Claims
- 1. In an electron discharge tube having an electron gun positioned at one end of the tube for producing a beam of electrons directed along a beam axis in the tube and deflection means for deflecting the electron beam to form an image, an electrostatic lens system positioned downstream of the deflection means along the beam axis and comprising:
- slot lens means including a plurality of apertured electrodes having slots symmetrically aligned about the beam axis;
- accelerating and scan expansion lens means including two aligned cooperating electrodes supported downstream of the slot means to provide in cooperation with the slot lens means a linear magnification of the amount of electron beam deflection produced by the deflection means; and
- an exit lens means including a lens electrode supported adjacent the output of the accelerating and scan expansion lens means, the lens electrode having a slot aperture through which the beam travels and having means to receive a fixed potential to produce in the vicinity of the lens electrode electric field flux lines that change the direction of the beam in a manner that provides corrected geometry of the image.
- 2. The lens system in accordance with claim 1 in which the electrodes of the slot lens means comprise spaced-apart substantially flat wafers, at least some of the wafers having applied thereto voltages which produce an electric field that influences the direction of the electron beam traveling through the apertures so as to linearize the magnification of the accelerating and scan expansion lens means.
- 3. The lens system in accordance with claim 1 in which the two aligned cooperating electrodes of the accelerating and scan expansion lens means include overlapping coaxial inner and outer tubular lens electrodes of different diameters, the inner tubular electrode having at one end thereof a pair of opposed projections on opposite sides of the beam axis, the projections being aligned transversely of opposed concave surfaces on the one end of the inner electrode, and the outer tubular electrode comprising a cylinder which extends over the opposed projections of the inner electrode.
- 4. The lens system in accordance with claim 3 in which the one end of the inner tubular electrode includes two curvilinear portions, each portion having three concave sections and being positioned between adjacent sides of the pair of projections to separate each projection from the other, each projection comprising a pair of lobes with one lobe being separated from the other lobe of the pair by a concave portion on the one end of the inner tubular electrode.
- 5. The lens system in accordance with claim 4 in which the profile of the one end of the inner tubular electrode is symmetrical about first and second reference planes substantially perpendicular to each other, the first plane being positioned coincident with the axis of the lens electrodes and aligned with the one end of the inner electrode so as to bisect the curvilinear portions separating the opposed projections to form a first pair of regions wherein each region includes one projection and is the mirror image of the other region, and the second plane intersects the first plane orthogonally along the axis of the lens electrodes so as to bisect the symxetrical concave portions separating the pair of lobes of each projection to form a second pair of regions wherein each region includes the adjacent lobes of the pair of projections and one of the curvilinear portions and is the mirror image of the other region.
- 6. The lens system in accordance with claim 5 in which the axis of the lens electrodes is coincident with the beam axis.
- 7. In an electron discharge tube having an electron gun positioned at one end of the tube for producing a beam of electrons directed along a beam axis in the tube and deflection means for deflecting the electron beam to form an image, an electrostatic lens system positioned downstream of the deflection means along the beam axis and comprising:
- slot lens means including a plurality of apertured electrodes having slots symmetrically aligned about the beam axis;
- accelerating and scan expansion lens means including two aligned cooperating electrodes supported downstream of the slot lens means to provide in cooperation with the slot lens means a linear magnification of the amount of electron beam deflection produced by the deflection means; and
- exit lens means including a lens electrode supported adjacent the output of the accelerating and scan expansion lens means and having a slot aperture to provide corrected geometry of the image,
- the slot aperture of the exit lens means electrode having a pair of aligned notch portions in the edge of the slot aperture on opposite sides of the beam axis.
- 8. A cathode ray tube comprising:
- an electron gun means to produce a beam of electrons directed along a beam axis in the tube;
- deflection means to deflect the beam relative to the beam axis to produce an image on the fluorescent screen of the tube; and
- an electrostatic lens means positioned downstream of the deflection means and including an accelerating and scan expansion lens means disposed between a slot lens means and an exit lens means,
- the exit lens means including means to receive a fixed potential to develop in the vicinity thereof electric field flux lines, and
- the accelerating and scan expansion lens means including a pair of aligned cooperating tubular electrodes in cooperation with the slot lens means to provice a linear magnification of the amount of deflection produced by the deflection means and to accelerate the electrons in the deflection beam, and in cooperation with the exit lens means so that the electrice field flux lines in the vicinity of the exit lens means produce a change in the direction of the beam in a manner to provide corrected geometry of the image.
- 9. The tube in accordance with claim 8 in which the slot lens means includes a plurality of electrodes having slot apertures symmetrically aligned about the beam axis.
- 10. The tube in accordance with claim 9 in which the electrodes of the slot lens means comprise spaced-apart substantially flat wafers, certain ones of the wafers having applied thereto voltages that produce a compensating electric field in the vicinity of the apertures to correct for nonlinear magnification by the accelerating and scan expansion lens means.
- 11. The tube in accordance with claim 8 in which the pair of aligned tubular electrodes of the accelerating and scan expansion lens means include coaxial inner and outer tubular electrodes of different diameters, the inner electrode having a contoured end which extends into the outer electrode, the contoured end comprising a pair of projections disposed face-to-face on opposite sides of the beam axis and a pair of curvilinear portions positioned between adjacent sides of the pair of projections to separate each projection from the other.
- 12. The tube in accordance with claim 8 in which the exit lens means is supported downstream of the output of the accelerating and scan expansion lens means and includes an exit lens electrode having an aperture through which the electron beam travels.
- 13. A cathode ray tube comprising:
- electron gun means to produce a beam of electrons directed along a beam axis in the tube;
- deflection means to deflect the beam relative to the beam axis to produce an image on the fluorescent screen of the tube; and
- electrostatic lens means positioned downstream of the deflection means and including an accelerating and scan expansion lens means disposed between a slot lens means and an exit lens means, the accelerating and scan expansion lens means including a pair of aligned cooperating tubular electrodes in cooperation with the slot lens means to provide a linear magnification of the amount of deflection produced by the deflection means and to accelerate the electrons in the deflected beam, and in cooperation with the exit lens means to provide corrected geometry of the image,
- the exit lens means being supported downstream of the output of the accelerating and scan expansion lens means and including an exit lens electrode having an aperture through which the electron beam travels and aligned notches in the edge of the aperture on opposite sides of the beam axis.
- 14. A cathode ray tube comprising:
- an electron gun means to produce a beam of electrons directed along a beam axis in the tube;
- deflection means to deflect the beam relative to the beam axis to produce an image on the fluorescent screen of the tube;
- an accelerating and scan expansion lens means positioned downstream of the deflection means to magnify the amount of electron beam deflection produced by the deflection means and to accelerate the electrons in the deflected electron beam; and
- first and second compensating lenses in communication with the accelerating and scan expansion lens means, the first compensating lens being positioned adjacent the input of the accelerating and scan expansion lens means to correct for nonlinear magnification of electron beam deflection and the second compensating lens being positioned adjacent the output of the accelerating and scan expansion lens means to correct for geometry distortion of the image, the first compensating lens having substantially no effect on the correction by the second compensating lens for geometry distortion of the image and the second compensating lens having substantially no effect on the correction by the first compensating lens for nonlinear magnification of electron beam deflection.
- 15. The tube in accordance with claim 14 in which the accelerating and scan expansion lens means includes a pair of aligned tubular electrodes.
- 16. The tube in accordance with claim 14 in which the first compensating lens includes a plurality of apertured slot electrodes having slots symmetrically aligned about the beam axis.
- 17. The tube in accordance with claim 14 in which the second compensating lens includes an exit lens electrode having an aperture disposed symmetrically with respect to the beam axis.
- 18. A cathode ray tube comprising:
- electron gun means to produce a beam of electrons directed along a beam axis in the tube;
- deflection means to deflect the beam relative to the beam axis to produce an image on the fluorescent screen of the tube;
- accelerating and scan expansion lens means positioned downstream of the deflection means to magnify the amount of electron beam deflection produced by the defection means and to accelerate the electrons in the deflected electron beam; and
- first and second compensating lenses, each of the compensating lenses being frictionally substantially independent of the other lens and in communication with the accelerating and scan expansion lens means, the first compensating lens being positioned adjacent the input of the accelerating and scan expansion lens means to correct for nonlinear magnification of electron beam deflection and the second compensating lens being positioned adjacent the output of the accelerating and scan expansion lens mens to correct for geometry distortion of the image,
- the second compensating lens including an exit lens electrode having an aperture disposed symmetrically with respect to the beam axis and a pair of aligned notches in the edge of the aperture on opposite sides of the beam axis.
Parent Case Info
This is a continuation of application Ser. No. 453,447 filed Dec. 27, 1982 and now abandoned.
US Referenced Citations (7)
Foreign Referenced Citations (4)
Number |
Date |
Country |
601948 |
May 1948 |
GBX |
1067477 |
May 1967 |
GBX |
1227828 |
Apr 1971 |
GBX |
1299285 |
Dec 1972 |
GBX |
Non-Patent Literature Citations (2)
Entry |
O. Klemperer, Electron Optics, pp. 100-106, (3rd ed. Cambridge University Press, 1971). |
A. Martin and J. Deschamps, A Short Length Rectangular Oscilloscope Tube with High Deflection Sensitivity by using an Original Technique, 12 Proceedings of the Society for Information Display, 18(1st Qtr, 1971), pp. 16-21. |
Continuations (1)
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Number |
Date |
Country |
Parent |
453447 |
Dec 1982 |
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