1. Field of the Invention
The present invention relates to a plasma display device including a plasma display panel (hereinafter referred to as a “PDP”).
2. Related Background Art
Conventionally, plasma display devices are designed to enclose a PDP with a conductive member in order to block unnecessary radiation of electromagnetic waves emitted from the PDP. For example, JP 10(1998)-322625 A discloses a plasma display device 10 configured as shown in
A conductive layer 14 is formed on the frame 13. The periphery of the back cover 15 is fixed to the frame 13, and thereby the periphery thereof is in contact with the conductive layer 14. The frame 13 also is provided with a hook-like retaining portion 13a for retaining the optical filter 12 at the side of the transparent substrate 12b, and a plate spring portion 13b for biasing the optical filter 12 from the side of the conductive film 12a so as to push the optical filter 12 against the retaining portion 13a. Thus, the optical filter 12 is caught between the plate spring portion 13b and the retaining portion 13a. The conductive layer 14 also is formed on the surface of the plate spring portion 13b. The conductive layer 14 is pressed against the conductive film 12a owing to the biasing force applied by the plate spring portion 13b, so that the conductive layer 14 and the conductive film 12a are connected electrically to each other.
However, in the plasma display device 10 configured as described above, when vibrations or the like cause a relative displacement between the frame 13 and the optical filter 12, the conductive layer 14 formed on the surface of the plate spring portion 13b and the conductive film 12a rub against each other and the friction between them damages their contact surfaces, which may cause poor contact between them or increase the contact resistance. As a result, the electromagnetic wave shielding effect may be deteriorated.
In view of these circumstances, it is an object of the present invention to provide a plasma display device capable of maintaining an electromagnetic wave shielding effect.
In order to achieve the above object, the present invention provides a plasma display device including: a plasma display panel (PDP); an optical filter disposed at a front side of the PDP and having a conductive film; a frame supporting a periphery of the optical filter; a conductive member fixed to the frame; and a conductive back cover disposed at a rear side of the PDP, with a periphery thereof being contacted with the conductive member. In this plasma display device, flexible conductive connecting portions are provided on a periphery of the conductive film, and the connecting portions are connected electrically, in a slack state, to the conductive member, and thereby the conductive film and the conductive member are connected electrically to each other.
It should be noted that the phrase “in a slack state” means that the connecting portion is not pulled tight because it has an allowance in length and is longer enough to be connected to the conductive member.
According to the configuration as described above, the flexible connecting portions provided on the periphery of the conductive film are connected to the conductive member. Therefore, even if a relative displacement occurs between the frame and the optical filter due to vibrations or the like, the connecting portions merely are deformed and thus the connecting portions and the conductive member are prevented from rubbing against each other. In addition, since the connecting portions are in a slack state, the possibility that the connecting portions are damaged is reduced even if it is pulled along with a movement of the optical filter. Accordingly, the present invention makes it possible to maintain a good electrical connection between the conductive film and the conductive member, and thus to maintain the electromagnetic wave shielding effect.
Hereinafter, the preferred embodiments for carrying out the present invention will be described with reference to the accompanying drawings. It should be noted, however, that the embodiments described below are merely exemplary of the present invention, and should not be construed to limit the scope of the present invention.
The optical filter 3A has a rectangular transparent substrate 32 made of glass or resin such as acrylic resin, and a conductive film 31 attached to approximately the entire front surface of the transparent substrate 32 located at the opposite side to the PDP 2 and thereby held by the transparent substrate 32. As shown in
The frame 4 is made of resin, for example. The frame 4 has a rectangular frame shape as viewed from the front, and has four sides each having an approximately L-shaped cross-section. Specifically, the frame 4 has a front plate 41 forming a window 41a and covering the periphery of the optical filter 3A from the front side thereof, and a peripheral wall 42 extending from the peripheral edge of the front plate 41 toward the rear side. The front plate 41 is provided with a hook-like retaining portion 43 for retaining the optical filter 3A at the side of the transparent substrate 32, and a plate spring portion 44 for biasing the optical filter 3A from the side of the conductive film 31 so as to push the optical filter 3A against the retaining portion 43. Thus, the optical filter 3A is caught between the plate spring portion 44 and the retaining portion 43.
A conductive layer (a conductive member) 5A is attached firmly to the frame 4. This conductive layer 5A may be formed by applying a conductive material to the frame 4 and curing the material. Specifically, the conductive layer 5A is formed on the back surface of the front plate 41 as well as the inner surface and the end surface of the peripheral wall 42. Unlike the conventional configuration as described in the Related Background Art (the configuration as shown in
The back cover 6 is a conductive cover obtained by pressing a metal plate into the desired shape. The periphery 61 of the back cover 6 is fixed to the end surface of the peripheral wall 42 of the frame 4 with screws 7, so that the periphery 61 is brought into contact with the conductive layer 5A to be connected to the conductive layer 5A electrically.
Furthermore, in the present embodiment, four connecting portions 8 are provided on the periphery of the conductive film 31, as shown in
As shown in
As described above, in the plasma display device 1A of the present embodiment, the flexible connecting portions 8 provided on the periphery of the conductive film 31 are connected to the conductive layer 5A. Therefore, even if a relative displacement occurs between the frame 4 and the optical filter 3A due to vibrations or the like, the connecting portions 8 merely are deformed, and the connecting portions 8 and the conductive layer 5A are prevented from rubbing against each other. In addition, since the connecting portions 8 are in a slack state, the possibility that the connecting portions 8 are damaged is reduced even if they are pulled along with a movement of the optical filter 3A. Accordingly, the present invention makes it possible to maintain a good electrical connection between the conductive film 31 and the conductive layer 5A, and thus to maintain the electromagnetic wave shielding effect.
In addition, since the conductive film 31 is attached to the front surface of the transparent substrate 32 located at the opposite side to the PDP 2, a longer distance can be secured between the PDP 2 and the conductive film 31 by the thickness of the transparent substrate 32. Thus, the accumulation of electric charges on the conductive film 31 can be reduced.
The connecting portion 8 extending along each side of the transparent substrate 32 does not need to be a single sheet. It may be divided into several sheets in the longitudinal direction thereof.
Next, a plasma display device 1B according to a second embodiment of the present invention will be described with reference to
The plasma display device 1B of the second embodiment basically has the same configuration as that of the plasma display device 1A of the first embodiment, except that the connecting portions 8 are formed integrally with the conductive film 31. In an optical filter 3B of the second embodiment, the conductive film 31 projects upward and downward, and leftward and rightward from the transparent substrate 32 in
In the plasma display device in which the connecting portions 8 are formed integrally with the conductive film 31 as described above, the same advantageous effects can be obtained as in the first embodiment while reducing the parts count.
Next, a plasma display device 1C according to a third embodiment of the present invention will be described with reference to
The elastic member 9 is a rod-shaped member having a rectangular cross-section, and is arranged on the conductive film 31 in a frame shape along the profile of the transparent substrate 32 in such a manner that the conductive film 31 is interposed between the elastic member 9 and the transparent substrate 32. Materials for this elastic member 9 are not particularly limited. Examples of the materials include rubber, polyurethane foam, and expanded polystyrene.
Furthermore, in the optical filter 3C of the third embodiment, the conductive film 31 has the same shape as that of the second embodiment, but it is attached to the transparent substrate 32 in a reversed manner in the third embodiment. Specifically, in the second embodiment, the conductive film 31 is attached to the transparent substrate 32 with the base layer 31a being directly contacted with the transparent substrate 32, whereas in the third embodiment, the conductive film 31 is attached to the transparent substrate 32 with the conductive layer 31b being directly contacted with the transparent substrate 32. In addition, in the third embodiment, a protective layer 33 (see
Furthermore, in the third embodiment, each of the connecting portions 8 formed integrally with the conductive film 31 is folded away from the transparent substrate 32 and caught between the conductive layer 5A and the elastic member 9. Thereby, the connecting portions 8 are connected electrically, in a slack state, to the conductive layer 5A. The connecting portions 8 are joined to the elastic member 9 but are not joined to the conductive layer 5A. The connecting portions 8 are pushed against the conductive layer 5A by an elastic repulsive force of the elastic member 9. In order to achieve this configuration, the undersurface 9a of the elastic member 9 is first bonded to the conductive film 31 with a double-sided tape or the like. Then, the folded connecting portion 8 is bonded to the top surface 9b of the elastic member 9 with a double-sided tape or the like. After that, the optical filter 3C may be engaged in the retaining portion 43 while the elastic member 9 is deformed elastically so that its top surface 9b and undersurface 9a come closer to each other.
With such a configuration, not only the same advantageous effects as provided by the first embodiment can be obtained, but also the connecting portions 8 can be connected to the conductive layer 5A by utilizing the elastic repulsive force of the elastic member 9. When a relative displacement occurs between the frame 4 and the optical filter 3C, in the second embodiment, the surface of the optical filter 3B at the side of the conductive film 31 (i.e., the surface of the protective layer 33 in the second embodiment) may be damaged by the plate spring portion 44. On the contrary, in the third embodiment, since the optical filter 3C is pushed against the retaining portion 43 by the elastic member 9, the elastic member 9 is deformed transversely along with the movement of the optical filter 3C, even if the frame 4 and the optical filter 3C are displaced relative to each other. Thus, the surface of the optical filter 3C is never damaged.
Furthermore, in the third embodiment, the conductive film 31 is attached to the transparent substrate 32 with the conductive layer 31b being directly contacted with the transparent substrate 32. The conductive layer 31b can be protected by the base layer 31a, which eliminates the need of the protective layer 33 as shown in
Next, a plasma display device 1D according to a fourth embodiment of the present invention will be described with reference to
In the fourth embodiment, the periphery of the optical filter 3C is supported by the front plate 41 of the frame 4 at the side of the transparent substrate 32. In other words, in the fourth embodiment, the front plate 41 serves as a retaining portion for retaining the optical filter 3C at the side of the transparent substrate 32.
Furthermore, in the fourth embodiment, a frame-shaped conductive pressing metal member 5B is provided instead of the conductive layer 5A (see
Even with this configuration, the same advantageous effects as provided by the third embodiment can be obtained, except that a longer distance cannot be secured between the PDP 2 and the conductive film 3C by the thickness of the transparent substrate 32.
Number | Date | Country | Kind |
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2007-289467 | Nov 2007 | JP | national |