Claims
- 1. A cathode sheath for a thermionic electron-gun cathode, the sheath being substantially in the form of a hollow cylinder having an outer surface and an inner surface, a central axis, a closed end and an axially-opposite open end, and a side wall extending between the closed end and the open end, the sheath comprising a continuous bimetallic laminate having a first layer of material forming the inner surface and a second layer of electron-emission material overlying substantially the entirety of the first layer and forming the outer surface, the inner surface including an oxide layer thereon and the outer surface being substantially free of an oxide layer thereon, the laminate having a preselected thickness at the closed end and having a thickness at the side wall which varies along the central axis.
- 2. A cathode sheath according to claim 1, wherein the hollow cylinder has an outer diameter which is constant.
- 3. A cathode sheath according to claim 1, wherein the hollow cylinder has an outer diameter which varies from the closed end to the open end.
- 4. A cathode sheath according to claim 3, wherein the outer diameter at the open end is greater than the outer diameter at the closed end.
- 5. A cathode sheath according to claim 1, wherein the hollow cylinder has an outer diameter which is constant and an inner diameter which varies along the central axis from the closed end to the open end.
- 6. A cathode sheath according to claim 5, wherein the inner diameter at the open end is greater than the inner diameter at the closed end.
- 7. A cathode sheath according to claim 1, wherein the thickness of the laminate at the closed end and the thickness of the laminate at the side wall are substantially the same for a portion of the side wall adjacent the closed end.
- 8. A cathode sheath according to claim 7, wherein the thickness of the laminate at the closed end and at the side wall adjacent the closed end is greater than the thickness of the laminate at the side wall adjacent the open end.
- 9. A cathode sheath according to claim 1, wherein the thickness of the laminate at the side wall adjacent the closed end is greater than the thickness of the laminate at the side wall adjacent the open end.
- 10. A cathode sheath according to claim 1, further comprising an eyelet substantially surrounding the cathode sheath side wall and spider means for supporting the cathode sheath in the eyelet.
- 11. A cathode sheath according to claim 10, wherein the cathode sheath, eyelet and spider means comprise a one-piece structure.
- 12. A cathode sheath according to claim 11, wherein the cathode sheath, eyelet and spider means comprise the continuous bimetallic laminate.
- 13. A cathode sheath according to claim 1, wherein the first layer of material is a nickel-base alloy comprising chromium and the oxide layer is chromium oxide.
- 14. A cathode sheath according to claim 1, wherein the electron-emission material is an electron donor material.
- 15. A cathode sheath according to claim 1, wherein the outer surface is substantially free from irregularities or roughness, thereby exhibiting lower emissivity than a comparable irregular or rough outer surface.
- 16. A cathode sheath according to claim 1, wherein the thickness ratio of the second layer to the first layer is from about 1:2 to about 1:3.
- 17. An electron gun for a cathode ray tube, comprising
- a cathode sheath substantially in the form of a hollow cylinder having an outer surface and an inner surface, a central axis, a closed end and an axially-opposite open end, and a side wall extending between the closed end and the open end, the sheath comprising a continuous bimetallic laminate having a first layer of material forming the inner surface and a second layer of electron-emission material overlying substantially the entirety of the first layer and forming the outer surface, the inner surface including an oxide layer thereon and the outer surface being substantially free of an oxide layer thereon, the laminate having a preselected thickness at the closed end and having a thickness at the side wall which varies along the central axis, and
- a heater filament disposed axially within the hollow cylinder adjacent the closed end for heating the cathode sheath to a preselected temperature.
- 18. An electron gun according to claim 17, wherein the first layer of material is a nickel-base alloy comprising chromium and the oxide layer is chromium oxide.
- 19. An electron gun according to claim 17, wherein the electron-emission material is an electron donor material.
- 20. An electron gun according to claim 17, wherein the outer surface is substantially free from irregularities or roughness, thereby exhibiting lower emissivity than a comparable irregular or rough outer surface.
- 21. An electron gun according to claim 17, wherein the thickness ratio of the second layer to the first layer is from about 1:2 to about 1:3.
- 22. A cathode ray tube comprising
- a cathodoluminescent screen,
- an electron gun having a cathode sheath substantially in the form of a hollow cylinder having an outer surface and an inner surface, a central axis, a closed end and an axially-opposite open end, and a side wall extending between the closed end and the open end, the sheath comprising a continuous bimetallic laminate having a first layer of material forming the inner surface and a second layer of electron-emission material overlying substantially the entirety of the first layer and forming the outer surface, the inner surface including an oxide layer thereon and the outer surface being substantially free of an oxide layer thereon, the laminate having a preselected thickness at the closed end and having a thickness at the side wall which varies along the central axis,
- a heater filament disposed axially within the hollow cylinder adjacent the closed end for heating the cathode sheath to a preselected temperature, and
- means for accelerating and directing electrons emitted by the first layer toward the cathodoluminescent screen.
- 23. A cathode ray tube according to claim 22, wherein the first layer of material is a nickel-base alloy comprising chromium and the oxide layer is chromium oxide.
- 24. A cathode ray tube according to claim 22, wherein the electron-emission material is an electron donor material.
- 25. A cathode ray tube according to claim 22, wherein the outer surface is substantially free from irregularities or roughness, thereby exhibiting lower emissivity than a comparable irregular or rough outer surface.
- 26. A cathode ray tube according to claim 22, wherein the thickness ratio of the second layer to the first layer is from about 1:2 to about 1:3.
- 27. A cathode for a thermionic electron-gun cathode, comprising a cathode sheath being substantially in the form of a hollow cylinder having an outer surface and an inner surface, a central axis, a closed end and an axially-opposite open end, and a side wall extending between the closed end and the open end, the sheath comprising a continuous bimetallic laminate having a first layer of material forming the inner surface and a second layer of electron-emission material overlying substantially the entirety of the first layer and forming the outer surface, the inner surface including an oxide layer thereon and the outer surface being substantially free of an oxide layer thereon, the laminate having a preselected thickness, an eyelet substantially surrounding the cathode sheath side wall and spider means for supporting the cathode sheath in the eyelet.
- 28. A cathode sheath according to claim 27, wherein the cathode sheath, eyelet and spider means comprise a one-piece structure.
- 29. A cathode sheath according to claim 28, wherein the cathode sheath, eyelet and spider means comprise the continuous bimetallic laminate.
- 30. A cathode sheath according to claim 27, wherein the hollow cylinder has an outer diameter which is constant.
- 31. A cathode sheath according to claim 27, wherein the thickness of the laminate at the closed end and the thickness of the laminate at the side wall are substantially the same.
- 32. A cathode according to claim 27, wherein the first layer of material is a nickel-base alloy comprising chromium and the oxide layer is chromium oxide.
- 33. A cathode sheath according to claim 27, wherein the electron-emission material is an electron donor material.
- 34. A cathode sheath according to claim 27, wherein the outer surface is substantially free from irregularities or roughness, thereby exhibiting lower emissivity than a comparable irregular or rough outer surface.
- 35. A cathode sheath according to claim 27, wherein the thickness ratio of the second layer to the first layer is from about 1:2 to about 1:3.
- 36. A cathode sheath for a thermionic electron-gun cathode, the sheath being substantially in the form of a hollow cylinder having an unoxidized outer surface and an oxidized inner surface, a central axis, a closed end and an axially-opposite open end, and a side wall extending between the closed end and the open end, the sheath comprising a continuous bimetallic laminate having a first layer of material forming the inner surface and a second layer of electron-emission material overlying substantially the entirety of the first layer and forming the outer surface, the laminate having a preselected thickness at the closed end and having a thickness at the side wall which varies along the central axis.
- 37. A cathode sheath according to claim 36, wherein the electron-emission material is an electron donor material.
- 38. A cathode sheath according to claim 36, wherein the outer surface is substantially free from irregularities or roughness, thereby exhibiting lower emissivity than a comparable irregular or rough outer surface.
- 39. A cathode sheath according to claim 36, wherein the thickness ratio of the second layer to the first layer is from about 1:2 to about 1:3.
- 40. A method of making a thermionic cathode from a bimetallic laminate having a preselected thickness, the bimetallic laminate having an outer layer which is substantially unreactive with oxygen and an inner layer which reacts more readily with oxygen, the method comprising the steps of
- (a) forming a substantially cylindrical cathode sheath having a closed end and an open end and a side wall which extends between the open end and the closed end, the outer layer of the laminate forming the cathode's outer surface and the inner layer forming the cathode's inner surface;
- (b) mechanically progressively reducing the thickness of the laminate along the side wall in a direction from the closed end to toward the open end substantially without removing any material from the bimetallic laminate to define a first region adjacent the closed end wherein the laminate thickness is substantially equal to the preselected thickness and at least a second region between the first region and the open end wherein the laminate thickness is less than the preselected thickness; and
- (c) simultaneously heating and exposing the reduced thickness laminate to an atmosphere of wet gas, thereby blackening only the inner layer surface of the cathode.
- 41. A method of making a thermionic cathode according to claim 40, wherein the inner layer of the laminate is a nickel-base alloy comprising chromium, and step (c) includes the step of causing the chromium to react with oxygen in the wet gas atmosphere to form the blackened inner layer surface.
- 42. A method of making a thermionic cathode according to claim 40, wherein step (a) includes forming the cathode sheath from a laminate having a thickness ratio of the outer layer to the inner layer from about 1:2 to about 1:3.
CROSS-REFERENCE TO RELATED APPLICATION
This is a continuation-in-part of U.S. Ser. No. 08/002,286, filed Jan. 8, 1993.
US Referenced Citations (12)
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
2286 |
Jan 1993 |
|