Claims
- 1. A color cathode ray tube having an electron gun comprising:a beam forming region including cathodes, a G1 electrode, and a G2 electrode arranged in this order toward a phosphor screen for generating and directing a plurality of electron beams toward said phosphor screen along initial paths in a horizontal plane; a main lens for focusing said plurality of electron beams on said phosphor screen; said main lens comprising a plurality of electrodes including an electrode opposing an end of said G2 electrode on a phosphor screen side thereof and an accelerating electrode receiving a highest voltage, said electrode opposing said G2 electrode being supplied with a fixed focus voltage; said main lens including a final lens formed between said accelerating electrode and an electrode of said plurality of electrodes opposing an end of said accelerating electrode on a cathode side thereof and so configured that outer electron beams among said plurality of electron beams are deflected toward a trajectory of a center electron beam among said plurality of electron beams, and a lens strength of said final lens weakens with an increasing amount of deflection of said plurality of electron beams; at least one multipole lens located between said final lens and said beam forming region and so configured as to change a cross sectional shape of said plurality of electron beams with the increasing amount of deflection of said plurality of electron beams; and a lens formed between a pair of electrodes located between said final lens and said beam forming region and having opposing surfaces spaced a distance from each other along an axis of said electron gun, said opposing surfaces each having opposing center apertures and opposing outer apertures corresponding to said plurality of electron beams, centers of said opposing outer apertures in said opposing surfaces being displaced from each other in a direction perpendicular to the axis of said electron gun; wherein said lens formed between said pair of electrodes focuses said plurality of electron beams in both horizontal and vertical directions and is configured so as to change a focusing strength thereof with the increasing amount of deflection of said plurality of electron beams and to deflect trajectories of the outer electron beams one of toward and away from a trajectory of the center electron beam with the increasing amount of deflection of said plurality of electron beams.
- 2. A color cathode ray tube according to claim 1, wherein said lens formed between said pair of electrodes deflects the trajectories of the outer electron beams toward the trajectory of the center electron beam with the increasing amount of deflection of said plurality of electron beams.
- 3. A color cathode ray tube according to claim 2, wherein said at least one multipole lens deflects the trajectories of the outer electron beams one of toward and away from the trajectory of the center electron beam with the increasing amount of deflection of said plurality of electron beams.
- 4. A color cathode ray tube according to claim 1, wherein said at least one multipole lens deflects the trajectories of the outer electron beams one of toward and away from the trajectory of the center electron beam with the increasing amount of deflection of said plurality of electron beams.
- 5. A color cathode ray tube according to claim 1, wherein a dynamic voltage varying in synchronization with a deflection current supplied to a deflection yoke for scanning said plurality of electron beams on said phosphor screen is applied to said electrode opposing said accelerating electrode and another electrode of said plurality of electrodes.
- 6. A color cathode ray tube according to claim 1, wherein said electrode opposing said G2 electrode is a box-like electrode having a bottom surface on a cathode side thereof and a top surface on a phosphor screen side thereof, and each of said bottom surface and said top surface has a center aperture and outer apertures corresponding to said plurality of electron beams.
- 7. A color cathode ray tube according to claim 6, wherein a distance between centers of said outer apertures in said bottom surface of said electrode opposing said G2 electrode is equal to a distance between centers of said outer apertures in said top surface of said electrode opposing said G2 electrode.
- 8. A color cathode ray tube according to claim 6, wherein said G2 electrode has a center aperture and outer apertures corresponding to said plurality of electron beams, and a distance between centers of said outer apertures in said G2 electrode is equal to a distance between centers of said outer apertures in said bottom surface of said electrode opposing said G2 electrode.
- 9. A color cathode ray tube according to claim 1, wherein two electrodes of said plurality of electrodes of said main lens receive a fixed focus voltage.
- 10. A color cathode ray tube having an electron gun comprising:a beam forming region including cathodes, a G1 electrode, and a G2 electrode arranged in this order toward a phosphor screen for generating and directing a plurality of electron beams toward said phosphor screen along initial paths in a horizontal plane; a main lens for focusing said plurality of electron beams on said phosphor screen; said main lens including a G3 electrode, a G4 electrode, a G5 electrode subdivided into a plurality of members spaced along an axis of said electron gun, and a G6 electrode arranged in this order toward said phosphor screen, said G3 electrode being supplied with a fixed focus voltage; said main lens including a final lens formed between said G6 electrode and one of said plurality members of said G5 electrode, configured so that outer electron beams among said plurality of electron beams are deflected toward a trajectory of a center electron beam among said plurality of electron beams, and a lens strength of said final lens weakens with an increasing amount of deflection of said plurality of electron beams; at least one multipole lens located between said final lens and said beam forming region and configured so as to change a cross sectional shape of said plurality of electron beams with the increasing amount of deflection of said plurality of electron beams; and a lens formed between a pair of electrodes located between said final lens and said beam forming region and having opposing surfaces spaced a distance from each other along an axis of said electron gun, said opposing surfaces each having opposing center apertures and opposing outer apertures corresponding to said plurality of electron beams, centers of said opposing outer apertures in said opposing surfaces being displaced from each other in a direction perpendicular to the axis of said electron gun; wherein said lens formed between said pair of electrodes focuses said plurality of electron beams in both horizontal and vertical directions and is configured so as to change a focusing strength thereof with the increasing amount of deflection of said plurality of electron beams and to deflect trajectories of the outer electron beams one of toward and away from the trajectory of the center electron beam with the increasing amount of deflection of said plurality of electron beams.
- 11. A color cathode ray tube according to claim 10, wherein said lens formed between said pair of electrodes deflects the trajectories of the outer electron beams toward the trajectory of the center electron beam with the increasing amount of deflection of said plurality of electron beams.
- 12. A color cathode ray tube according to claim 11, wherein said at least one multipole lens deflects the trajectories of the outer electron beams one of toward and away from the trajectory of the center electron beat with the increasing amount of deflection of said electron beams.
- 13. A color cathode ray tube according to claim 10, wherein said G2 electrode and said G4 electrode are supplied with a same voltage.
- 14. A color cathode ray tube according to claim 10, wherein said at least one multipole lens deflects the trajectories of the outer electron beams one of toward and away from the trajectory of the center electron beam with the increasing amount of deflection of said plurality of electron beams.
- 15. A color cathode ray tube according to claim 10, wherein said G5 electrode is subdivided into four members.
- 16. A color cathode ray tube according to claim 10, wherein said pair of electrodes form part of said G5 electrode.
- 17. A color cathode ray tube according to claim 10, wherein two of said plurality of members into which said G5 electrode is subdivided receive a dynamic voltage varying in synchronization with a deflection current supplied to a deflection yoke for scanning said plurality of electron beams on said phosphor screen.
- 18. A color cathode ray tube according to claim 10, wherein two of said plurality of members into which said G5 electrode is subdivided receive said fixed focus voltage supplied to said G3 electrode.
- 19. A color cathode ray tube according to claim 10, wherein said G3 electrode is a box-like electrode having a bottom surface opposing said G2 electrode and a top surface opposing said G4 electrode, and each of said bottom surface and said top surface has a center aperture and outer apertures corresponding to said plurality of electron beams.
- 20. A color cathode ray tube according to claim 19, wherein a distance between centers of said outer apertures in said bottom surface of said G3 electrode is equal to a distance between centers of said outer apertures in said top surface of said G3 electrode.
- 21. A color cathode ray tube according to claim 19, wherein said G2 electrode has a center aperture and outer apertures corresponding to said plurality of electron beams, and a distance between centers of said outer apertures of said G2 electrode is equal to a distance between centers of said outer apertures in said bottom surface of said G3 electrode.
- 22. A color cathode ray tube according to claim 19, wherein said G4 electrode has a center aperture and outer apertures corresponding to said plurality of electron beams, and a distance between centers of said outer apertures of said G4 electrode is equal to a distance between centers of said outer apertures in said top surface of said G3 electrode.
Priority Claims (1)
Number |
Date |
Country |
Kind |
6-167120 |
Jul 1994 |
JP |
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CROSS REFERENCE TO RELATED APPLICATION
This is a continuation of U.S. application Ser. No. 09/433,726, filed Nov. 4, 1999, still pending which is a continuation of U.S. application Ser. No. 09/012,450, filed Jan. 23, 1998, now U.S. Pat. No. 6,025,674, issued Feb. 15, 2000, which is a continuation of U.S. application Ser. No. 08/808,037, filed Mar. 4, 1997, now U.S. Pat. No. 5,739,631, issued Apr. 14, 1998, which is a continuation of U.S. application Ser. No. 08/504,139, filed Jul. 19, 1995, now U.S. Pat. No. 5,608,284, issued Mar. 4, 1997, the subject matter of which is incorporated by reference herein.
US Referenced Citations (8)
Number |
Name |
Date |
Kind |
4701678 |
Blacker et al. |
Oct 1987 |
A |
4704565 |
Blacker, Jr. et al. |
Nov 1987 |
A |
5015910 |
Takahashi et al. |
May 1991 |
A |
5027043 |
Chen et al. |
Jun 1991 |
A |
5212423 |
Noguchi et al. |
May 1993 |
A |
5608284 |
Tojyou et al. |
Mar 1997 |
A |
5739631 |
Tojyou et al. |
Apr 1998 |
A |
6025674 |
Tojyou et al. |
Feb 2000 |
A |
Foreign Referenced Citations (5)
Number |
Date |
Country |
0 284 990 |
Oct 1988 |
EP |
0 901 146 |
Mar 1999 |
EP |
5-266822 |
Oct 1993 |
JP |
5-325825 |
Dec 1993 |
JP |
WO 9102373 |
Feb 1991 |
WO |
Non-Patent Literature Citations (2)
Entry |
“Enhanced Elliptical Aperture Lens Gun for Color Picture Tubes”, S. Shirai, et al, 2320 Proceedings of the SAID, vol. 31/3, 1990, pp. 185-191 (No Month). |
“Enhanced Elliptical Aperture Lens Gun for Color Picture Tubes”, S. Shirai, et al, Mobara Works, Hitachi, Ltd., 2320 Proceedings of the SID 31 (1990) No. 3, New York, US (No Month). |
Continuations (4)
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Number |
Date |
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Parent |
09/433726 |
Nov 1999 |
US |
Child |
09/663375 |
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US |
Parent |
09/012450 |
Jan 1998 |
US |
Child |
09/433726 |
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US |
Parent |
08/808037 |
Mar 1997 |
US |
Child |
09/012450 |
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US |
Parent |
08/504139 |
Jul 1995 |
US |
Child |
08/808037 |
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US |