Claims
- 1. A color cathode ray tube comprising:an electron gun including an electron beam generating portion arrayed in a horizontal direction for generating three electron beams, and a main lens for focusing said three electron beams from said electron beam generating portion upon a fluorescent face, said electron beam generating portion and said main lens being arrayed along an axis of the cathode ray tube; and a deflection yoke for scanning said three electron beams upon said fluorescent face; said main lens including an accelerating electrode for being supplied with an accelerating voltage and having three electron beam passages including a central electron beam passage and side electron beam passages; a focusing electrode for being supplied with a focusing voltage and having three electron beam passages including a central electron beam passage and side electron beam passages; a final stage of said main lens being formed between said focusing electrode and said accelerating electrode; said focusing electrode being divided into at least two focusing electrode parts, said at least two focusing electrode parts including a first focusing electrode part located at a cathode side, and a second focusing electrode part located at a fluorescent face side; wherein one of said first focusing electrode part and said second focusing electrode part is applied with one of a first focusing voltage and a second focusing voltage, and said second focusing voltage is a combination of a static voltage and a dynamic voltage changing according to the deflection of said electron beams; wherein a quadrupole electron lens is formed for each of said three electron beams between said first focusing electrode part and said second focusing electrode part, and the strength of the quadrupole electron lens for the central electron beam is different from the strength of the quadrupole electron lens for the side electron beams; wherein said first focusing electrode part and said second focusing electrode part have an opposing side, and said opposing side of one of said first focusing electrode part and second focusing electrode part has an aperture for the central electron beam and apertures for the side electron beams, and a vertical dimension of said aperture for the central electron beam is different from a vertical dimension of said apertures for the side electron beams; and wherein said focusing electrode which together with said acceleration electrode has said final stage of said main lens formed therebetween has a single aperture having a diameter which is larger in a horizontal direction than a diameter thereof in a vertical direction, and said focusing electrode has an electrode plate with a central electron beam aperture.
- 2. A color cathode ray tube according to claim 1, wherein said second focusing voltage is applied to said second focusing electrode part.
- 3. A color cathode ray tube according to claim 1, wherein said second focusing voltage is applied to said focusing electrode which together with said acceleration electrode has said final stage of said main lens formed therebetween.
- 4. A color cathode ray tube according to claim 1, wherein said second focusing electrode part and said focusing electrode which together with said acceleration electrode has said final stage of said main lens formed therebetween are identical to one another.
- 5. A color cathode ray tube according to claim 1, wherein the strength of said quadrupole electron lens for the central electron beam is stronger than the strength of said quadrupole electron lens for the side electron beams.
- 6. A color cathode ray tube according to claim 1, wherein, said opposing side of one of said first focusing electrode part and said second focusing electrode part has an aperture for the central electron beam and apertures for the side electron beams, and a vertical dimension of said aperture for the central electron beam is smaller than a vertical dimension of said apertures for the side electron beams.
- 7. A color cathode ray tube according to claim 1, wherein said opposing side of said first focusing electrode part has an aperture for the central electron beam and apertures for the side electron beams.
- 8. A color cathode ray tube according to claim 1, wherein said opposing side of both of said first focusing electrode part and said second focusing electrode part have an aperture for the central electron beam and apertures for the side electron beams.
- 9. A color cathode ray tube according to claim 1, wherein the center of the aperture for a side electron beam of said first focusing electrode and the center of the opposing aperture of the side electron beam of said second focusing electrode are offset with respect to each other in a horizontal direction.
- 10. A color cathode ray tube according to any one of claims 1, 6, 7, 8 and 9, wherein upper and lower portions of said aperture for the central electron beam and said apertures for the side electron beams at said opposing side of said first focusing electrode and said second focusing electrode are rectangular.
- 11. A color cathode ray tube according to claim 1, wherein said central electron beam aperture of said plate electrode of said focusing electrode has a larger dimension in the vertical direction than the dimension in the horizontal direction.
- 12. A color cathode ray tube according to claim 11, wherein said central electron beam aperture is elliptical.
- 13. A color cathode ray tube comprising:an electron gun including an electron beam generating portion arrayed in a horizontal direction for generating three electron beams, and a main lens for focusing said three electron beams from said electron beam generating portion upon a fluorescent face, said electron beam generating portion and main lens being arrayed along an axis of the cathode ray tube; and a deflection yoke for scanning said three electron beams upon said fluorescent face; said main lens including an accelerating electrode for being supplied with an accelerating voltage and having three electron beam passages including a central electron beam passage and side electron beam passages; a focusing electrode for being supplied with a focusing voltage and having three electron beam passages including a central electron beam passage and side electron beam passages; a final stage of said main lens being formed between said focusing electrode and said accelerating electrode; said focusing electrode being divided into at least two focusing electrode parts, said at least two focusing electrode parts including a first focusing electrode part located at a cathode side, and a second focusing electrode part located at a fluorescent face side; wherein one of said first focusing electrode part and said second focusing electrode part is applied with one of a first focusing voltage and a second focusing voltage, and said second focusing voltage is a combination of a static voltage and a dynamic voltage changing according to the deflection of said electron beams; wherein a quadrupole electron lens is formed for each of said three electron beams between said first focusing electrode part and said second focusing electrode part, and a diverging lens force in a vertical direction of the quadrupole electron lens for the central electron beam is different from a diverging lens force in the vertical direction of the quadrupole electron lens for the side electron beams; wherein said first focusing electrode part and said second focusing electrode part have an opposing side, and said opposing side of one of said first focusing electrode part and second focusing electrode part has an aperture for the central electron beam and apertures for the side electron beams, and a vertical dimension of said aperture for the central electron beam is different from a vertical dimension of said apertures for the side electron beams; and wherein said focusing electrode which together with said acceleration electrode has said final stage of said main lens formed therebetween has a single aperture having a diameter which is larger in a horizontal direction than a diameter thereof in the vertical direction, and said focusing electrode has an electrode plate with an central electron beam aperture.
- 14. A color cathode ray tube according to claim 13, wherein said second focusing voltage is applied to said second focusing electrode part.
- 15. A color cathode ray tube according to claim 13, wherein said second focusing voltage is applied to said focusing electrode which together with said acceleration electrode has said final stage of said main lens formed therebetween.
- 16. A color cathode ray tube according to claim 13, wherein said second focusing electrode part and said focusing electrode which together with said acceleration electrode has said final stage of said main lens formed therebetween are identical to one another.
- 17. A color cathode ray tube according to claim 13, wherein a lens force in the vertical direction of said quadrupole electron lens for the central electron beam is stronger than a lens force in the vertical direction of said quadrupole electron lens for the side electron beams.
- 18. A color cathode ray tube according to claim 13, wherein said opposing side of one of said first focusing electrode part and said second focusing electrode part has an aperture for the central electron beam and apertures for the side electron beams, and a vertical dimension of said aperture for the central electron beam is smaller than a vertical dimension of said apertures for the side electron beams.
- 19. A color cathode ray tube according to claim 13, wherein said opposing side of said first focusing electrode part has an aperture for the central electron beam and apertures for the side electron beams.
- 20. A color cathode ray tube according to claim 13, wherein said opposing side of both of said first focusing electrode part and said second focusing electrode part have an aperture for the central electron beam and apertures for the side electron beams.
- 21. A color cathode ray tube according to claim 20, wherein a center of the aperture for a side electron beam of said first focusing electrode a nd a center of the opposing aperture of the side electron beam of said second focusing electrode are offset with respect to each other in the horizontal direction.
- 22. A color cathode ray tube according to any one of claims 13, 18, 19, 20 and 21, wherein upper and lower portions of said aperture for the central electron beam and said apertures for the side electron beams at said opposing side of said first focusing electrode and said second focusing electrode are rectangular.
- 23. A color cathode ray tube according to claim 13, wherein said central electron beam aperture of said plate electrode of said focusing electrode has a larger dimension in the vertical direction than a dimension thereof in the horizontal direction.
- 24. A color cathode ray tube according to claim 13, wherein said central electron beam aperture of said plate electrode is elliptical.
Priority Claims (1)
Number |
Date |
Country |
Kind |
6-161333 |
Jul 1994 |
JP |
|
CROSS REFERENCE TO RELATED APPLICATION
This is a continuation of U.S. application Ser. No. 09/015,791, filed Jan. 29, 1998, now U.S. Pat. No. 6,051,919, which is a continuation of U.S. application Ser. No. 08/499,927, filed Jul. 10, 1995, now U.S. Pat. No. 5,739,630.
US Referenced Citations (13)
Foreign Referenced Citations (2)
Number |
Date |
Country |
5-266822 |
Oct 1993 |
JP |
3053828 |
Apr 2000 |
JP |
Continuations (2)
|
Number |
Date |
Country |
Parent |
09/015791 |
Jan 1998 |
US |
Child |
09/511235 |
|
US |
Parent |
08/499927 |
Jul 1995 |
US |
Child |
09/015791 |
|
US |