Abstract:
In the technical field of display, a display device for solving the technical problem of fanout mura of the pixels controlled by the wires located at both sides of a fanout is provided. The display device according to the present disclosure comprises a substrate, and a chip on film connected to the fanout on the substrate through a bounding lead. The bounding lead comprises a plurality of parallel wires. In the bounding lead, the areas of the wires gradually decrease from the wires located at both ends of the bounding lead to those located at the center thereof. The present disclosure can be applied to display devices, such as liquid crystal television and liquid crystal display, etc.
Abstract:
A mask device for optical alignment and equipment thereof are disclosed. The mask device comprises a first mask having a first overlapping region and a first non-overlapping region and a second mask having a second overlapping region and a second non-overlapping region. The first and second mask overlap with each other. The first overlapping and non-overlapping regions, the second overlapping and non-overlapping regions comprise openings respectively. The height of the openings of the first and the second overlapping region are arranged to vary according the trigonometric square such that the height of the openings at the same position that the overlapping regions overlap with each other is the same as that the openings of the first or the second non-overlapping regions. Compared with the current technology, the disclosure may eliminate the defects of the striped mura in the liquid crystal display to increase the display quality of the products.
Abstract:
A liquid crystal display panel and an array substrate. The liquid crystal display panel includes a first substrate, a second substrate, and a liquid crystal layer. The first substrate includes multiple scanning lines and data lines. Each of the pixel areas includes a first sub-pixel area, a second sub-pixel area, and a third sub-pixel area. Driving voltages of the first sub-pixel area, the second sub-pixel area, and the third sub-pixel area are all generated from a data voltage provided by a same data line corresponding to the pixel area. When driving, the driving voltage of the first sub-pixel area is greater than the driving voltage of the second sub-pixel area, and the driving voltage of the second sub-pixel area is greater than the driving voltage of the third sub-pixel area. The color shift problem at a large viewing angle can be solved, and simplifying the circuit and reducing the cost.
Abstract:
A display module and a display device are provided. The display module includes a display panel and a front frame. The display panel includes a display region and a non-display region both located at a side of a light emitting surface. The non-display region is disposed at a peripheral area of the display panel and is provided with a test pad electrically connected to a wiring of the display region. The front frame includes a front plate opposite to at least a portion of the non-display region and having an electric conduction portion for conducting away an electrical current and an insulation portion for insulating the electric conduction portion from the test pad on the display panel.
Abstract:
The present invention proposes a manufacturing method of a liquid crystal display panel. The method includes: injecting liquid crystal molecules having monomers into a liquid crystal box; detecting an alternating-current deflection voltage between a transparent electrode of an array substrate and a transparent electrode of a color filter substrate in connection areas of the liquid crystal display panel; applying the alternating-current deflection voltage between the transparent electrode of the array substrate and the transparent electrode of the color filter substrate when values of the alternating-current deflection voltage are all equal to a setting value; irradiating the liquid crystal display panel to form the polymer alignment films.