The present invention relates to a display field, and more particularly to a backlight module and a liquid crystal display device.
A liquid crystal display device has features of low radiation, thin thickness, low power consumption and so on such that the device is widely applied in desktop computers, laptops, personal digital assistants, cell phones, television, etc. Because the liquid crystal display panel cannot emit light, in order to achieve a display effect, a surface light source is required for the liquid crystal display panel for achieving the display function. For example, a backlight module, used for providing a surface light source which is evenly distributed and having a sufficient brightness.
The backlight module usually includes a back frame, a light source, a light guide plate and multiple optical films, the light source, the light guide plate and multiple optical films are all fixed to the back frame. In other words, the light source, the light guide plate and multiple optical films are fixed relatively through the back frame.
In the conventional art, the back frame is made of a plastic material. However, the anti-disturbance stiffness of the plastic material is smaller, and easily to generate bending and deformation when assembling so as to affect the assembly precision. Besides, the heat conduction performance of the plastic material is poor so that the back frame adopting the plastic material cannot effectively dissipate heat for the light source.
The technology problem mainly solved by the present invention is to provide a back frame of a backlight module and a liquid crystal display device having larger anti-disturbance stiffness and better heat conduction performance.
In order to solve the above technology problem, a technology solution adopted by the present invention is: a backlight module for providing a backlight source to a display panel, comprising: a back frame including a plastic frame and a reinforcement member; wherein, a stiffness of the reinforcement member is greater than a stiffness of the plastic frame; the plastic frame includes four side walls connected in an end-to-end arrangement, sequentially as a first side wall, a second side wall, a third side wall and a fourth side wall; the first side wall is adjacent to a light source of a backlight module; the reinforcement member is disposed at outside of an inner side surface of the first side wall and an outside of a bottom surface of the first side wall connected with the inner side surface such that through the reinforcement member, a heat generated by the light source is conducted to an exterior of the backlight module, and the bottom surface is a surface that is away from the display panel.
Wherein, the reinforcement member is further disposed at the third side wall.
Wherein, the reinforcement member includes two “-” shaped sub-reinforcement members respectively extended along the first side wall and the third side wall.
Wherein, the reinforcement member is further disposed at the second side wall and the fourth side wall.
Wherein, the reinforcement member includes three “-” shaped sub-reinforcement members; or one “L” shaped and one “-” shaped sub-reinforcement members; or the reinforcement member is “[” shaped.
Wherein, the reinforcement member is further disposed at the second side wall and the fourth side wall, and the reinforcement member includes four “-” shaped sub-reinforcement members; or the reinforcement includes two “L” shaped sub-reinforcement members; or the reinforcement member includes one “[” shaped sub-reinforcement member and one “-” shaped sub-reinforcement member; or the reinforcement member is “□” shaped matching with the plastic frame.
Wherein, the reinforcement member is further disposed at an outer side surface of the first side wall, wherein, the outer side surface is opposite to the inner side surface.
Wherein, the reinforcement member and the plastic frame are formed integrally.
Wherein, the reinforcement member is a metal material.
In order to solve above technology problem, a technology solution adopted by the present invention is: a liquid crystal display device, wherein, the liquid crystal display device includes a backlight module and a display panel which are overlapped, and the backlight module comprises: a back frame including a plastic frame and a reinforcement member; wherein, a stiffness of the reinforcement member is greater than a stiffness of the plastic frame; the plastic frame includes four side walls connected in an end-to-end arrangement, sequentially as a first side wall, a second side wall, a third side wall and a fourth side wall; the first side wall is adjacent to a light source of a backlight module; the reinforcement member is disposed at outside of an inner side surface of the first side wall and an outside of a bottom surface of the first side wall connected with the inner side surface such that through the reinforcement member, a heat generated by the light source is conducted to an exterior of the backlight module, and the bottom surface is a surface that is away from the display panel.
Wherein, the reinforcement member is further disposed at the third side wall.
Wherein, the reinforcement member includes two “-” shaped sub-reinforcement members respectively extended along the first side wall and the third side wall.
Wherein, the reinforcement member is further disposed at the second side wall and the fourth side wall.
Wherein, the reinforcement member includes three “-” shaped sub-reinforcement members; or one “L” shaped and one “-” shaped sub-reinforcement members; or the reinforcement member is “[” shaped.
Wherein, the reinforcement member is further disposed at the second side wall and the fourth side wall, and the reinforcement member includes four “-” shaped sub-reinforcement members; or the reinforcement includes two “L” shaped sub-reinforcement members; or the reinforcement member includes one “[” shaped sub-reinforcement member and one “-” shaped sub-reinforcement member; or the reinforcement member is “□” shaped matching with the plastic frame.
Wherein, the reinforcement member is further disposed at an outer side surface of the first side wall, wherein, the outer side surface is opposite to the inner side surface.
Wherein, the reinforcement member and the plastic frame are formed integrally.
Wherein, the reinforcement member is a metal material.
The beneficial effect of the present invention is: comparing to the conventional art, the back frame of the backlight module of the present invention includes a plastic frame and a reinforcement member. the reinforcement member is disposed at outside of an inner side surface of the first side wall and an outside of a bottom surface of the first side wall connected with the inner side surface such that through the reinforcement member, a heat generated by the light source is conducted to an exterior of the backlight module, and the backlight module has a better heat dissipation effect. At the same time, because the stiffness of the reinforcement member is greater than the stiffness of the plastic frame, the anti-disturbance stiffness of the back frame is increased so as to avoid generating bending and deformation when assembling, and the assembly precision is higher.
With reference to
The backlight module 1 includes a back frame, a light source (not shown), a light guide plate (not shown) and multiple optical films (not shown). The back frame 10 is used for fixing the light source, a light guide plate and multiple optical films.
The plastic frame 11 includes four side walls connected in an end-to-end arrangement, sequentially as a first side wall 111, a second side wall 112, a third side wall 113 and a fourth side wall 114. Wherein, the first side wall 111 and the third side wall 113 are parallel with each other. The second side wall 112 and the fourth side wall 114 are parallel with each other. Two terminals of the first side wall 111 and the third side wall 113 are respectively perpendicularly connected with two terminals of the second side wall 112 and the fourth side wall 113. In the above side walls, each side wall includes four surfaces of an inner side surface 101, a bottom surface 102, a top surface 103 and an outer side surface 104. Wherein, the inner side surface 101 is a surface that is faced toward an opposite side wall, and the outer side surface 104 is a surface that is away from the opposite side wall. In a same side wall, the inner side surface 101 and the outer side surface 104 are disposed oppositely. The top surface 103 is a surface adjacent to the display panel D, the bottom surface 102 is a surface that is away from the display panel, and the top surface 103 and the bottom surface 102 are disposed oppositely.
The light source of a backlight module usually includes a direct-light type light source and a side-light type light source. The meaning of the direct-light type light source is that the light source is disposed right below the light guide plate. The meaning of the side-light type light source is that the light source is disposed at a side surface of the light guide plate. Using the backlight module adopting the side-light type light source as an example, the light source is disposed adjacent to a side wall of the back frame. In the present embodiment, the first side wall 111 is adjacent to the light source of the backlight module.
In the present embodiment, the reinforcement member 12 is only disposed at the first side wall 111. The reinforcement member 12 is extended along the first side wall 111 and is as “-” shape. Specifically refer to
The disposition of the reinforcement member 12 can obviously improve the heat dissipation effect of the backlight module. At the same time, because the stiffness of the reinforcement member 12 is greater than the stiffness of the plastic frame 11, the anti-disturbance stiffness of the backlight module can be obviously increased in order to effectively avoid the bending and deformation in the assembly process such that the backlight module has a higher assembly precision.
As an alternative embodiment, the three sub-reinforcement members 321, 322 and 323 can also respectively surround the first side wall 111, the fourth side wall 114 and the third side wall 113.
As an alternative embodiment, the “L” shaped sub-reinforcement member 422 can surrounds the outsides of the first side wall 111 and the second side wall 112 connected as “L” shape. The “-” shaped sub-reinforcement member surrounds the third side wall 113.
In all embodiments described above, preferably, the reinforcement member and the plastic frame are formed integrally. In an actual application, the reinforcement member can also adopt an embedded method to fix the plastic frame relatively.
The beneficial effect of the present invention is: comparing to the conventional art, the back frame of the backlight module of the present invention includes a plastic frame and a reinforcement member. the reinforcement member is disposed at outside of an inner side surface of the first side wall and an outside of a bottom surface of the first side wall connected with the inner side surface such that through the reinforcement member, a heat generated by the light source is conducted to an exterior of the backlight module, and the backlight module has a better heat dissipation effect. At the same time, because the stiffness of the reinforcement member is greater than the stiffness of the plastic frame, the anti-disturbance stiffness of the back frame is increased so as to avoid generating bending and deformation when assembling, and the assembly precision is higher.
The above embodiments of the present invention are not used to limit the claims of this invention. Any use of the content in the specification or in the drawings of the present invention which produces equivalent structures or equivalent processes, or directly or indirectly used in other related technical fields is still covered by the claims in the present invention.
Number | Date | Country | Kind |
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201610087122.8 | Feb 2016 | CN | national |
Filing Document | Filing Date | Country | Kind |
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PCT/CN2016/082306 | 5/17/2016 | WO | 00 |