The present invention relates to a display device having a structure for preventing cracks in and breakage of a glass substrate included therein when the display device drops or falls down.
In recent years, liquid crystal display devices using a liquid crystal display panel and plasma display devices using a plasma display panel (hereinafter simply referred to as a PDP) have been gaining attention as display devices suitable for achieving a reduction in thickness and an increase in size. These display devices have been produced in large quantities and sales thereof also have been increasing rapidly.
The PDP is composed of a pair of panels, a front panel and a back panel, each having a glass substrate. The front panel includes a front glass substrate on which a display electrode pair, a dielectric layer, a protective layer, etc. are formed. On the other hand, the back panel includes a back glass substrate on which a data electrode, a barrier rib, a phosphor layer, etc. are formed. The front panel and the back panel are disposed facing each other so that a minute discharge space is formed therebetween. A gap between a peripheral portion of the front panel and a peripheral portion of the back panel is sealed with a sealing material. The discharge space is filled with a discharge gas containing neon (Ne), xenon (Xe), etc.
A chassis member is attached to a back surface of the back panel of the PDP via a joining member such as an adhesive heat-conducting sheet and an adhesive agent, etc. A peripheral portion of the chassis member is fixed to a mounting metal piece with screws. The chassis member is a substrate for supporting the PDP and attaching thereto circuit boards on which a drive circuit for driving the PDP is formed. The chassis member also has a function of radiating effectively the heat generated by the PDP. Furthermore, the plasma display device includes a front frame and a back cover for protecting the PDP and the circuit boards. On a front side of the PDP, a front protective glass substrate is disposed spaced apart from a surface of the front panel of the PDP. The front protective glass substrate is attached to a front housing portion having an opening corresponding to an effective display region of the front panel of the PDP. The front protective glass substrate has functions of color tone correction, contrast improvement, and electromagnetic wave blocking.
In contrast to the back panel fixed by the chassis member, the front panel merely is fixed, at the peripheral portion thereof, only by a sealed portion composed of the sealing material. Therefore, when the plasma display device drops forward (with the front protective glass substrate facing down) during transportation or unpacking, the front panel is warped in the shape of a bowl taking the sealed portion as the supporting point, and has cracks and fractures.
In order to prevent these cracks and breakage, it can be considered to dispose a frame-shaped elastic member in a gap between the surface of the front panel and the front protective glass substrate along a peripheral portion of the effective display region, as disclosed in JP 2003-131580 A, for example. Such a configuration can enhance the impact resistance of the PDP in a plane direction and block the dust entering from outside. In addition, JP 2003-131580 A discloses to provide an elastic member to a sealed portion.
However, even when the elastic member is provided to the sealed portion serving as the supporting point of the warping as in the technique disclosed in JP 2003-131580 A, the deflection of the front panel itself cannot be suppressed, and thus the occurrence of cracks in the sealed portion cannot be suppressed. The frame-shaped elastic member has an effect of lowering slightly the degree of deflection of the front panel. However, since the elastic member is in contact with the front panel, an initial impact force is applied directly to the sealed portion provided at the peripheral portion of the front panel. This raises a problem in that the distortion is concentrated thereto causing cracks, and the front panel tends to have fractures easily. Moreover, when the elastic member is softened to reduce this initial impact force, the deflection cannot be suppressed.
The present invention is intended to resolve the above-mentioned problems and provide a display device capable of enhancing the impact resistance of a PDP against the forward dropping.
In order to accomplish the foregoing object, the present invention provides a display device including: a display panel including a front panel and a back panel that have peripheral portions joined to each other by a sealing material; a chassis member joined to the back panel of the display panel by a joining member, and a housing enclosing the display panel and the chassis member. The housing includes a front housing portion provided with an opening corresponding to an effective display region of the front panel, a front protective glass substrate fixed to the front housing portion so as to close the opening, a side housing portion coupled to the front housing portion, and a back housing portion that is coupled to the side housing portion and covers a back surface of the chassis member. A supporting member for restricting deflection of the front panel by contacting the front panel when the front panel is warped toward the front protective glass substrate is provided on the front protective glass substrate or the front housing portion so as to sit between the sealing material of the display panel and the opening.
Such a configuration causes no damage to the front panel in an ordinary use because the supporting member is not in contact with the front panel. When the display device drops forward (with the front protective glass substrate facing down), the front panel contacts the supporting member at a location on an inner side of the sealed portion serving as the supporting point of the warping. Thereby, it is possible to restrict the deflection of the front panel effectively and suppress the occurrence of cracks in the sealing material.
The supporting member may be a projection formed on the front protective glass substrate or the front housing portion. Such a configuration makes it easy to provide the supporting member.
Furthermore, the supporting member may be a plate member bent into a shape projecting toward the front panel. Such a configuration makes it possible to form the supporting member integrally with the plate-like mounting metal piece to be used for attaching the display panel and the chassis member to the side housing portion, and to reduce the parts count and assembly man-hours.
Furthermore, the supporting member may be contained in an elastic member inserted between the front panel and the front protective glass substrate or between the front panel and the front housing portion. With such a configuration, the function, performed by the elastic member, of preventing the entry of dust into the gap between the front panel and the effective display region of the front protective glass and the function, performed by the supporting member, of restricting the deflection of the front panel, can be realized with a single component.
It is desirable that the supporting member is composed of an elastic body having a higher hardness than that of the elastic member. With such a configuration, the impact generated by forward dropping is alleviated by the elastic member in a first stage and by the supporting member contained in the elastic member in a secondary stage. Accordingly, the impact force generated when the front panel contacts the supporting member can be alleviated and the breakage of the front panel can be suppressed.
Furthermore, it is preferable that an end portion of the supporting member on a side of the front panel has a specified curvature. Such a configuration can suppress damage from occurring to the front panel when the front panel contacts the end portion of the supporting member.
According to the present invention, even when a display device including a display panel, such as a PDP, drops forward, the breakage of the display panel can be suppressed. Thus, the present invention can provide a display device having an enhanced impact resistance.
Hereinafter, embodiments of the present invention will be described with reference to the drawings. In the embodiments of the invention, a plasma display device will be described as a display device and a PDP will be described as a display panel.
(Embodiment 1)
The back panel 30 has a back glass substrate 31 on which a plurality of data electrodes 32 are arranged in parallel with each other. A base dielectric layer 33 is formed so as to cover the data electrodes 32, and grid-like barrier ribs 34 further are formed thereon. Phosphor layers 35 that emit red, green, or blue light are formed in order for each of the data electrodes 32, respectively, on side surfaces of the barrier ribs 34 and on the base dielectric layer 33.
As shown in
The front housing portion 41 is provided with an opening corresponding to an effective display region of the front panel 20. The front protective glass substrate 43 including a glass substrate, for example, is fixed to the front housing portion 41 so as to close the opening from a side of the PDP 10. In this way, the front protective glass substrate 43 is disposed at the opening. The back panel 30 of the PDP 10 is joined to the chassis member 44 via a joining member 46. The chassis member 44 is composed of a metal plate made of aluminum (Al) or the like, and serves as a heat-radiating plate. The joining member 46 is formed of an adhesive material or a fusion material. The joining member 46 allows the back glass substrate 31 of the PDP 10 to be joined to the chassis member 44 almost entirely, and transfers the heat generated by the PDP 10 to the chassis member 44. Circuit boards 45 composing a circuit block for driving the PDP 10 are fixed to the chassis member 44.
The front protective glass substrate 43 serves a role of an optical filter as well as a role of protecting the PDP 10. Silver (Ag) vapor deposition, for example, is applied to the front protective glass substrate 43 in order to suppress unnecessary radiation of electromagnetic waves. The back housing portion 42 is provided with a plurality of ventilation holes 42a for releasing the heat generated by the PDP 10 and the circuit boards 45 to the outside. The circuit boards 45 are attached to a back surface side of the chassis member 44 and construct an electric circuit to drive the PDP 10 and control the driving. The circuit boards 45 are connected electrically to an extraction electrode part (not shown) extracted at an edge of the PDP 10, by a plurality of flexible wiring boards (not shown).
As shown in
When the plasma display device 40 thus configured drops in a direction indicated by the arrow shown in
More specifically, in Embodiment 1 of the present invention, a supporting member 55 is disposed on the front protective glass substrate 43 at a location between the sealing material 36 of the PDP 10 and the opening 54. The supporting member 55 forms specified gap D between itself and the front panel 20 in a stationary state. Furthermore, a dust-proofing member 56, such as a sponge, for protection against dust is loaded between the front panel 20 and the front protective glass substrates 43 in a compressed state at a location on an inner side of the supporting member 55, that is, at a location closer to the opening than the supporting member 55.
The specified gap D is set to a level (2 mm to 3 mm, for example) that allows the front panel 20 to contact the supporting member 55 when the front panel 20 is warped at the forward dropping. More specifically, the supporting member 55 is spaced apart from the front panel 20 usually, and restricts the deflection of the front panel 20 by contacting the front panel 20 when the front panel 20 is warped toward the front protective glass substrate 43. In the present embodiment, the supporting member 55 is composed of a projection formed on the front protective glass substrate 43. The supporting member 55 may be made of metal, but preferably is made of an elastic material, such as rubber and resin, having appropriate elasticity. It is desirable that the supporting member 55 having a frame shape be provided along an outline of the PDP 10 in the same manner as the sealing member 36. Alternatively, a plurality of the supporting members 55 may be provided at specified locations.
Moreover, as for a distance between the supporting member 55 and the sealing member 36, it is desirable that the supporting member 55 be spaced apart from the sealing material 36 as much as possible outside of the opening 54 when the gap D is constant. In
Since the supporting member 55 is not in contact with the front panel 20 in a stationary state, there occur no problems such that an initial impact force is applied directly to the front panel 20, and that the front panel 20 tends to have fractures easily because of cracks occurring due to the concentrated distortion.
(Embodiment 2)
In Embodiment 2 of the present invention, the supporting member 57 is obtained by extending the side housing mounting part 52 that is used for attaching the PDP 10 and the chassis member 44 to the side housing portion 51 and the front housing portion 41, and by bending the side housing mounting part 52 into a shape projecting toward the front panel 20. Thus, the supporting member 57 is integrated with the side housing mounting part 52. A top portion of the projection of the supporting member 57 is spaced apart from the front panel 20 with only the specified gap D therebetween, as in Embodiment 1.
Hereinafter, the behavior of the plasma display device when dropping forward will be described using
Moreover, it is possible to form the supporting member 57 integrally with the side housing mounting part 52 by bending a metal plate. Thereby, the parts count can be reduced. Furthermore, it is possible to allow the supporting member 57 to have elasticity by leaving an end of the bent metal plate free. Thereby, it is possible to reduce further the impact force generated when the front panel 20 contacts the top portion of the supporting member 57.
(Embodiment 3)
According to Embodiment 3 of the present invention, the impact generated by forward dropping is alleviated by the dust-proofing member 59 in an early stage, and by the supporting member 58 contained in the dust-proofing member 59 in a secondary stage. Thus, it is possible to alleviate the impact force generated when the front panel 20 contacts with the supporting member 58 and suppress the breakage of the front panel. Furthermore, this configuration can reduce the deflection of the front panel 20 and suppress the distortion in the vicinity of the sealing material 36 so as to prevent cracks and fractures from occurring.
Embodiment 1 to Embodiment 3 each describes an example in which the supporting member is provided on the front protective glass substrate. However, the supporting member may be provided on the front housing portion outside of the front protective glass substrate.
In Embodiment 1 to Embodiment 3, when the supporting member is a linear projection extending along the outline of the PDP 10, the top portion of the supporting member, which is in contact with the front panel, on a side of the front panel preferably is made into a shape having a specified curvature (for example, an curvature radius of 1 mm or more, preferably 3 mm or more) at a cross section in a direction perpendicular to a direction in which the supporting member extends. More specifically, it is preferable that an end portion of the supporting member on the side of the front panel is projected so as to form a gentle arc toward the front panel. Thereby, it is possible to suppress damage from occurring to the front panel when the end portion of the supporting member contacts the front panel.
Moreover, in Embodiment 1 to Embodiment 3 of the present invention, the supporting member neither presses the front panel to cause distortion nor damages the front panel because the supporting member is not in contact with the front panel in a stationary state in which no impact force is applied.
Industrial Applicability
As described above, the present invention can realize a display device in which a display panel is not damaged even by the impact generated when the display device drops during handling with a reduced amount of shock-absorbing packing material used. The present invention particularly is useful for display devices with a big screen.
Number | Date | Country | Kind |
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2007-296512 | Nov 2007 | JP | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
---|---|---|---|---|
PCT/JP2008/003037 | 10/24/2008 | WO | 00 | 5/6/2010 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2009/063593 | 5/22/2009 | WO | A |
Number | Name | Date | Kind |
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5808707 | Niibori et al. | Sep 1998 | A |
20030098642 | Tajima | May 2003 | A1 |
20040004680 | Kim | Jan 2004 | A1 |
Number | Date | Country |
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1-181071 | Dec 1989 | JP |
4-028686 | Mar 1992 | JP |
8-032257 | Feb 1996 | JP |
9-073072 | Mar 1997 | JP |
9-329777 | Dec 1997 | JP |
2003-131580 | May 2003 | JP |
2003-216056 | Jul 2003 | JP |
2003-228295 | Aug 2003 | JP |
Number | Date | Country | |
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20100265428 A1 | Oct 2010 | US |