel through the first segment and the second segment; the second segment comprising a short, the short creating a single standing wave in the first segment and the second segment, the single standing wave comprising a plurality of peaks and a plurality of valleys; and means for moving a movable surface, the movable surface pushing and pulling the plurality of peaks and the plurality of valleys to achieve more uniform heating of the material.
- 2. A device as described in claim 1, wherein the movable surface is the short.
- 3. A device as described in claim 1, wherein the movable surface is a dielectric wheel.
- 4. A device as described in claim 3, wherein the dielectric wheel has a varying thickness.
- 5. A device as described in claim 3, wherein the dielectric wheel has a varying dielectric constant.
- 6. A device as described in claim 3, wherein a motor is attached to the center of the wheel.
- 7. A device as described in claim 6, wherein the center of the wheel is outside the second segment, but a portion of the wheel completely covers a cross section of the second segment.
- 8. A device as described in claim 1, wherein the movable surface is a dielectric structure.
- 9. A device as described in claim 8, wherein the dielectric structure is contained by the path for the electromagnetic wave.
- 10. A device as described in claim 9, wherein the dielectric structure is rotated inside the path for the electromagnetic wave.
- 11. A device as described in claim 10, wherein the dielectric structure has a surface with a long side and a short side, and the dielectric structure is rotated about an axis parallel to the short side so that when the dielectric structure is in a first position, the long side of the surface is parallel to a short side of the path, and when the dielectric structure is in a second position, the long side of the surface is perpendicular to the short side of the path.
- 12. A device as described in claim 10, wherein the dielectric structure has a surface with a long side and a short side, and the dielectric structure is rotated about an axis parallel to the long side so that when the dielectric structure is in a first position, the short side of the surface is perpendicular to a long side of the path, and when the dielectric structure is in a second position, the short side of the surface is parallel to the long side of the path.
- 13. A device as described in claim 12, wherein the axis is perpendicular to a short side of the path.
- 14. A device as described in claim 12, wherein the axis is parallel to a short side of the path and the long side of the path.
- 15. A device for heating a material, the device comprising:a rectangular waveguide that has a short side and a long side, the rectangular waveguide comprising a short, the short creating a single standing wave, the single standing wave comprising a plurality of peaks and a plurality of valleys; a dielectric structure that has a surface that has a short side and a long side, the dielectric structure located inside the waveguide; and a motor, the motor operable to rotate the dielectric structure so as to push and pull the plurality of peaks and the plurality of valleys to achieve more uniform heating of the material.
- 16. A device as described in claim 15, wherein the motor rotates the dielectric structure around an axis parallel to the short side of the dielectric structure so that when the dielectric structure is in a first position, the long side of the dielectric structure is parallel to the short side of the rectangular waveguide, and when the dielectric structure is in a second position, the long side of the dielectric structure is perpendicular to the short side of the rectangular waveguide.
- 17. A device as described in claim 15, wherein the motor rotates the dielectric structure around an axis parallel to the long side of the dielectric structure so that when the dielectric structure is in a first position, the short side of the dielectric structure is perpendicular to a long side of the rectangular waveguide, and when the dielectric structure is in a second position, the short side of the dielectric structure is parallel to the long side of the rectangular waveguide.
- 18. A device as described in claim 17, wherein the axis is perpendicular to a short side of the path.
- 19. A device as described in claim 17, wherein the axis is parallel to a short side of the path and the long side of the path.
- 20. A method for heating a material, the method comprising the steps of:delivering an electromagnetic wave to a waveguide; creating a single standing wave comprising a plurality of peaks and a plurality of valleys; and moving a surface so as to push and pull the plurality of peaks and the plurality of valleys to achieve more uniform heating of the material.
- 21. A method as described in claim 20, wherein the surface is a short.
- 22. A method as described in claim 20, wherein the surface is a dielectric wheel.
- 23. A method as described in claim 22, wherein the dielectric wheel has a varying thickness.
- 24. A method as described in claim 22, wherein the dielectric wheel has a varying dielectric constant.
- 25. A method as described in claim 22, wherein a motor is attached to the center of the wheel.
- 26. A method as described in claim 25, wherein the center of the wheel is outside the waveguide, but a portion of the wheel completely covers a cross section of the waveguide.
- 27. A method as described in claim 20, wherein the surface is a dielectric structure.
- 28. A method as described in claim 27, wherein the dielectric structure is contained by the waveguide.
- 29. A method as described in claim 28, wherein the dielectric structure is rotated inside the waveguide.
- 30. A method as described in claim 29, wherein the dielectric structure has a surface with a long side and a short side, and the dielectric structure is rotated about an axis parallel to the short side so that when the dielectric structure is in a first position, the long side of the surface is parallel to a short side of the path, and when the dielectric structure is in a second position, the long side of the surface is perpendicular to the short side of the path.
- 31. A method as described in claim 29, wherein the dielectric structure has a surface with a long side and a short side, and the dielectric structure is rotated about an axis parallel to the long side so that when the dielectric structure is in a first position, the short side of the surface is perpendicular to a long side of the path, and when the dielectric structure is in a second position, the short side of the surface is parallel to the long side of the path.
- 32. A method as described in claim 31, wherein the axis is perpendicular to a short side of the path.
- 33. A device as described in claim 31, wherein the axis is parallel to a short side of the path and the long side of the path.
Parent Case Info
This application is a divisional of application Ser. No. 09/350,991, filed on Jul. 12, 1999, now U.S. Pat. No. 6,259,077.
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