Claims
- 1. A tube comprising:a tube envelope having a faceplate and a screen electrode on the faceplate biased at a screen potential; a source of plural beams of electrons directed away from said faceplate, wherein said source is adapted for scanning deflection of said plural beams of electrons; a shadow mask proximate said faceplate having a plurality of apertures therethrough, wherein said shadow mask is biased at the screen potential; phosphorescent material disposed on said faceplate for producing light in response to the plural beams of electrons impinging thereon, wherein said phosphorescent material includes a pattern of different phosphorescent materials on said faceplate that emit different color light in response to the plural beams of electrons impinging thereon through the apertures of said shadow mask; and at least first and second electrodes interior said tube envelope and spaced away from said faceplate for bending the plural beams of electrons towards said faceplate, wherein said first electrode is relatively proximate said source in a direction generally parallel said faceplate and said second electrode is relatively distal said source in a direction generally parallel said faceplate, thereby defining a volume between said faceplate and said electrodes in which the plural beams of electrons may be bent, wherein said first electrode is biased at a potential substantially less than the screen potential, and wherein said second electrode is biased at a potential one of less than and greater than the screen potential.
- 2. A display comprising:a tube envelope having a faceplate and a screen electrode on the faceplate biased at a screen potential; a source of plural beams of electrons directed away from said faceplate, wherein said source is adapted for scanning deflection of said plural beams of electrons; a shadow mask proximate said faceplate having a plurality of apertures therethrough, wherein said shadow mask is biased at the screen potential; deflection means proximate said source for scanning deflection of said plural beams of electrons; phosphorescent material disposed on said faceplate for producing light in response to the plural beams of electrons impinging thereon, wherein said phosphorescent material includes a pattern of different phosphorescent materials on said faceplate that emit different color light in response to a respective one of the plural beams of electrons impinging thereon through the apertures of said shadow mask; and at least first and second electrodes interior said tube envelope and spaced away from said faceplate for deflecting the plural beams of electrons towards said faceplate, wherein said first electrode is relatively proximate said source in a direction generally parallel said faceplate and said second electrode is relatively distal said source in a direction generally parallel said faceplate, thereby defining a volume between said faceplate and said electrodes in which the plural beams of electrons may be deflected, wherein said first electrode is biased at a first potential substantially less than the screen potential, and wherein said second electrode is biased at a second potential less than the screen potential, and a source of the first, second and screen potentials.
- 3. A cathode ray tube comprising:a tube envelope having a generally flat faceplate and a screen electrode on the faceplate biased at a positive screen potential, and having a tube neck positioned proximate one edge of said faceplate; in said tube neck, a source of at least one beam of electrons directed away from said faceplate, wherein said source is for scanning deflection of said at least one beam of electrons; a deflection yoke around said source of a beam of electrons for deflecting the beam of electrons from said source over a predetermined range of deflection angles; phosphorescent material disposed on said faceplate for producing light in response to the beam of electrons impinging thereon; and at least first, second and third deflection electrodes spaced apart from said faceplate within said tube envelope for deflecting the beam of electrons towards said faceplate and defining a volume within which the beam of electrons may be so deflected, wherein said first electrode is proximate said source in a direction generally parallel said faceplate and biased at a potential less than the screen potential, wherein said third electrode is distal said source in a direction generally parallel said faceplate and is biased at a positive potential less than the screen potential, wherein said second electrode is between said first electrode and said third electrode in a direction generally parallel said faceplate and is biased at a potential more positive than the bias potential of the second electrode and not exceeding the screen potential, whereby the deflected beam of electrons are deflected by at least one of said first, second and third electrodes to impinge on a substantial area of said screen electrode and said faceplate.
- 4. A cathode ray tube comprising:a tube envelope having a generally flat faceplate and a screen electrode on the faceplate biased at a screen potential, and having a tube neck positioned proximate one edge of said faceplate; in said tube neck, a source of at least one beam of electrons directed away from said faceplate, wherein said source is for scanning deflection of said at least one beam of electrons; a deflection yoke around said source of a beam of electrons for deflecting the beam of electrons from said source over a predetermined range of deflection angles; phosphorescent material disposed on said faceplate for producing light in response to the beam of electrons impinging thereon; a shadow mask proximate said faceplate having a plurality of apertures therethrough, wherein said shadow mask is biased at said screen potential, and wherein said phosphorescent material includes a pattern of different phosphorescent materials that emit different respective colors of light in response to said beam of electrons impinging thereon; at least first, second and third deflection electrodes spaced apart from said faceplate within said tube envelope for deflecting the beam of electrons towards said faceplate and defining a volume within which the beam of electrons may be so deflected, wherein said first electrode is proximate said source in a direction generally parallel said faceplate and is biased at a potential less than the screen potential, wherein said third electrode is distal said source in a direction generally parallel said faceplate and is biased at a potential less than the screen potential, wherein said second electrode is between said first electrode and said third electrode in a direction generally parallel said faceplate and is biased at a potential not exceeding the screen potential, whereby the deflected beam of electrons are deflected by at least one of said first, second and third electrodes to impinge on a substantial area of said screen electrode and said faceplate.
- 5. The cathode ray tube of claim 3 wherein at least one of said first, second and third electrodes comprises one of a conductive material deposited on an interior surface of said tube envelope and a metal electrode attached to the interior of said tube envelope, and wherein at least one of said first, second and third electrodes is electrically connected to a conductor penetrating said tube envelope.
- 6. A display comprising:a faceplate having a near edge and a far edge, a screen electrode on said faceplate biased at a positive screen potential, and phosphorescent material disposed on said faceplate for producing light in response to a beam of electrons impinging thereon; a tube envelope joined to said faceplate at least at the near and far edges thereof, wherein the joined tube envelope and faceplate define a tube volume therebetween, a source of at least one beam of electrons disposed proximate the near edge of said faceplate, wherein said at least one beam of electrons is directed into the tube volume in a direction away from said faceplate, deflection neans for scanning deflection of the at least one beam of electrons within the tube volume, whereby said deflection means provides at least one scanning deflected beam of electrons directed into the tube volume; a first electrode within the tube volume on said tube envelope relatively proximate the near edge of said faceplate, wherein said first electrode is biased at a first potential substantially less than the screen potential for establishing an electrostatic field within the tube volume relatively proximal the near edge of said faceplate for urging the at least one scanning deflected beam of electrons within the tube volume towards said faceplate, a second electrode within the tube volume on said tube envelope relatively distal the near edge of said faceplate, wherein said second electrode is biased at a second potential that is more positive than the bias potential of said first electrode and is one of less than and greater than the screen potential for establishing an electrostatic field within the tube volume relatively distal the near edge of said faceplate for urging the at least one scanning deflected beam of electrons within the tube volume one of towards and away from said faceplate; and a source of the first second and screen potentials.
- 7. A display comprising:a faceplate having a near edge and a far edge, a screen electrode on said faceplate biased at a screen potential, and phosphorescent material disposed on said faceplate for producing light in response to a beam of electrons impinging thereon; a tube envelope joined to said faceplate at least at the near and far edges thereof, wherein the joined tube envelope and faceplate define a tube volume therebetween, a source of plural beams of electrons disposed proximate the near edge of said faceplate, wherein said plural beams of electrons are directed into the tube volume in a direction away from said faceplate, deflection means for scanning deflection of the plural beams of electrons within the tube volume, whereby said deflection means provides plural scanning deflected beams of electrons directed into the tube volume; a shadow mask proximate said faceplate having a plurality of apertures therethrough, wherein said shadow mask is biased at the screen potential, and wherein said phosphorescent material includes a pattern of different phosphorescent materials on said faceplate that emit different color light in response to the plural beams of electrons impinging thereon through the apertures of said shadow mask; a first electrode within the tube volume on said tube envelope relatively proximate the near edge of said faceplate, wherein said first electrode is biased at a first potential substantially less than the screen potential for establishing an electrostatic field within the tube volume relatively proximal the near edge of said faceplate for urging the plural scanning deflected beams of electrons within the tube volume towards said faceplate, a second electrode within the tube volume on said tube envelope relatively distal the near edge of said faceplate, wherein said second electrode is biased at a second potential one of less than and greater than the screen potential for establishing an electrostatic field within the tube volume relatively distal the near edge of said faceplate for urging the plural scanning deflected beams of electrons within the tube volume one of towards and away from said faceplate; and a source of the first second and screen potentials.
- 8. A display comprising:a faceplate having a near edge and a far edge, a screen electrode on said faceplate adapted to be biased at a screen potential, and phosphorescent material disposed on said faceplate for producing light in response to a beam of electrons impinging thereon; a tube envelope joined to said faceplate at least at the near and far edges thereof, wherein the joined tube envelope and faceplate define a tube volume therebetween, a source of at least one beam of electrons disposed proximate the near edge of said faceplate, wherein said at least one beam of electrons is directed into the tube volume in a direction away from said faceplate, deflection means for scanning deflection of the at least one beam of electrons within the tube volume, whereby said deflection means provides at least one scanning deflected beam of electrons directed into the tube volume; a first electrode within the tube volume on said tube envelope relatively proximate the near edge of said faceplate, wherein said first electrode is biased at a first potential substantially less than the screen potential for establishing an electrostatic field within the tube volume relatively proximal the near edge of said faceplate for urging the at least one scanning deflected beam of electrons within the tube volume towards said faceplate, a second electrode within the tube volume on said tube envelope relatively distal the near edge of said faceplate, wherein said second electrode is biased at a second potential one of less than and greater than the screen potential for establishing an electrostatic field within the tube volume relatively distal the near edge of said faceplate for urging the at least one scanning deflected beam of electrons within the tube volume one of towards and away from said faceplate; a source of the first, second and screen potentials; and a third electrode within the tube volume on said tube envelope for urging the beam of electrons towards said faceplate, wherein said third electrode is biased at a third potential less than the screen potential, wherein said third electrode is more distal the near edge of said faceplate than is said second electrode, whereby said third electrode is on said tube envelope between said second electrode and the far edge of said faceplate.
- 9. The display of claim 8 wherein said third electrode includes:one of a conductive material deposited on an interior surface of said tube envelope, and a plurality of sub-electrodes biased at different potentials.
- 10. The display of claim 9,wherein said plurality of sub-electrodes are mounted to a plurality of supports attached to the interior surface of said tube envelope, and wherein at least one of said sub-electrodes is electrically connected to a conductor penetrating said tube envelope.
- 11. The display of claim 6 wherein at least one of said first and second electrodes includes a conductive material deposited on an interior surface of said tube envelope.
- 12. The display of claim 6 wherein at least one of said first and second electrodes includes a plurality of sub-electrodes biased at different potentials.
- 13. The display of claim 12,wherein said plurality of sub-electrodes are mounted to a plurality of supports attached to an interior surface of said tube envelope, and wherein at least one of said sub-electrodes is electrically connected to a conductor penetrating said tube envelope.
- 14. A display comprising:a faceplate having a near edge and a far edge, a screen electrode on said faceplate biased at a screen potential, and phosphorescent material disposed on said faceplate for producing light in response to a beam of electrons impinging thereon; a tube envelope joined to said faceplate at least at the near and far edges thereof, wherein the joined tube envelope and faceplate define a tube volume therebetween; a source of at least one beam of electrons disposed proximate the near edge of said faceplate, wherein said at least one beam of electrons is directed into the tube volume in a direction away from said faceplate, deflection means for scanning deflection of the at least one beam of electrons within the tube volume, whereby said deflection means provides at least one scanning deflected beam of electrons directed into the tube volume; a first electrode within the tube volume on said tube envelope relatively proximate the near edge of said faceplate, wherein said first electrode is biased at a first potential substantially less than the screen potential for establishing an electrostatic field within the tube volume relatively proximal the near edge of said faceplate for urging the at least one scanning deflected beam of electrons within the tube volume towards said faceplate, a second electrode within the tube volume on said tube envelope relatively distal the near edge of said faceplate, wherein said second electrode is biased at a second potential one of less than and greater than the screen potential for establishing an electrostatic field within the tube volume relatively distal the near edge of said faceplate for urging the at least one scanning deflected beam of electrons within the tube volume one of towards and away from said faceplate; and a source of the first, second and screen potentials; wherein at least one of said first and second electrodes includes a plurality of sub-electrodes adapted to be biased at different potentials, wherein at least one of said sub-electrodes is biased at a potential more positive than the screen potential.
- 15. The display of claim 6,wherein said screen potential is a high positive potential, and wherein said first potential is one of a negative potential and a ground potential.
- 16. The display of claim 6 wherein said source of potential comprises a voltage divider within said tube volume receiving a bias potential for developing at least one of the first, second and screen potentials.
- 17. The display of claim 6,wherein when said faceplate is positioned in a substantially vertical plane with the near edge being a bottom edge thereof and the far edge being a top edge thereof, wherein said source of a beam of electrons is substantially centered along and proximate to the bottom edge of said faceplate, and wherein said second electrode is positioned substantially along and proximate to at least the top edge of said faceplate.
- 18. A tube comprising:a faceplate having a near edge and a far edge, a screen electrode on said faceplate biased at a screen potential, and phosphorescent material disposed on said faceplate for producing light in response to a beam of electrons impinging thereon; a tube envelope joined to said faceplate at least at the near and far edges thereof, wherein the joined tube envelope and faceplate define a tube volume therebetween, a source of at least one beam of electrons disposed proximate the near edge of said faceplate, wherein said at least one beam of electrons is directed into the tube volume in a direction away from said faceplate, wherein said source is for scanning deflection of said at least one beam of electrons in a deflection region proximate an exit thereof; a first electrode within the tube volume on said tube envelope relatively proximate the near edge of said faceplate, wherein said first electrode is biased at a potential substantially less than the screen potential for establishing an electrostatic field within said tube volume relatively proximal the near edge of said faceplate for urging the beam of electrons within the tube volume towards said faceplate, and a second electrode within the tube volume on said tube envelope relatively distal the near edge of said faceplate, wherein said second electrode is biased at a potential that is closer in potential to the screen potential than is the bias potential of said first electrode and is one of less than and greater than the screen potential for establishing an electrostatic field within the tube volume relatively distal the near edge of said faceplate for urging the beam of electrons within the tube volume one of towards and away from said faceplate.
- 19. A tube comprising:a faceplate having a near edge and a far edge, a screen electrode on said faceplate biased at a screen potential, and phosphorescent material disposed on said faceplate for producing light in response to a beam of electrons impinging thereon; a tube envelope joined to said faceplate at least at the near and far edges thereof, wherein the joined tube envelope and faceplate define a tube volume therebetween, a source of at least one beam of electrons disposed proximate the near edge of said faceplate, wherein said at least one beam of electrons is directed into the tube volume in a direction away from said faceplate, wherein said source is for scanning deflection of said at least one beam of electrons in a deflection region proximate an exit thereof; a shadow mask proximate said faceplate having a plurality of apertures therethrough, wherein said shadow mask is biased at the screen potential, and wherein said phosphorescent material includes a pattern of different phosphorescent materials on said faceplate that emit different color light in response to the beam of electrons impinging thereon through the apertures of said shadow mask; a first electrode within the tube volume on said tube envelope relatively proximate the near edge of said faceplate, wherein said first electrode is biased at a potential substantially less than the screen potential for establishing an electrostatic field within said tube volume relatively proximal the near edge of said faceplate for urging the beam of electrons within the tube volume towards said faceplate, and a second electrode within the tube volume on said tube envelope relatively distal the near edge of said faceplate, wherein said second electrode is biased at a potential one of less than and greater than the screen potential for establishing an electrostatic field within the tube volume relatively distal the near edge of said faceplate for urging the beam of electrons within the tube volume one of towards and away from said faceplate.
- 20. A tube comprising:a faceplate having a near edge and a far edge, a screen electrode on said faceplate biased at a screen potential, and phosphorescent material disposed on said faceplate for producing light in response to a beam of electrons impinging thereon; a tube envelope joined to said faceplate at least at the near and far edges thereof, wherein the joined tube envelope and faceplate define a tube volume therebetween, a source of at least one beam of electrons disposed proximate the near edge of said faceplate, wherein said at least one beam of electrons is directed into the tube volume in a direction away from said faceplate, wherein said source is for scanning deflection of said at least one beam of electrons in a deflection region proximate an exit thereof; a first electrode within the tube volume on said tube envelope relatively proximate the near edge of said faceplate, wherein said first electrode is to be biased at a potential substantially less than the screen potential for establishing an electrostatic field within said tube volume relatively proximal the near edge of said faceplate for urging the beam of electrons within the tube volume towards said faceplate, a second electrode within the tube volume on said tube envelope relatively distal the near edge of said faceplate, wherein said second electrode is biased at a potential one of less than and greater than the screen potential for establishing an electrostatic field within the tube volume relatively distal the near edge of said faceplate for urging the beam of electrons within the tube volume one of towards and away from said faceplate; and a third electrode within the tube volume on said tube envelope for urging the beam of electrons towards said faceplate, wherein said third electrode is biased at a third potential less than the screen potential, wherein said third electrode is more distal the near edge of said faceplate than is said second electrode, whereby said third electrode is on said tube envelope between said second electrode and the far edge of said faceplate.
- 21. The tube of claim 20 wherein said third electrode includes:one of a conductive material deposited on an interior surface of said tube envelope, and a plurality of sub-electrodes biased at different potentials.
- 22. The tube of claim 21,wherein said plurality of sub-electrodes are mounted to a plurality of supports attached to the interior surface of said tube envelope, and wherein at least one of said sub-electrodes is electrically connected to a conductor penetrating said tube envelope.
- 23. The tube of claim 18 wherein at least one of said first and second electrodes includes a conductive material deposited on an interior surface of said tube envelope.
- 24. The tube of claim 18 wherein at least one of said first and second electrodes includes a plurality of sub-electrodes adapted to be biased at different potentials.
- 25. The tube of claim 24,wherein said plurality of sub-electrodes are mounted to a plurality of supports attached to an interior surface of said tube envelope, and wherein at least one of said sub-electrodes is electrically connected to a conductor penetrating said tube envelope.
- 26. The tube of claim 24 wherein at least one of said sub-electrodes is biased at a potential more positive than the screen potential.
- 27. The tube of claim 24 further comprising a voltage divider within said tube volume and adapted for receiving a bias potential for developing at least one of the potentials at which said first, second and screen electrodes and said sub-electrodes are to be biased.
- 28. The tube of claim 18,wherein said screen potential is a high positive potential, and wherein said first potential is one of a negative potential and a ground potential.
- 29. The tube of claim 18 further comprising a voltage divider within said tube volume and for receiving a bias potential for developing at least one of the potentials at which said first, second and screen electrodes are biased.
- 30. The tube of claim 18,wherein when said faceplate is positioned in a substantially vertical plane with the near edge being a bottom edge thereof and the far edge being a top edge thereof, wherein said source of a beam of electrons is substantially centered along and proximate to the bottom edge of said faceplate, and wherein said second electrode is positioned substantially along and proximate to at least the top edge of said faceplate.
Parent Case Info
This Application claims the benefit of U.S. Provisional Application Ser. No. 60/131,919 filed Apr. 30, 1999, U.S. Provisional Application Ser. No. 60/137,379 filed Jun. 3, 1999, U.S. Provisional Application Ser. No. 60/160,654 filed Oct. 21, 1999, U.S. Provisional application Ser. No. 60/160,772 filed Oct. 21, 1999, and U.S. Provisional Application Ser. No. 60/170,159 filed Dec. 10, 1999.
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Provisional Applications (5)
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Number |
Date |
Country |
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60/131919 |
Apr 1999 |
US |
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60/137379 |
Jun 1999 |
US |
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60/160654 |
Oct 1999 |
US |
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60/160772 |
Oct 1999 |
US |
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60/170159 |
Dec 1999 |
US |