This application claims priority to and the benefit of Japanese Application Ser. No. 2008-159765 which was filed Jun. 18, 2008, entitled Plasma Tube Array-Type Display Sub-Module and Display Device, the entirety of being hereby incorporated by reference as if fully set forth herein.
1. Field of the Invention
The present invention relates to a plasma tube array-type display sub-module that realizes a large-screen plasma tube array-type display device joining the plurality of plasma tube array-type display sub-modules to one another, and a display device made of the plasma tube array-type display sub-module thereof. More specifically, the present invention relates to the plasma tube array-type display sub-module that allows to narrow a gap width between the adjacent plasma tube array-type display sub-modules joined to each other, and the display device made of the plasma tube array-type display sub-module thereof.
2. Description of the Related Art
As a technology for realizing a next-generation large-screen display device, a plasma tube array-type display sub-module has been developed with a structure that a plurality of plasma tubes each filled with a discharge gas is arranged in parallel. For example, a large-screen display device having a scale of several meters by several meters in size can be constructed of a plasma tube array-type display system module that the plurality of plasma tube array-type display sub-modules of 1 square-meter in size is joined to one another. The display device of such a type that the plurality of plasma tube array-type display sub-modules is joined to one another does not need either a large glass substrate to be handled, like an LCD, a PDP and the like, nor a large-scale facility and achieves even image quality at low cost.
As shown in
As shown in
Typically, a large-screen plasma tube array-type display device can be constructed as follows. That is, a plasma tube array-type display sub-module is prepared in such a manner that a plasma tube array is integrated with a structural body called a sub-module frame of a certain size. Then, the plurality of plasma tube array-type display sub-modules is joined to one another. Herein, the “plasma tube array-type display sub-module” refers to a display film component as described above which includes a plasma tube, that is, a semi-finished product of a display device, which does not have a drive circuit, a power supply circuit and the like incorporated.
In a case where the plasma tube array-type display sub-modules are joined horizontally to one another, however, interconnections for supplying drive power to the display electrode pair 2 and interconnections for establishing a connection from an electromagnetic wave shield layer to a ground electrode must be formed separately. The drive power is supplied in the form of an AC high voltage. Therefore, the interconnections for supplying the drive power must be formed at a predetermined distance apart from the interconnections for establishing the connection to the ground electrode, which requires a connector mechanism with a complicated structure for the joining portion thereof.
In order to solve this problem, as shown in
Moreover, it may be considered that an end of the front-side supporting sheet 21 is bent toward the rear side space between the adjacent sub-modules so that the display electrode pairs 2, 2 are connected electrically to each other and the electromagnetic wave shield layers 24, 24 are also connected electrically to each other on the back side of a display screen. Therefore, a certain gap width generates between the adjacent sub-modules corresponding to a certain thickness of the front-side supporting sheet 21 and the optical filter group 20. Accordingly, a non-display region at certain intervals is inevitably formed between the adjacent plasma tube array-type display sub-modules joined to each other. If the formed non-display region is larger than a clearance between the adjacent plasma tubes 1 and 1, a region which brightness is darker than the surroundings generates at the joining portion between the adjacent plasma tube array-type display sub-modules. Consequently, there is a possibility that the joining portion between the adjacent plasma tube array-type display sub-modules is displayed as a black line on the screen.
The present invention has been devised in view of the circumstances described above, and an object thereof is to provide a plasma tube array-type display sub-module and a display device that realizes a seamless large screen of a display device including the plurality of plasma tube array-type display sub-modules joined in parallel to one another and prevents degradation in quality of an image displayed on the large screen, and a display device that uses such a plasma tube array-type display sub-module.
In order to accomplish this object, a first aspect of the present invention is directed to a plasma tube array-type display sub-module comprising: a back-side supporting sheet having a plurality of address electrodes formed thereon; a front-side supporting sheet having a plurality of display electrodes formed on a rear surface thereof; and a plurality of plasma tubes each filled with a discharge gas, arranged in parallel and held between the back-side supporting sheet and the front-side supporting sheet, wherein an electromagnetic wave shield layer is formed on a front surface of the front-side supporting sheet so as to extend beyond an effective display region over, where the plurality of plasma tubes is arranged, at least one further functional layer is formed on the electromagnetic wave shield layer only in the effective display region, and at least one end of the front-side supporting sheet with an lead out portion of the display electrodes and the electromagnetic wave shield layer is bent toward a back direction along side ends of the effective display region to form a connecting portion to another plasma tube array-type display sub-module.
According to the first aspect of the present invention, the plurality of display electrodes is formed on the rear surface of the front-side supporting sheet. On the other hand, the electromagnetic wave shield layer is formed on the front surface of the front-side supporting sheet so as to extend beyond the effective display region over, where the plurality of plasma tubes is arranged, and the remaining functional layers (e.g., a black stripe layer, an optical filter layer, a color adjusting filter layer, an AR layer, a surface protective layer and the like) are formed only in the effective display region. Accordingly, only the front-side supporting sheet and the electromagnetic wave shield layer are bent at the end of the effective display region, leading to a reduction of a width of a joining portion between the adjacent plasma tube array-type display sub-modules joined to each other. The joining portion between the adjacent plasma tube array-type display sub-modules is made narrower in width leading to a decrease of a region which is darker than the ambient brightness and a prevention of degradation in quality of a displayed image, as the joining portion between the adjacent plasma tube array-type display sub-modules is displayed as a black line on a screen.
Moreover, a second aspect of the present invention is directed to the plasma tube array-type display sub-module according to the first aspect of the present invention, wherein the electromagnetic wave shield layer is formed by a metal layer with a mesh structure in the effective display region.
According to the second aspect of the present invention, the electromagnetic wave shield layer is formed by the metal layer with the mesh structure in the effective display region. Therefore, it is possible to satisfactorily ensure an electromagnetic wave shield function and to suppress a reduction in transmissivity of light at a minimum.
Moreover, a third aspect of the present invention is directed to the plasma tube array-type display sub-module according to the second aspect of the present invention, wherein the electromagnetic wave shield layer is formed with a pattern alternately arranged of a mesh portion and a black stripe portion in the effective display region.
According to the third aspect of the present invention, the electromagnetic wave shield layer is formed with a pattern alternately arranged of a mesh portion and a black stripe portion in the effective display region, which makes it possible to enhance a light absorbing effect by the black stripe portion as much as possible. Further, the electromagnetic wave shield layer is formed by the metal portion with the mesh structure in the effective display region, which makes it possible to satisfactorily ensure the electromagnetic wave shield function and to suppress the reduction in transmissivity of light at a minimum.
Moreover, a fourth aspect of the present invention is directed to the plasma tube array-type display sub-module according to any one of the first to third aspects of the present invention, wherein the electromagnetic wave shield layer is formed to have the whole surface as a conductive material outside of the effective display region.
According to the fourth aspect of the present invention, the electromagnetic wave shield layer is formed to have the whole surface as the conductive material outside of the effective display region to reduce a possibility of a connection failure. Therefore, it is possible to reliably establish an electrical connection between the adjacent plasma tube array-type display sub-modules.
Moreover, a fifth aspect of the present invention is directed to the plasma tube array-type display sub-module according to any one of the first to third aspects of the present invention, wherein the electromagnetic wave shield layer is formed so as to have a conductive material by a predetermined electrode pattern outside of the effective display region.
According to the fifth aspect of the present invention, the electromagnetic wave shield layer is formed so as to have the conductive material by the predetermined electrode pattern outside of the effective display region. The predetermined electrode pattern is formed in accordance with a shape of a connector. Therefore, it is possible to facilitate establishment of an electrical connection, to reduce the possibility of the connection failure, and to reliably establish the electrical connection between the adjacent plasma tube array-type display sub-modules.
Moreover, a sixth aspect of the present invention is directed to a display device comprising the plurality of plasma tube array-type display sub-modules according to any one of the first to fifth aspects of the present invention joined horizontally to one another, wherein the electromagnetic wave shield layers of the adjacent plasma tube array-type display sub-modules are formed to be connected electrically to each other.
According to the sixth aspect of the present invention, the plurality of plasma tube array-type display sub-modules is joined horizontally to one another, and the electromagnetic wave shield layers of the adjacent plasma tube array-type display sub-modules are formed to be connected electrically to each other to form the display device. Thus, the gap width of the joining portion between the adjacent plasma tube array-type display sub-modules joined to each other is made as narrow as the total thickness of the electromagnetic wave shield layer and the front-side supporting sheet. Thereby, the seam region which brightness is darker than the surroundings can be decreased. Accordingly, the display device can realize high image quality while preventing the degradation in quality of a displayed image as the joining portion between the adjacent plasma tube array-type display sub-modules is displayed as a black line on the screen.
Moreover, a seventh aspect of the present invention is directed to the display device according to the sixth aspect of the present invention, wherein a conductive material is interposed between one bent electromagnetic wave shield layer and the other adjacent bent electromagnetic wave shield layer.
According to the seventh aspect of the present invention, the conductive material interposed between one bent electromagnetic wave shield layer and the other adjacent bent electromagnetic wave shield layer can reduce, to the utmost extent to zero, the electrical resistance between the electromagnetic wave shield layers connected to each other. Further, ground potential can be made equal as the entire display device which the plasma tube array-type display sub-modules joined horizontally to one another. Accordingly, the display device can realize high image quality while suppressing the unevenness in image quality such as brightness and contrast of each plasma tube array-type display sub-module.
As described above, in the present invention, the electromagnetic wave shield layer is formed so as to extend beyond the effective display region over, where the plurality of plasma tubes is arranged, and at least one further functional layer (e.g., a black stripe layer, an optical filter layer, a surface protective layer) other than the electromagnetic wave shield layer is formed only in the effective display region. Therefore, only the front-side supporting sheet and the electromagnetic wave shield layer are bent at an adjacent end of the respective effective display region of the adjoining sub-module, leading to a reduction of the gap width of the joining portion between the adjacent plasma tube array-type display sub-modules joined to each other. The joining portion between the adjacent plasma tube array-type display sub-modules is made narrow leading to a decrease of the region which is darker than the ambient brightness and a prevention of the degradation in quality of a displayed image as the joining portion between the adjacent plasma tube array-type display sub-modules is displayed as a black line on the screen.
FIG. 7is a sectional view which schematically shows a joining portion between the adjacent plasma tube array-type display sub-modules according to the embodiment of the present invention with a connecting bar or tool in the direction of crossing the plurality of plasma tubes;
With reference to the drawings, hereinafter, detailed description will be given of a plasma tube array-type display sub-module according to an embodiment of the present invention.
As shown in
The plurality of plasma tubes 31, 31, . . . arranged in parallel is held between a back-side supporting sheet 33, which comprises a plurality of address electrodes 32, 32, . . . formed thereon so as to contact the lower side of the plasma tubes 31, 31, . . . in the longitudinal direction of the plasma tube 31, and a front-side supporting sheet 35 , which comprises a plurality of display electrode pairs 34, 34, . . . formed on an inner surface of the sheet so as to contact the upper side of the plasma tubes 31, 31, . . . in the direction orthogonal to the longitudinal direction of the plasma tubes 31, 31, . . . . Herein, the front-side supporting sheet 35 is a flexible sheet made of, for example, a polycarbonate film, a PET (polyethylene terephthalate) film or the like.
The plurality of display electrode pairs 34, 34, . . . is formed in stripes on an inner surface of the front-side supporting sheet 35 to contact the upper surface of the plasma tubes 31, 31, . . . so as to cross the plasma tubes 31, 31, . . . . The plurality of adjacent display electrodes 34, 34, . . . forming a display electrode pair functions as an X electrode and a Y electrode. Display discharge occurs inside the plasma tubes 31, 31, . . . between the X electrode and the Y electrode. In addition to the stripe pattern, the pattern of the display electrodes 34, 34, . . . may be a pattern which is publicly known in the relevant technical field, and examples thereof may include a mesh pattern, a ladder pattern, a comb pattern and the like. Moreover, examples of the material for the display electrode 34 may include transparent conductive materials such as ITO (Indium Tin Oxide) and SnO2, and metal conductive materials such as Ag, Au, Al, Cu and Cr and the like.
The display electrode 34 can be formed by various methods which are publicly known in the relevant technical field. For example, the display electrode 34 may be formed by using a thick film technology, such as a printing, or by using a thin film technology such as a physical deposition method or a chemical deposition method. Examples of the thick film technology may include a screen print method and the like. With regard to the thin film-technology, examples of the physical deposition method may include an evaporation method, a sputtering method and the like whereas examples of the chemical deposition method may include a thermal CVD method, a photo CVD method, a plasma CVD method and the like.
The plurality of address electrodes 32, 32, . . . is formed on the back surface side of the plasma tube array-type display sub-module 30 per plasma tube 31 along the longitudinal direction of the plasma tube 31, wherein an emit light cell is formed at an intersection of the address electrode 32 and the paired display electrode 34. The address electrode 32 can be formed by various materials and methods which are publicly known in the relevant technical field.
In the configuration described above, as shown in
The perspective view in
However, a front-side supporting sheet providing the plurality of display electrode pairs 34, 34, . . . and an electromagnetic wave shield layer preventing a leakage of an electromagnetic wave from a surface of the screen must be bent toward the rear side space at a joining portion between the adjacent plasma tube array-type display sub-modules 30, 30. Further, the display electrodes on the front-side supporting sheet and the electromagnetic wave shield layers on the same sheet each of the adjacent plasma tube array-type display sub-modules 30, 30 must be connected electrically to each other respectively on the back side space of the screen. Therefore, it becomes very important to narrow a gap width of the joining portion between the adjacent plasma tube array-type display sub-modules 30, 30 as much as possible in order to maintain, at a high level, the quality of the image on the screen formed by the plurality of plasma tube array-type display sub-modules 30, 30, . . . joined to one another.
In the present invention, the front-side supporting sheet 35 of the plasma tube array-type display sub-module 30 is configured to narrow the gap width of the joining portion between the adjacent plasma tube array-type display sub-modules 30, 30 as much as possible. Herein, the “front-side supporting sheet” refers to a sheet or film, which supports the plurality of display electrode pairs 34, 34, . . . on the rear surface and has a multilayer structure of the electromagnetic wave shield layer and the other functional layer such as optical function or the like on the front surface.
More specifically,
As shown in
As shown in
In order to join the adjacent plasma tube array-type display sub-modules 30, 30 to each other, the adjacent end portion of the respective front-side supporting sheets 35, 35 in the lead out portions of the display electrodes 42, 42 is bent toward the back side space. In this case, there are only the front-side supporting sheet 43 and the electromagnetic wave shield layer 44 in the lead out portion of the display electrodes 42. Therefore, the sheet to be folded along a side edge of the plasma tube array-type display sub-module 30 is sufficiently thin. Accordingly, it is possible to narrow a gap width between the adjacent plasma tube array-type display sub-modules 30, 30.
As shown in
Herein, the adjacent electromagnetic wave shield layers 44, 44 contact automatically in the bent portion to each other, so that all the plasma tube array-type display sub-modules 30, 30, . . . are connected to one another become equal in ground potential. Thus, it is possible to avoid the unevenness as much as possible in image quality such as brightness and contrast of each plasma tube array-type display sub-module 30. Moreover, the display electrodes 34, 34 on the front-side supporting sheets 43, 43 can be connected electrically by the flexible cable (not shown) in the back space to each other, independently of the electromagnetic wave shield layers 44, 44. Accordingly, the plasma tube array-type display sub-modules 30, 30, . . . can be driven as an integrated module for a display device with sufficient shield function.
Alternatively, the electromagnetic wave shield layers 44, 44 are not directly connected to each other, but a connecting tool which is, for example, a flexible conductor may be held between the adjacent electromagnetic wave shield layers 44, 44.
As shown in
The connecting bar or tool 61 can reduce, to the utmost extent to zero, the electrical resistance between the adjacent electromagnetic wave shield layers 44, 44 connected to each other. Accordingly, a shield effect of the electromagnetic wave shield layer 44 is equal in any plasma tube array-type display sub-modules 30, 30, . . . , one display module which achieves even image quality as a whole can be constructed although the plurality of the plasma tube array-type display sub-modules 30, 30 is joined to one another.
In order to narrow the gap width W of the joining portion between the adjacent plasma tube array-type display sub-modules 30, 30 as much as possible, the position to hold the connecting bar or tool 61 may be shifted toward the back side space.
As shown in
Moreover, a black stripe layer 45 absorbs light reflected irregularly, thereby reducing so-called blurring disadvantage due to interference of light and the like. It is well known that this disadvantage becomes conspicuous as the black stripe layer 45 is closer to the light emitting portion. The black stripe layer 45 is integrated with the electromagnetic wave shield layer 44 in order to suppress the blurring disadvantage more effectively.
As shown in
As shown in
According to this embodiment as described above, the gap width of the joining portion between the adjacent plasma tube array-type display sub-modules 30, 30 joined to each other can be reduced. The joining portion between the adjacent plasma tube array-type display sub-modules 30, 30 is made narrow, leading to a decrease of the region which brightness is darker than the surroundings and a prevention of the degradation in quality of a displayed image, as the joining portion between the adjacent plasma tube array-type display sub-modules 30, 30 is displayed as a black line on the screen.
It is needless to say that numerous modifications and variations can be devised without departing from the scope of the present invention.
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