Abstract:
The present invention provides a package cushioning structure for module, which includes a cushioning bottom board and a cushioning band extending through and interlaced with the cushioning bottom board. The cushioning bottom board forms a plurality of spaced hollow sections. A bar is arranged between every two of the hollow sections. The cushioning band includes a plurality of cushioning air columns mounted thereto at interval. The cushioning air columns are arranged alternately on the bars. To package, modules are each positioned on and born by each of the bars between two of the cushioning air columns. An alternate package cushioning structure includes a cushioning bottom board having a surface forming slots and a cushioning band arranged in the cushioning bottom board through a mounting channel extending through the bottom board from a side surface thereof. Air columns of the cushioning band are located in the slots to support modules.
Abstract:
The present invention provides a liquid crystal glass package box, which includes a box body, a plurality of mounting sections mounted inside the box body, and cushioning devices respectively mounted to the mounting sections. The cushioning devices each include a cushioning section and a receiving section connected to the cushioning section. The cushioning section includes an air pocket. The receiving section forms a receiving channel corresponding to the respective mounting section in order to mount the cushioning device in the box body. The liquid crystal glass package box provided by the present invention uses an air pocket to serve as a cushioning section mounted inside the box body to provide effective cushioning to liquid crystal glass for protecting the liquid crystal glass from damage during shipping. The raw material used is economic so as to effectively lower down the material cost. The structure is simple and is easy to manufacture.
Abstract:
A liquid crystal display (LCD) module includes a backplane, a light source support arranged on at least one edge of the backplane, and a frame oppositely fixed to the backplane. An edge of the backplane where the light source support is arranged is not configured with a sidewall. The light source support is configured with at least one insertion slot having insertion an opening facing the frame, and the frame is configured with an insertion bar matching with the insertion slot.
Abstract:
A back plate assembly with variable curvatures is disclosed. It comprises a flexible back plate, a connecting component, and an adjustment mechanism, and the adjustment mechanism comprises a connecting shaft disposed on the back plate, and the connecting component connects to the connecting shaft and abuts to the back plate, and the adjustment mechanism adjusts the connecting component on the connecting shaft to modulate clamping force of the back plate received from the connecting component. The back plate assembly can adapt to the backlight units and the display devices with different curvatures based on the requirement of the bend degree. Many kind of the back plate assemblies do not need to be manufactured to fit the backlight unit and the display device having different curvatures.
Abstract:
A packing box is disclosed. The packing box includes a box body having an inward concave forming four blocking portions at four sides, and a plurality of supporting members. The supporting member includes a big head end and a small head end fixedly connecting to the blocking portions. The small head end is arranged above an up surface of the blocking portion. A bottom surface of the big head end comprises an inward concave, the small head end of the supporting member of the packing box located at a lower altitude engages with the big head end of the supporting member of the packing box located at a higher altitude when the packing boxes are stacked.
Abstract:
The present invention provides a backlight module, which includes: a backplane (2), a light guide plate (4) arranged in the backplane (2), a backlight source (6) arranged in the backplane (2) and located at one side of the light guide plate (4), a light shield (8) arranged between the backlight source (6) and the backplane (2), and a side reflection plate (10) arranged between the light guide plate (4) and the backlight source (6). The backlight source (6) includes an LED substrate (62) and a plurality of LED lights (64) mounted on the LED substrate (62). The side reflection plate (10) has resiliency. The side reflection plate (10) includes a plurality of openings (102) formed therein to correspond to the LED lights (64). The LED lights (64) are receivable in the openings (102) to serve as light sources of the light guide plate (4).
Abstract:
The present invention provides a direct backlight module, which includes: a backplane (2), a plurality of backlight sources (4) mounted in the backplane (2), and a diffusion board (8) mounted on the backplane (2) and located above the backlight sources (4). The backplane (2) includes a bottom board (20) and a plurality of side boards (22) perpendicularly connected to the bottom board (20). The bottom board (20) includes a plurality of detachable carrier plates (24). The backlight sources (4) are mounted on the carrier plates (24). The direct backlight module of the present invention includes a plurality of carrier plates pieced together to form a bottom board of a backplane so that in assembling the backlight module, it is possible to simultaneously mount backlight sources to the plurality of carrier plates to thereby enhance the assembling efficiency. Further, when the backlight sources of some of the carrier plates are damaged, it only needs to re-work on the individual carrier plates of which the backlight sources are damaged so as to enhance the re-working efficiency.
Abstract:
The present invention provides a backlight module and a liquid crystal display device using the backlight module. The backlight module includes: a backplane (2), a light guide plate (4) arranged in the backplane (2), a backlight source (6) arranged in the backplane (2), and an optic film assembly (8) arranged on the light guide plate (4). The backplane (2) comprises a bottom plate (22) and a plurality of side plates (24) perpendicularly connected to the bottom plate (22). The bottom plate (22) has a surface facing the light guide plate (4) and defining a curved surface (222) and the curved surface (222) comprises a curved reflection surface (224) formed thereon. The backlight module and the liquid crystal display device using the backlight module according to the present invention have simple structure and include a backplane having a bottom plate that has a surface facing the light guide plate and including a curved reflection surface having excellent reflectivity formed thereon to replace a conventionally used reflector plate so as to reduce the thickness of the liquid crystal display device, reduce the cost of manufacturing, and facilitate achievement of thinning and also preventing the light guide plate from damage caused by friction between the reflector plate and the light guide plate and thus extending the life span of the light guide plate.
Abstract:
A positioning device which positions an optical film set in a backlight module is proposed. The backlight module includes a back plate. The optical film set is disposed on the back plate. The positioning device includes an assembly sheet and a fixing device. The assembly sheet is disposed at one end of the positioning device for penetrating an opening formed on at least one edge of the optical film set. The fixing device is used for fixing the positioning device to a side plate of the back plate. A backlight module in which the positioning device is used and a liquid crystal display (LCD) in which the positioning device is used are proposed as well. Owing to the present invention, the positioning of each optical film in the optical film set is simple. Also, an LCD featuring a thin bezel design is implemented.
Abstract:
The present disclosure provides a liquid crystal display (LCD) device and an LCD device. The LCD panel includes a first substrate and a second substrate oppositely arranged to the first substrate, and each of oppositely arranged surfaces of the two substrates are layered with one or more material layers. The edge of the oppositely arranged surface(s) of the first substrate and/or the second substrate is layered with protrusions and/or recesses, the edge layered with the protrusions and/or recesses is bonded with sealant, and the first substrate is bonded and fixed to the second substrate by the sealant.