Claims
- 1. A three-beam in-line electron gun for a color cathode ray tube, comprising:
- means for generating three beams of electrons aligned in a common plane--a center beam and two outer beams; and
- beam bending means for producing asymmetrical fields in the paths of said outer beams for diverting said outer beams from respective straight line paths toward a common point of convergence, comprising at least two facing electrodes, a first electrode being adapted to receive a relatively higher excitation potential and a second electrode a relatively lower excitation potential, said second electrode having a center opening and two outer openings arranged in line along an electrode horizontal axis orthogonal to the gun axis, said outer openings having inwardly extending enlargements which are symmetrical about said electrode horizontal axis and a vertical axis through the center opening, but asymmetrical about respective vertical axes through the outer openings to thereby produce said asymmetrical fields for said outer beams.
- 2. An electron gun defined by claim 1 wherein both of said electrodes have outer beam openings having opening distortions in the form of opening enlargements, the opening enlargements in the second electrode extending inwardly towards said center opening, and the opening enlargements in the first electrode extending outwardly away from said center opening.
- 3. A three-beam in-line electron gun for a color cathode ray tube, comprising:
- means for generating three beams of electrons aligned in a common plane--a center beam and two outer beams;
- beam bending means for producing asymmetrical fields in the paths of said outer beams for diverting said outer beams from respective straight line paths toward a common point of convergence, comprising at least two facing electrodes, a first electrode being adapted to receive a relatively higher excitation potential and a second electrode a relatively lower excitation potential, said second electrode having a center opening and two outer openings arranged in line along an electrode horizontal axis orthogonal to the gun axis, said outer openings having inwardly extending enlargements which are symmetrical about said electrode horizontal axis and a vertical axis through the center opening, but asymmetrical about respective vertical axes through the outer openings to thereby produce said asymmetrical fields for said outer beams; and
- means for modulating the strength of said asymmetric field components acting on said outer beams as a function of beam deflection angle.
- 4. An electron gun including at least two facing apertured electrodes, one adapted to receive a relatively higher excitation potential and the other a relatively lower excitation potential, said electrodes being constructed and arranged such that a quadrupolar field component is created therebetween when different excitation potentials are applied to said facing electrodes, said electrodes including means for unbalancing the quadrupolar field component such as to cause an electron beam to be diverted from a straight line path as a function of the difference between said different excitation potentials.
- 5. The electron gun defined by claim 4 wherein said means for unbalancing comprises a distortion in the profile of one or both of associated coaxial beam-passing openings in said facing electrodes.
- 6. The electron gun defined by claim 5 wherein said profile distortion is such that the distorted opening is symmetrical about a first electrode axis, but asymmetrical about an orthogonal second electrode axis.
- 7. A three-beam in-line color CRT including quadrupole lens means for influencing said electron beams, comprising at least two facing apertured electrodes, one adapted to receive a relatively higher excitation potential and the other a relatively lower excitation potential, said electrodes having apertures configured such that quadrupolar field components are created therebetween for said beams when different excitation potentials are applied to said facing electrodes, the electrode aperture configuration being such as to unbalance the outer beam quadrupolar field components to cause said outer beams to converge or diverge from a straight line path as a function of the difference between said different excitation potentials.
- 8. The electron gun defined by claim 7 wherein said means for unbalancing comprises a distortion in the profile of one or both of associated coaxial beam-passing openings in said facing electrodes.
- 9. The electron gun defined by claim 8 wherein said profile distortion is such that the distorted opening is symmetrical about a first electrode axis, but asymmetrical about an orthogonal second electrode axis.
- 10. A three-beam in-line color CRT electron gun including an electron lens for influencing said electron beams, comprising at least two facing electrodes, a first electrode being adapted to receive a relatively higher excitation potential and a second electrode a relatively lower excitation potential, at least one of said electrodes having a center opening and two outer openings arranged in line along an electrode axis orthogonal to the gun axis, said outer apertures having inwardly extending enlargements which are symmetrical about said electrode axis and a vertical axis through the center opening, but asymmetrical about respective vertical axes through the outer openings.
- 11. A three-beam in-line color CRT gun having an axis and including a quadrupole lens for influencing said electron beams, comprising:
- at least two facing electrodes, one adapted to receive a relatively higher excitation potential and the other a relatively lower excitation potential, said electrodes including respective openings each having a profile which interacts with an opening in a facing electrode such as to create a quadrupolar field therebetween when different excitation potentials are applied to said facing electrodes, a first one of said electrodes having a center opening and two outer openings arranged in a line along an electrode axis extending orthogonal to the gun axis, said outer openings having profile distortions which are symmetrical about said electrode axis and a vertical axis through the center aperture, but asymmetrical about respective vertical axes through the outer openings to create asymmetrical outer beam fields.
- 12. The electron gun defined by claim 11 wherein said dynamic quadrupolar lens is of the unipotential type comprising three electrodes, and wherein said first one of said electrodes is the center electrode.
- 13. The apparatus by claim 11 wherein said one of said electrodes is said first electrode adapted to receive said higher potential and its outer beam openings have said profile distortions in the form of an opening enlargement extending outwardly away from said center opening.
- 14. The apparatus of claim 11 wherein said one of said electrodes is said second electrode adapted to receive said lower potential and its outer beam apertures have said profile distortions in the form of an opening enlargement extending inwardly toward said center aperture.
- 15. In a three-beam in-line electron gun system for a color cathode ray tube having a screen and a self-converging yoke which imparts an undesirable astigmatism to the beams in off-center regions of the screen, apparatus comprising:
- an electron beam source for developing three electron beams;
- focusing means for focusing said three electron beams at the screen of the tube, said focusing means being so constructed and arranged that changes in focusing field strength undesirably alter beam convergence;
- correcting lens means located within or coupled to said focusing means for developing an astigmatic field component in the path of each of said beams when said lens means is appropriately excited; and
- means for modulating the strength of said astigmatic field component as a function of beam deflection angle to at least partially compensate for said yoke-induced astigmatism in said off-center regions of the screen, said modulating of said astigmatic field component also modulating said focusing field strength and undesirably creating errors in the convergence of said beams,
- said correcting lens means including electrode means having a beam passing opening pattern shaped to create asymmetrical outer beam fields effective to at least partially compensate for said deflection-related beam convergence errors.
- 16. The apparatus defined by claim 15 wherein said correcting lens means comprises a dynamic quadrupole lens of the unipotential type comprising first, center and third electrodes.
- 17. The apparatus defined by claim 16 wherein said center electrode is adapted to receive a lower potential than said first and third electrodes, and wherein said center electrode has a center opening and two outer openings arranged in a line along an electrode axis orthogonal to the gun axis, said outer openings having profile distortions which are symmetrical about said electrode axis and a vertical axis through the center opening, but asymmetrical about respective vertical axes through the outer openings.
- 18. The apparatus defined by claim 17 wherein said aperture distortions each take the form of a notch extending inwardly toward said center aperture.
- 19. An aperture as defined by claim 18 wherein said first and third electrodes are adapted to receive a common excitation potential higher than that received by said center electrode, and wherein each of said first and third electrodes have a center opening and two outer openings arranged in a line along the electrode axis orthogonal to the gun axis, said outer openings having profile distortions which are symmetrical about said electrode axis and a vertical axis through the center opening, but asymmetrical about respective vertical axes through the outer openings.
- 20. The apparatus defined by claim 19 wherein said distortions in said outer openings of said first and third electrodes each take the form of an outwardly extending notch.
- 21. For use in a color cathode ray tube system having a color tube with a cathodoluminescent screen, a system adapted for use with a deflection yoke having an asymmetrical yoke field for self-converging said beams which undesirably astigmatizes said beams in off-center regions of the screen, said system comprising:
- an in-line electron gun for developing three electron beams for exciting said screen, said gun including, for each of said beams, means including cathode means for developing said beam, focus lens means including focus electrode means for receiving said electron beam and forming a focused electron beam spot at the screen of the tube, said focus lens means having a plurality of electrode means spaced along a lens axis;
- beam correcting means incorporated in said focus electrode means for developing in the path of said beam when said beam correcting means is appropriately excited, an astigmatic field component; and
- system signal generating means for developing a signal having amplitude variations correlated with a scan of the beams across the screen and means for applying said signal to said beam correcting means to cause, as a function of beam deflection angle, the strength of said astigmatic field component to vary to produce a dynamic astigmatism-correction effect to at least partially compensate for the beam-astigmatizing effect of said yoke, said focus lens means being so constructed and arranged that operation of said beam correcting means causes undesired deflection-related misconvergence of said beams as they are swept;
- said beam correcting means including misconvergence compensation means for at least partially compensating for said undesired beam misconvergence, comprising at least two facing electrodes, a first electrode being adapted to receive a relatively higher excitation potential and a second electrode a relatively lower excitation potential, at least one of said electrodes having a center opening and two outer openings arranged in line along an electrode axis orthogonal to the gun axis, said outer openings having profile distortions which are symmetrical about said electrode axis and a vertical axis through the center opening, but asymmetrical about respective vertical axes through the outer openings.
- 22. The electron gun defined by claim 21 wherein said misconvergence compensation means comprises an asymmetric dynamic quadrupolar lens of the unipotential type comprising first, center and third electrodes, the center electrode being adapted to receive a relatively lower excitation potential than the first and third electrodes, the center electrode having its outer apertures with said profile distortions.
- 23. The apparatus defined by claim 22 wherein said center electrode outer beam openings have said opening distortion in the form of an opening enlargement extending inwardly toward said center aperture.
- 24. For use in a color cathode ray tube system having a color tube with a cathodoluminescent screen, a system adapted for use with a deflection yoke having an asymmetrical yoke field for self-converging said beams which undesirably astigmatizes said beams in off-center regions of the screen, said system comprising:
- an in-line electron gun for developing three electron beams for exciting said screen, said gun including for each of said beams, means including cathode means for developing said beam, focus lens means including focus electrode means for receiving said electron beam and forming a focused electron beam spot at the screen of the tube, said focus lens means having a plurality of electrode means spaced along a lens axis;
- dynamic quadrupole beam correcting means incorporated in said focus electrode means for developing in the path of said beam when appropriately excited an astigmatic field component, comprising three spaced electrodes, a center electrode adapted to receive a relatively lower excitation potential and two outer electrodes adapted to receive relatively higher excitation potentials, said electrodes having openings effective when said electrodes are excited to create a quadrupolar field therebetween;
- system signal generating means for developing a signal having amplitude variations correlated with a scan of the beam across the screen and means for applying said signal to said gun to simultaneously cause, as a function of beam deflection angle, the strength of the focusing field and the strength of said astigmatic field component to vary to produce a dynamic astigmatism-correction effect to at least partially compensate for the beam-astigmatizing effect of said yoke,
- said focus lens means being so constructed and arranged such that operation of said beam correcting means causes undesired deflection-related misconvergence of said beams as they are swept;
- said beam correcting means including means for at least partially compensating for said undesired beam misconvergence, comprising at least two facing electrodes, a first electrode being adapted to receive a relatively higher excitation potential and a second electrode a relatively lower excitation potential, at least one of said electrodes having a center opening and two outer openings arranged in line along an electrode axis orthogonal to the gun axis, said outer openings having profile distortions which are symmetrical about said electrode axis and a vertical axis through the center opening, but asymmetrical about respective vertical axes through the outer openings.
- 25. For use in a color cathode ray tube (CRT) wherein first, second and third inline electron beams are directed onto a phosphorescing screen in the CRT, with said second beam disposed intermediate said first and third beams, an electron gun comprising:
- cathode means for generating electrons;
- crossover means for receiving electrons from said cathode means and for forming a beam crossover;
- first focusing means driven by a dynamic voltage for focusing the inline electron beams on the phosphorescing screen, wherein a misconvergence is present among the electron beams on the phosphorescing screen; and
- second focusing means disposed adjacent to said first focusing means for displacing the first and third electron beams horizontally toward the second beam for reducing said misconvergence and bringing said electron beams into convergence on the phosphorescing screen, wherein said second focusing means includes first and third outer apertures and a second middle aperture through which respective ones of the electron beams are directed, and wherein said first and third outer apertures each include an inwardly directed notch.
- 26. The electron gun of claim 25 wherein said first focusing means includes first and third spaced electrodes and said second focusing means includes a second electrode disposed intermediate said first and third electrodes.
- 27. The electrode of claim 26 wherein said first and third electrodes each include respective aligned, elongated apertures through which the three inline electron beams are directed.
- 28. The electron gun of claim 27 wherein the apertures in said first and third electrodes are generally horizontal and the first, second and third apertures in said second electrode are generally keyhole-shaped.
- 29. The electron gun of claim 28 wherein said first, second and third keyhole-shaped apertures in said second electrode are aligned generally vertical.
- 30. The electron gun of claim 29 wherein each of the keyhole-shaped apertures in said second electrode includes an enlarged center portion through which a respective electron beam is directed and further includes a cut-out notch extending inwardly toward the second aperture in said second electrode.
- 31. The electron gun of claim 30 wherein said first and third electrodes are a G3 lower and a G3 upper electrode, respectively, and said second electrode is a G3 middle electrode.
- 32. The electron gun of claim 31 wherein said second electrode is maintained at a fixed voltage.
- 33. The electron gun of claim 25 wherein said second focusing means includes electrostatic asymmetrical quadrupole field means for exerting a horizontal electrostatic force on the first and third outer electron beams.
- 34. The electron gun of claim 33 wherein said electrostatic quadrupole field means comprises first and third dynamically charged, spaced electrodes and a second statically charged electrode disposed therebetween.
- 35. The electron gun of claim 34 wherein said first and third dynamically charged electrodes each include a respective, elongated, horizontal slot through which the three electron beams are directed in a spaced manner.
- 36. The electron gun of claim 35 wherein each of said elongated slots includes three spaced enlarged portions, through each of which a respective one of the electron beams is directed.
- 37. The electron gun of claim 35 wherein said second electrode includes first, second and third parallel, generally vertically aligned apertures, through each of which a respective one of the electron beams is directed, and wherein said second aperture is disposed intermediate said first and third apertures.
- 38. The electron gun of claim 37 wherein each of said first and third apertures includes a cut-out notch extending inwardly toward said second slot in said second electrode.
- 39. The electron gun of claim 38 wherein each of said apertures is in the general form of a keyhole having an enlarged generally circular center portion, and wherein the cut-out notches extend inwardly from the center circular portion of the first and third slots.
- 40. The electron gun of claim 25 wherein each of said apertures is generally circular.
- 41. The electron gun of claim 34 further comprising a first fixed voltage source for providing a fixed voltage VF.sub.1 to said second statically charged electrode and a second variable voltage source for providing a variable voltage VF.sub.2 to said first and third dynamically charged electrodes.
- 42. The electron gun of claim 41 wherein said variable voltage VF.sub.2 varies periodically with time and assumes values greater and less than the fixed voltage VF.sub.1 for alternately changing the relative polarity of said dynamically and statically charged electrodes.
- 43. The electron gun of claim 42 wherein said variable voltage VF.sub.2 is greater than said fixed voltage VF.sub.1 when the electron beams are positioned toward a lateral edge of the CRT screen, and wherein said variable voltage VF.sub.2 is less than said fixed voltage VF.sub.1 when the electron beams are positioned in the area of the center of the CRT screen.
- 44. The electron gun of claim 41 wherein said second variable voltage VF.sub.2 varies periodically between values greater than and equal to said fixed voltage VF.sub.1.
- 45. The electron gun of claim 44 wherein said first variable voltage VF.sub.2 is greater than said second fixed voltage VF.sub.1 when the electron beams are positioned adjacent to a lateral edge of the CRT screen, and wherein said first variable voltage VF.sub.2 equals said second fixed voltage VF.sub.1 when the electron beams are positioned adjacent to the center of the CRT screen.
- 46. The electron gun of claim 39 wherein said first and third dynamically charged electrodes each includes a respective elongated slot having a longitudinal axis generally aligned with the inline electron beams, and wherein the electron beams are directed through each of said elongated slots.
- 47. The electron gun of claim 46 wherein each of said elongated slots includes a plurality of enlarged portions arranged in a spaced manner along the length thereof, and wherein each enlarged portion of a slot is aligned with and passes a respective electron beam.
- 48. The electron gun of claim 33 wherein said electrostatic quadrupole field means is disposed between said beam crossover and the CRT screen.
- 49. The electron gun of claim 33 wherein said electrostatic quadrupole field means is disposed between said cathode means and said beam crossover.
- 50. For use in focusing a plurality of electron beams on a phosphorescing screen of a color cathode ray tube (CRT), wherein said electron beams are aligned in an inline array and are focused on said phosphorescing screen by a dynamic focus voltage which causes misconvergence of said electron beams, an electron gun comprising:
- an electron beam source for generating and directing a plurality of electron beams in a common direction;
- a first dynamically charged electrode having at least one aperture therein through which the electron beams are directed;
- a second statically charged electrode having a plurality of apertures therein through each of which a respective one of the electron beams is directed, wherein said second electrode includes first and third outer apertures and a second aperture intermediate said first and third apertures, and wherein said first and third apertures include respective notched portions extending inward toward said second aperture for moving said first and third electron beams in a generally horizontal direction and eliminating misconvergence between the electron beams; and
- a third dynamically charged electrode having at least one aperture therein through which the electron beams are directed, wherein said second electrode is disposed intermediate said first and third electrodes.
- 51. In an electron gun for accelerating and focusing a plurality of inline electron beams on a cathode ray tube (CRT) screen and including a focusing electrode, the improvement comprising:
- a first dynamically charged electrode incorporated in a first portion of said focusing electrode and having at least one elongated aperture for passing one or more of the electron beams;
- a third dynamically charged electrode incorporated in a second portion of said focusing electrode and having at least one elongated aperture for passing one or more of the electron beams, wherein said first and third electrodes are arranged in spaced relation along the electron beams so as to divide the focusing electrode into first and second focusing electrode portions; and
- a second statically charged electrode disposed along the electron beams between said first and third electrodes so as to form first and second electrostatic quadrupole fields respectively therewith, wherein said second electrode includes a plurality of spaced elongated apertures each adapted for passing a respective one of the electron beams and wherein the apertures in said first and third electrodes are aligned generally transverse to the apertures in said second electrode, and wherein a pair of outer apertures in said second electrode each include a respective inner cut-out portion for horizontally deflecting a pair of outer electron beams toward a center electron beam and causing said electron beams to converge on a phosphorescing screen of the CRT.
- 52. For use in a color cathode ray tube system having a color tube with a cathodoluminescent screen, the system comprising:
- an inline electron gun for developing first and third outer electron beams and a second center electron beam for exciting said screen, said gun including, for each of said beams, means including cathode means for developing said beam, focus lens means for receiving said electron beam and forming a focused electron beam spot at the screen of the tube, said focus lens means having a plurality of electrode means spaced along a lens axis including focus electrode means;
- yoke means for deflecting said electron beams, said yoke means having an asymmetrical field for self-converging said beams which undesirably astigmatizes said beams in off-center regions of the screen;
- beam correcting means incorporated in said focus electrode means for developing in the path of said beam when appropriately excited a first astigmatic accelerating field component and a second astigmatic decelerating field component;
- system signal generating means for developing a signal having amplitude variations correlated with a scan of the beam across the screen and means for applying said signal to said beam correcting means to cause, as a function of beam deflection angle, the strength of said first and second astigmatic field components to vary to produce a dynamic astigmatism-correction effect to at least partially compensate for the beam-astigmatizing effect of said yoke; and
- convergence correcting means incorporated in said focus electrode means for horizontally deflecting said two outer electron beams toward said second center electron beam on the cathodoluminescent screen in correcting for misconvergence of the electron beams, said convergence correcting means including an electrode having first and second offset keyhole-shaped slots through which said first and third outer electron beams are directed for exerting an asymmetrical electrostatic field on said first and third outer electron beams.
- 53. For use in a color cathode ray tube system having a color tube with a phosphor screen, the system comprising:
- a three-beam, in-line gun for exciting said screen, said gun including;
- cathode means and focus lens means for developing a center beam and two outer beams and for forming three focused electron beam spots at the screen of the tube, and
- electrostatic quadrupole-developing means configured and arranged to develop a horizontally unbalanced quadrupole field in the path of each of said outer beams when appropriately excited; and
- system signal generating means for developing a signal having amplitude variations correlated with the scan of the beams across the screen and for applying said signal to said electrostatic quadrupole-developing means to cause said beams to converge and diverge as a function of the strength of said signal, said quadrupole-developing means including electrode means having outer beam apertures shaped to create field-strength-dependent asymmetrical outer beam fields whose strength varies as said signal varies.
- 54. The system defined by claim 53 wherein said quadrupole-developing means comprises at lest two facing electrodes, one adapted to receive a relatively higher excitation potential and the other a relatively lower excitation potential, the outer apertures of said electrode each having a profile which interacts with an aperture in a facing second electrode having an orthogonally different profile such as to create a quadrupolar field therebetween when different excitation potentials are applied to said first and second electrodes, at least a first one of said electrodes having a center aperture and two outer apertures arranged in a line along an electrode, an axis extending orthogonal to the gun axis, said outer apertures of said first electrode having profile distortions which are symmetrical about said electrode axis and a vertical axis through the center aperture, but asymmetrical about respective vertical axes through the outer apertures to create asymmetrical outer beam fields.
CROSS-REFERENCE TO RELATED APPLICATIONS
This application is a continuation-in-part of an application Ser. No. 392,630, filed Aug. 11, 1989. It is related to but in no way dependent upon co-pending application Ser. No. 579,128 filed Sept. 6, 1990.
US Referenced Citations (5)
Continuation in Parts (1)
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Number |
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392630 |
Aug 1989 |
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