FIELD OF THE INVENTION
[0001] This invention relates to an electron gun assembly for a color image receiving tube.
Specifically, the invention relates to an electron gun assembly which prevents a lowering
of the focusing characteristic of a color image receiving tube from being disturbed
by aberrations caused by deviation of the centers of electron beams through holes
of a main lens and by the occurrence of uneven magnetic field phenomena upon electron
beams, such as deflection yoke, during the operation of the electron gun assembly.
BACKGROUND OF THE INVENTION
[0002] Generally, a color image receiving tube comprises a panel 11 on which a fluorescent
film 12 is coated and a funnel 13 attached to the back of the panel 11 as shown in
Fig. 1. Inside the image receiving tube, an electron gun assembly 8 emitting thermion
and a shadow mask 14 distinguishing colors are installed. A deflection yoke 15 is
mounted on the outer surface of the funnel 13 in order to deflect the electron beams.
[0003] The electron gun assembly 8 is comprised of a cathode electrode heated and operated
by a heater, a controlling electrode, a screen electrode, a focus electrode, an anode
electrode and a shield cup which are placed in series in front of the cathode electrode.
[0004] Each electrode is placed apart from each other at regular intervals and supported
by bead glass in the shape of a pole or a plate. Each electrode has three electron
beam passage holes.
[0005] Further, at least two electrostatic lenses are formed in the electron gun assembly;
one is a pre-focus lens formed by the potential differences between the applied voltage
of the screen electrode and the applied voltage of the focus electrode, and the other
is a main lens formed by the potential differences between the applied voltage of
the focus electrode and the applied voltage of the anode electrode. The pre-focus
lens helps prevent the electron beam which emits toward the main lens from scattering,
while the main lens converges the electron beam on the screen.
[0006] If the central axis of the electron beam does not impact upon the center axis of
the main lens, a halo phenomena results at the beam spots on the screen and the resolution
of the color image receiving tube diminishes.
[0007] Fig. 2 is a perspective view of the focus electrode used in the prior art for a electron
gun assembly. In the electrode body 1, three electron beam through holes a, b and
c are arranged parallel to each other at regular intervals. If both external electron
beams converge on the screen under each of the electron beam through holes of the
focus electrode and the anode electrodes are not in accord with each other, an aberrations
occur due to the distortion of the main lens, on the electron gun assembly of the
prior art when both external electron beams are passing through the main lens, thereby
creating a focusing characteristic of low quality.
[0008] An object of this invention is to provide an electron gun assembly that prevents
the lowering of the focusing characteristic of a color image receiving tube caused
by the aberration of the electron beam which is in turn caused by the deviation of
the center of electron beam through holes of the main lens and by uneven magnetic
field phenomena such as a deflection yoke.
DISCLOSURE OF THE INVENTION
[0009] To achieve the electron gun assembly for a color image receiving tube according to
the present invention can be improved the focusing characteristic on the entire screen
since the central axis of the electron beam through holes in the focus electrode is
accord with the central axis of the electron beam through holes in the anode electrode.
Voltage of a magnitude greater than that applied to the focus electrode is applied
to additional electrode members. Such additional electrode members are arranged in
parallel with and between the paths of the electron beams in the focus electrode so
that the electron beam is converged accurately on the screen.
BRIEF DESCRIPTION OF THE DRAWINGS
[0010]
Fig. 1 is a side view of a conventional color image receiving tube.
Fig. 2 is a perspective view of a focus electrode according to the prior art.
Fig. 3 is a perspective view of a focus electrode according to the present invention.
Fig. 4 shows distribution of electric field around the A-A line cross section of Fig.
3.
Fig. 5A shows the cross sections of the electron beam passing through the main lens
of the prior art.
Fig. 5B shows the cross sections of the electron beam passing through the main lens
of the invention .
DETAILED DESCRIPTION OF THE INVENTION
[0011] An embodiment of the invention has been described with reference to the accompanying
drawings.
[0012] An embodiment of the invention has been illustrated as an electron gun assembly suitable
to the separation type of cathode ray tubes, however this invention can be applied
to electron gun assembles of other types of cathode ray tubes as well.
[0013] Fig. 3 shows a perspective view of the focus electrode according to the present invention.
In order to enhance the focusing characteristic of the electron beam, focusing grooves
3 are formed on the focus electrode body 1 in parallel with the path of the electron
beam and additional electrode members, each consisting of a flat thin plate, 31 and
32 which are inserted into the focusing grooves 3, respectively.
[0014] Two focusing grooves 3 are made on the one surface of the focus electrode body either
on the upper surface, or on the lower surface. The invention is not restricted to
inserting additional electrode members 31 and 32 into the focusing grooves 3, nor
is it restricted to their installation in the focus electrode.
[0015] The additional electrode members 31 and 32 are preferably rectangular, thin plates
of uniform length and breadth. However, they can be made in various shapes.
[0016] The voltage Va is applied to the additional electrode members 31 and 32, respectively
and this voltage Va is higher than the voltage Vb applied to the focus electrode body
1.
[0017] Accordingly, when the electron gun assembly is operated, the electron beam is affected
by the electric field formed around the focus electrode as shown in Fig. 4.
[0018] The additional electrode members cause the effect at the four electrode lenses which
generates the astigmatism on the electron beam. Such additional electrode members
generate an electric force which causes outside electron beams to move toward the
central electron beam.
[0019] Therefore, since both outside electron beams converge before they pass through the
main lens, the cross-sectional shape of the electron beam affected by the astigmatism
passing through the main lens as shown in Fig. 5B is of greater uniformity than the
cross-sectional shape of the electron beam in Fig. 5A. As a result, the electron beams
show less aberration.
[0020] Further, an astigmatism resulting from an uneven magnetic field such as deflecting
yoke is offset by the astigmatism caused by the additional electrode members, thereby
remarkably improving the focusing characteristic around the screen.
[0021] Accordingly, the application of dynamic focus voltage to the additional electrode
members 31, 32, causes the focusing characteristics of the entire surface of the screen
to improve remarkably thereby enabling an in-line type electron gun assembly having
greater picture definition and high picture resolution.
INDUSTRIAL APPLICATION FIELD
[0022] As described above, the present invention has improved the convergence and focusing
characteristics of the electron beam by means of converging electron beams before
their passage through the main lens. Using plate electrodes to correct the deviational
errors of the electron beam caused by deflection yokes, the present invention has
enhanced the focusing characteristic of the electron gun assembly.