The present invention relates to a backlight module of electronic products, and more particularly to a backlight module and a Liquid Crystal Display (LCD) device.
As the display component of an electronic device, an LCD device is now widely applied in various electronic products, and a backlight module is one of the important components of the LCD device. As shown in
However, in the LED edge type backlight module, because of the small space between reflector plates 15 right above and right below the LED light 12, the operation is difficult and is time consuming; although shortening the distance between the LGP 11 and the light emitting surface of the LED light 12 can perfectly increase the utilization ratio of the light source, the distance between the LGP 11 and the light emitting surface of the LED light 12 is impossible to be infinitesimal; given that the LGP 11 heated and expended may bump into the LED light 12, resulting in the failure of the LED light 12, a certain distance must be remained between the LGP 11 and the light emitting surface of the LED light 12, however, the distance is disadvantageous for increasing the utilization ratio of the light source; the rubber object 16 added on the aluminum extrusion 13 can isolate the heat conduction to the LGP 11, however, the rubber object is costly and the adding of the rubber object is time consuming, which is disadvantageous for the cost reduction.
In consideration of above contents, one aim of the present invention is to provide a backlight module to increase the utilization ratio of the light source and simultaneously reduce the cost.
The aim of the present invention is achieved by the following technical scheme: a backlight module and an LCD device comprise an aluminum extrusion, a light bar, a member and an LGP, wherein, the aluminum extrusion is provided with the member, and the light bar is provided with several LED lights. The backlight module also comprises a member with the light reflection function, matching holes for holding the LED lights are arranged on the member, and the member is arranged on the aluminum extrusion. The light bar is supported on the member and jointed on one side of the member, and the LED lights are correspondingly sheathed in the mating holes. The light incident surface of the LGP is jointed on the other side of the member, and light emitting surfaces of the several LED lights are adjacent to the light incident surface of the LGP.
Wherein, the LGP is supported on the member, and the contact place between the member and the LGP is made of the heat insulating material.
Wherein, the member is provided with multiple matching holes with the number corresponding to that of the LED lights on the light bar.
Wherein, the member comprises a footwall and a matching wall protrudingly arranged on the footwall, and the matching wall is provided with several matching holes.
Wherein, the several matching holes are linearly arranged at equal intervals with each matching hole through both sides of the matching wall.
Wherein, the member comprises a supporting wall protrudingly arranged on the footwall, wherein, the matching wall is parallel to the supporting wall and higher than the supporting wall, and the supporting wall supports the LGP.
Wherein, the matching wall is arranged on one side of the adjacent footwall, and an end edge which supports the light bar is formed by the footwall and the side.
Wherein, the light bar comprises a main plate and the several LED lights arranged on the main plate, and the several LED lights are linearly and protrudingly arranged on the main plate at equal intervals.
Wherein, the aluminum extrusion comprises a bottom plate and a side plate vertically connected to the bottom plate. The bottom plate supports the member, and the light bar is arranged between the matching wall and the side plate.
Wherein, the light incident surface of the LGP is jointed to the side of the matching wall and is adjacent to the light emitting surface of the LED light; the inner wall of the matching hole has the function of light reflection, so that the light emitted by the LED light is reflected into the LGP.
Wherein, a top edge is formed on one top of the matching wall, and the top edge is on the same side of the end edge and parallel to the end edge.
Wherein, the member is made of the material with reflection function, or is made by applying the coating with reflection function on the base material.
An LCD device comprises one of the aforementioned backlight modules.
The benefit of the present invention: different from the existing technology, the member in the backlight module of the present invention has the light reflection function, thereby replacing reflector plates on the rubber frame and the aluminum extrusion of the traditional backlight structure; and the light incident surface of the LGP directly contacts the member, so that the distance between the LGP and the light emitting surface of the LED light can be reduced infinitely to increase the utilization ratio of the light; in addition, the member is heat insulated and directly supports the LGP to prevent the aluminum extrusion from conducting the heat to the LGP to result in the expansion of the LGP, without supporting the LGP on the rubber object of the aluminum extrusion.
The technology, the structural feature, and the aim and effect achieved of the present invention will be described in detail in accordance with the examples and the figures.
As shown in
The aluminum extrusion 21 comprises a bottom plate 212 and a side plate 214 vertically connected to the bottom plate 212. The member 23 is supported on the bottom plate 212.
The light bar 22 comprises a main plate 222 and several LED lights 224 arranged on the main plate 222. In the example, the main plate 222 is of rectangular bar shape, and the several LED lights are linearly and protrudingly arranged on the main plate 222 at equal intervals. Each LED light 224 has a light emitting surface 225.
The member 23 has the heat insulation function and the surface of the member has the light reflection function, and the member can be made of the material with heat insulation and light reflection function, or be made by applying the coating with heat insulation and light reflection function on the base material. The member 23 comprises a footwall 231, and a matching wall 232 and a supporting wall 233 which are protrudingly arranged on the footwall 231. The matching wall 232 is parallel to the supporting wall 233 and is higher than the supporting wall 233. The matching wall 232 is arranged on one side of the adjacent footwall 231, and forms an end edge 234 for supporting the light bar 22 with the side. The matching wall 232 is provided with several matching holes 235 with the number corresponding to that of the LED lights 224, and the several matching holes 235 are linearly arranged at equal intervals with each matching hole 235 through both sides of the matching wall 232. The several matching holes 235 are used for correspondingly and respectively sheathing LED lights 224 of the light bar. The shape of the matching holes 235 corresponds to the external contour of LED lights 224, In the example, the matching holes 235 are rectangular through holes. The supporting wall 233 is protrudingly arranged on the side of the footwall 231 corresponding to the end edge 234 to support the LGP 24.
The LGP 24 performs an light guide function on the light, and has a light incident surface 242 for matching the light emitting surface 225 of the LED light 224, so that the light enters. In the example, the LGP 24 is of rectangular block shape.
As shown in
When the LED light 224 is emitting the light, the member 23 has the light reflection function and matches with the hole wall in the matching hole 235 to reflect the light, so that the light emitted by the LED light 224 fully enters the LGP 24, therefore, the member 23 can replace reflector plates of the rubber frame and the aluminum extrusion of the traditional backlight structure; and the light incident surface 242 of the LGP 24 directly contacts the side of the member 23, therefore, the distance between the LGP 24 and the light emitting surface 225 of the LED light 224 can be reduced infinitely to increase the utilization ratio of the light; in addition, because the member 23 is heat insulated, the member 23 can directly support the LGP 24 to prevent the aluminum extrusion 21 from conducting the heat to the LGP 24 to result in the expansion of the LGP, without supporting the LGP on the rubber object of the aluminum extrusion.
As shown in
To sum up, the member in the backlight module of the present invention has the light reflection function, thereby replacing reflector plates on the rubber frame and the aluminum extrusion of the traditional backlight structure; and the light incident surface of the LGP directly contacts the member, so that the distance between the LGP and the light emitting surface of the LED light can be reduced infinitely to increase the utilization ratio of the light; in addition, the member is heat insulated and directly supports the LGP to prevent the aluminum extrusion from conducting the heat to the LGP to result in the expansion of the LGP, without supporting the LGP on the rubber object of the aluminum extrusion.
It is understandable that the supporting wall 233 can be omitted, and the LGP 24 is directly supported on the bottom 231 of the member 23.
The examples of the present invention are only described in accordance with above contents, and the patent scope of the present invention is not limited to the examples. All equivalent structure or process changes in accordance with the specifications and the figures of the present invention, regardless of direct or indirect application in other related technical fields, are similarly considered to belong to the protection scope of the present invention.
Number | Date | Country | Kind |
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2011103963137 | Dec 2011 | CN | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/CN2011/083580 | 12/6/2011 | WO | 00 | 12/14/2011 |