Claims
- 1. An exit window for an electron beam emitter through which electrons pass in an electron beam, the exit window comprising:an exit window foil having an interior and an exterior surface with a series of holes formed therein; and a corrosion resistant layer having high thermal conductivity extending over the exterior surface and the holes of the exit window foil for resisting corrosion and increasing thermal conductivity, said layer extending over the holes of the exit window foil providing thinner window regions which allow easier passage of the electrons through the exit window.
- 2. The exit window of claim 1 in which the exit window foil comprises titanium.
- 3. The exit window of claim 2 in which the corrosion resistant layer comprises diamond.
- 4. An exit window for an electron beam emitter through which electrons pass in an electron beam, the exit window comprising:an exit window foil having an interior and an exterior surface with a series of holes formed therein; and a corrosion resistant layer having high thermal conductivity extending over the exterior surface and the holes of the exit window foil for resisting corrosion and increasing thermal conductivity, said layer extending over the holes of the exit window foil providing thinner window regions which allow easier passage of the electrons through the exit window, the exit window foil comprising titanium and the corrosion resistant layer comprising diamond.
- 5. An electron beam emitter comprising:a vacuum chamber; an electron generator positioned within the vacuum chamber for generating electrons; and an exit window on the vacuum chamber through which the electrons exit the vacuum chamber in an electron beam, the exit window comprising an exit window foil having an interior and an exterior surface with a series of holes formed therein, and a corrosion resistant layer having high thermal conductivity extending over the exterior surface and the holes of the exit window foil for resisting corrosion and increasing thermal conductivity, said layer extending over the holes of the exit window foil providing thinner window regions which allow easier passage of the electrons through the exit window.
- 6. The exit window of claim 5 in which the exit window foil is about 6 to 12 microns thick and the corrosion resistant layer is about 5 to 8 microns thick.
- 7. The emitter of claim 6 further comprising a support plate for supporting the exit window, the support plate having a series of holes therethrough which are aligned with holes of the exit window foil.
- 8. The emitter of claim 7 in which multiple holes of the exit window foil are aligned with each hole of the support plate.
- 9. The emitter of claim 6 in which the exit window foil comprises titanium.
- 10. The emitter of claim 9 in which the corrosion resistant layer comprises diamond.
- 11. The emitter of claim 10 in which the exit window foil is about 6 to 12 microns thick and the corrosion resistant layer is about 5 to 8 microns thick.
- 12. An exit window for an electron beam emitter through which electrons pass in an electron beam, the exit window comprising:an exit window foil having a series of holes formed therein; and a layer having high thermal conductivity extending over the exit window foil for increasing thermal conductivity, said layer extending over the holes of the exit window foil providing thinner window regions which allow easier passage of the electrons through the exit window.
- 13. A method of forming an exit window for an electron beam emitter through which electrons pass in an electron beam comprising:providing an exit window foil having an interior and an exterior surface; forming a corrosion resistant layer having high thermal conductivity over the exterior surface of the exit window foil for resisting corrosion and increasing thermal conductivity; and forming a series of holes through the exit window foil to provide thinner window regions where said layer extends over the holes of the exit window foil which allow easier passage of the electrons through the exit window.
- 14. The method of claim 13 further comprising forming the exit window foil from titanium.
- 15. The method of claim 14 further comprising forming the corrosion resistant layer from diamond.
- 16. The method of claim 15 further comprising forming the exit window foil about 6 to 12 microns thick and the corrosion resistant layer about 5 to 8 microns thick.
- 17. A method of forming an exit window for an electron beam emitter through which electrons pass in an electron beam comprising:providing an exit window foil having an interior and an exterior surface; forming a corrosion resistant layer having high thermal conductivity over the exterior surface of the exit window foil for resisting corrosion and increasing thermal conductivity, the exit window foil comprising titanium and the corrosion resistant layer comprising diamond; and forming a series of holes through the exit window foil to provide thinner window regions where said layer extends over the holes of the exit window foil which allow easier passage of the electrons through the exit window.
- 18. A method of forming an electron beam emitter comprising:providing a vacuum chamber; positioning an electron generator within the vacuum chamber for generating electrons; and mounting an exit window on the vacuum chamber through which the electrons exit the vacuum chamber in an electron beam, the exit window comprising an exit window foil having an interior and an exterior surface with a series of holes therethrough, and a corrosion resistant layer having high thermal conductivity extending over the exterior surface and the holes of the exit window for resisting corrosion and increasing thermal conductivity, said layer extending over the holes of the exit window foil providing thinner window regions which allow easier passage of the electrons through the exit window.
- 19. The method of claim 18 further comprising mounting the exit window on a support plate, the support plate having a series of holes therethrough which are aligned with holes of the exit window foil.
- 20. The method of claim 19 further comprising aligning multiple holes of the exit window foil with each hole of the support plate.
- 21. The method of claim 18 further comprising forming the exit window foil from titanium.
- 22. The method of claim 21 further comprising forming the corrosion resistant layer from diamond.
- 23. The method of claim 22 further comprising forming the exit window foil about 6 to 12 microns thick and the corrosion resistant layer about 5 to 8 microns thick.
- 24. A method of forming an exit window for an electron beam emitter through which electrons pass in an electron beam comprising:providing an exit window foil; forming a layer having high thermal conductivity over the exit window foil for increasing thermal conductivity; and forming a series of holes in the exit window foil to provide thinner window regions where said layer extends over the holes of the exit window foil which allow easier passage of the electrons through the exit window.
RELATED APPLICATION
This application is a continuation-in-part of U.S. application Ser. No. 09/813,929, filed Mar. 21, 2001. The entire teachings of the above application are incorporated herein by reference.
US Referenced Citations (7)
Foreign Referenced Citations (6)
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Date |
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529237 |
Jul 1931 |
DE |
0 715 314 |
Jun 1996 |
EP |
301719 |
Dec 1928 |
GB |
02138900 |
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JP |
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Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
09/813929 |
Mar 2001 |
US |
Child |
10/103539 |
|
US |