Claims
- 1. A method of forming a metal halide discharge tube comprising:
arranging a tubular body in an essentially vertical orientation; disposing a first loose-fit T-plug having a cylindrical portion and an annular flange in an upper open end of the tubular body so that the cylindrical portion of the first loose-fit T-plug is disposed within the open end of the tubular body in a contact-free, spaced relation with an inner wall of the tubular body and with the annular flange seating against an annular top end edge surface of the tubular body; and firing the tubular body and the first loose-fit T-plug to shrink fit the tubular body and the loose-fit T-plug to interfuse the loose-fit T-plug with the upper end of the tubular body in a manner which results in a monolithic body.
- 2. A method as set forth in claim 1, further comprising using the loose-fit T-plug as a thermal buffer to obviate stress being induced in the unitary body by the firing.
- 3. A method as set forth in claim 1, wherein, before firing, a clearance between the cylindrical portion and the inner wall of the tubular body is selected to be between 0.2 and 0.4 mm.
- 4. A method as set forth in claim 1, wherein the firing rapidly raises the temperature of the tubular body and the loose-fit T-plug.
- 5. A method as set forth in claim 1, wherein the firing comprises rapidly raising the temperature of the tubular body and the loose-fit T-plug at a rate of greater than 500° C./minute.
- 6. A method as set forth in claim 1, wherein the firing comprises rapidly raising the temperature of the tubular body and the loose-fit T-plug at a rate of about 1000° C./minute.
- 7. A method as set forth in claim 4, wherein the tubular body and the cylindrical portion are supported on a pedestal of a conveyor belt and are transported through a furnace which induces the rapid rise in temperature.
- 8. A method as set forth in claim 1, further comprising disposing a second loose-fit T-plug in a lower open end of the cylindrical portion prior to the step of firing.
- 9. A method as set forth in claim 8, further comprising using the second loose-fit T-plug as a thermal buffer.
- 10. A method of as set forth in claim 7, comprising forming the pedestal of a material selected to have predetermined thermal properties with respect to the thermal properties of the second loose-fit T-plug and using the pedestal of the conveyor belt as a thermal buffer for a lower end of the discharge tube during firing.
- 11. A method as set forth in claim 7, wherein the pedestal is formed of the same material as the tubular body and has been, before firing, sintered to a density which is approximately that of the metal halide discharge tube after firing.
- 12. A method as set forth in claim 8, wherein at least the second loose-fit T-plug has a stem portion and further comprising disposing the tubular body and the second loose-fit T-plug on a pedestal of a conveyor belt so that the stem portion of the second loose-fit T-plug is disposed through an aperture formed in the pedestal.
- 13. A metal halide discharge tube which, prior firing to become a monolithic body, comprises:
a tubular body with an inner peripheral wall and first and second open ends; and a first loose-fit T-plug disposed in the first end of the tubular body, the first loose-fit T-plug comprising:
a cylindrical portion so sized and dimensioned as to fit into the first open end of the tubular body in a spaced, contact-free relationship with the inner peripheral wall of the tubular body; and radially extending annular flange extending from the cylindrical portion, the annular flange having a diameter adapted to be greater than an inner diameter of the tubular member into which the cylindrical portion is adapted to be disposed, the radially extending annular flange having a thickness which is less than an axial dimension of the cylindrical portion.
- 14. A metal halide discharge tube according to claim 13, wherein the annular flange has a thickness of about 1 mm.
- 15. A metal halide discharge tube according to claim 13, wherein the annular flange has a thickness of less than 1 mm.
- 16. A metal halide discharge tube according to claim 13, wherein the tubular body is PCA (polycrystalline alumina).
- 17. A metal halide discharge tube according to claim 13, wherein the cylindrical portion and the radially extending flange are PCA (polycrystalline alumina).
- 18. A metal halide discharge tube according to claim 13, further comprising a second loose-fit T-plug disposed in the second end of the tubular body, the second loose-fit T-plug having a stem portion which extends from a cylindrical portion which is so sized and dimensioned as to fit in the second open end of the tubular body in a spaced, contact-free relationship with the inner peripheral wall of the tubular body, the stem being disposed through an opening formed in a pedestal of a conveyor belt which carries the first and second loose-fit T-plugs and cylindrical portion through a furnace for firing.
- 19. A metal halide discharge tube according to claim 18, wherein the pedestal is made of the same material as the first and second loose-fit T-plugs and the cylindrical portion.
- 20. A metal halide discharge tube according to claim 19, wherein the material is PCA (polycrystalline alumina) and wherein the pedestal has been, prior to firing, sintered to have a density similar to that of the metal discharge tube after firing.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the benefit of Provisional Application Ser. No. 60/482,715, filed Jun. 27, 2003.
Provisional Applications (1)
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Number |
Date |
Country |
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60482715 |
Jun 2003 |
US |