The present invention relates to a process for manufacturing a fluorescent film of a color Braun tube. More specifically, the present invention relates to a process for manufacturing a fluorescent film of a color Braun tube having a red fluorescent film that is first applied and its thickness adjusted to enhance quality increase brightness and reduce the amount of red fluorescent material used for the red fluorescent film employed.
Three-color fluorescent materials, e.g., red phosphor, blue phosphor and green phosphor, are used in a color Braun tube, a fluorescent lamp, a projection type cathode-ray tube, or the like. A color Braun tube generally comprises as its essential component a fluorescent screen coated with three-color (green G, blue B, red R) fluorescent materials which radiate by an electronic ray on an inner surface of the screen.
The process for manufacturing such a fluorescent screen is largely divided into a coating of light-absorbing black material (BM) [
As illustrated in
Subsequently, as illustrated in
Subsequently, ultra-violet (UV) rays irradiate the green fluorescent layer [or blue fluorescent material layer] through the hole of a shadow mask.
At this time, the position of UV irradiation corresponds to the position of electron beam collision for radiating the green (or blue) fluorescent material layer, or to the position for the green (or blue) fluorescent material layer to be fixed.
Then, upon washing the panel (1) irradiated by UV with a solvent, a part cured by UV irradiation remains undissolved on the face plate surface, while the other part is dissolved and removed to form a green fluorescent film (4) [or blue fluorescent film (3)], as illustrated in
Second, similar procedures are carried out as to the first process above using a mixture layer of blue fluorescent material [or green fluorescent material] and a photosensitive resin to form a blue fluorescent film (3) [or green fluorescent film (4)]. Third, similar procedures are carried out as to the first process above using a mixture of red fluorescent material and a photosensitive resin to form a red fluorescent film (5) as illustrated in
After the coating the three-color fluorescent films (3), (4) and (5), an emulsion is coated in order to even an Al-deposited film to that completes the PH process.
As described above, according to the conventional process for PH coating, the red fluorescent film (5) is finally formed when the three-color fluorescent are coated on the inner surface of the face plate, having the following order of formation: green→blue→red fluorescent film or blue→green→red fluorescent film. In this case, however, upon the formation of green→blue (or blue→green) fluorescent film, flection occurs creating an uneven surface on which to form the red fluorescent film (5) on the inner surface of the panel glass (1). Thus, the distribution of the red fluorescent film (5) finally coated is not homogeneous, whereby inferiorities such as cracks, light leakage, or the like readily occur. Further, owing to the uneven thickness, white brightness, bright uniformity and white uniformity deteriorate, so that the thickness of the red fluorescent film (5) formed is thicker by about 30% than that of the green or blue fluorescent films (4) and (5), as shown in
More specifically, calculated values of optimum S/Weight (i.e., coating weight per unit area) of the fluorescent material are as follows:
As can be seen form the calculated optimum S/Weight as above, the S/Weight ratio of green phosphor to red phosphor is optimum at 1.00:1.04, but the ratio of 1.00:1.30–1.50 is practically used.
The present invention was invented in order to solve the problems of the prior art mentioned above, and the object of the invention is to provide a process for manufacturing a fluorescent film for color Braun tube in which a red fluorescent film is first formed and its thickness thereof reduced to enhance the quality of the red fluorescent film and to lower the cost for manufacturing.
To achieve the above object, the present invention provides a process for manufacturing a fluorescent film which comprises a stage of forming BM (Black Matrix) wherein a matrix of light-absorbing material is formed on a panel in order to define a portion on which the fluorescent film of three primary colors (R, G, B); a stage of forming a red fluorescent film wherein a mixed slurry of a red fluorescent material and a photosensitive resin is coated on the panel including the matrix of light-absorbing material, dried, and cured by irradiating UV ray through the hole of shadow mask onto a portion on which the red fluorescent film is to be formed, and then washed with a solvent; a stage of forming a blue or green fluorescent film wherein a mixed slurry of a blue or green fluorescent material and a photosensitive resin is coated on the panel on which the red fluorescent film has been formed, dried, and cured by irradiating UV ray through the hole of shadow mask onto a portion on which the blue or green fluorescent film is to be formed, and then washed with a solvent; and a stage of forming a remaining blue or green fluorescent film wherein a mixed slurry of a remaining blue or green fluorescent material and a photosensitive resin is coated on the panel on which the said fluorescent films have been formed, dried, and cured by irradiating UV ray through the hole of shadow mask onto a portion on which the remaining blue or green fluorescent film is to be formed, and then washed with a solvent.
First, as illustrated in
Then, a mixed slurry of a red fluorescent material and a photosensitive resin is coated on the panel (11) including the matrix of light-absorbing material, dried, and cured by irradiating UV ray through the hole of shadow mask onto a portion on which the red fluorescent film is to be formed, and then the panel is soaked in a solvent to form a red fluorescent film (15).
Subsequently, as illustrated in
Subsequently, as illustrated in
An emulsion film is then formed and it is Al-deposited.
In the above embodiment, the order of the value of S/Weight of the three color phosphor is that the green fluorescent material>red fluorescent material>blue fluorescent material, and preferably the S/Weight ratio of these phosphor is red phosphor:blue phosphor:green phosphor=1.0:0.7–0.9:1.0–1.2.
If the S/Weight of the blue and green phosphor are more than 0.9 and more than 1.2, respectively, with reference to the red phosphor of S/Weight 1.0, the fluorescent film may be separated during the process of the fluorescencer coating, to disturb the formation of the fluorescent film. In contrast, if the S/Weight of the blue and green phosphor are less than 0.7 and less than 1.0, respectively, with reference to the red phosphor of S/Weight 1.0, a fluorescent film of good quality cannot be obtained owing to the inferiority of light-leakage, roughness of the film, or the like.
The finally formed green fluorescent film having green fluorescent material to which pigment has not been adherent, while the red and blue fluorescent films having red and blue fluorescent materials, respectively, ones are preferably the fluorescent films to which pigment has been adhered respective to their fluorescent materials.
If a pigment is adhered to a fluorescent material, the dispersibility is deteriorated because the fluorescent material particles are not smooth. Thus, pigment is not adhered to the finally coated fluorescent material so that the dispersibility and adhesive strength may be improved to obtain a fluorescent film of excellent white brightness, white uniformity and bright uniformity.
Comparisons between the color Braun tube (20″) manufactured according to the conventional process and that of the present invention are shown in Table 1 below:
As can be shown in Table 1, according to the process of the present invention, the required amount of red phosphor is reduced by 15–35%, and the quality such as white brightness, white uniformity and bright uniformity of the coated films is improved as is confirmed by the number of defects per unit area.
Particularly, a pigment to affect contact is not coated to the finally coated fluorescent material, so that the film may have excellent adhesive strength and dispersibility, whereby an excellent fluorescent film of a color Braun tube having almost the same thickness of three color fluorescent films is obtained.
Number | Date | Country | Kind |
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95-8973 | Apr 1995 | KR | national |
Number | Name | Date | Kind |
---|---|---|---|
3146368 | Fiore et al. | Aug 1964 | A |
3697301 | Donofrio et al. | Oct 1972 | A |
4052519 | Prazak, III | Oct 1977 | A |
4572880 | Miura | Feb 1986 | A |
4770962 | Brennesholtz | Sep 1988 | A |
4859549 | Hayashi | Aug 1989 | A |
5213918 | Donofrio | May 1993 | A |
Number | Date | Country |
---|---|---|
56-112051 | Sep 1981 | JP |