Abstract:
A thin-film transistor (TFT) array substrate is provided. The TFT array substrate is structured to change the way that sub-pixels are arranged so that during a displaying period of a frame of image, the sub-pixels that have inconsistent brightness/darkness become alternate with each other spatially so that a displaying defect of vertical bright/dark lines can be improved and the overall resistance of the data line can be reduced to thereby reduce resistance-capacitance delay and prevent incorrect charging at a tail end of a scan line or a data line.
Abstract:
A TFT array substrate includes a display zone having data lines, scan lines, and sub-pixels arranged in an array. For the sub-pixels of the same row, each of the sub-pixels of the even columns is connected with the scan line above the row of the sub-pixels and each of the sub-pixels of the odd columns is connected with the scan line below the row of the sub-pixels. The non-display zone includes fan-out lines respectively corresponding to and connected with the scan lines. Each of the fan-out lines includes a horizontal line segment and a slanted line segment. The slanted line segments of the two fan-out lines respectively corresponding to and connected with two adjacent, upper and lower scan lines are arranged to intersect each other in a mutually isolated manner so as to change the sequence of driving the two adjacent, upper and lower scan lines.
Abstract:
A liquid crystal display panel is provided, comprising a plurality of sub pixels arranged in a pixel array, which is formed by a plurality of data lines and a plurality of scan lines perpendicular to each other. The plurality of scan lines comprises a first scan line connected with a first sub pixel, the first scan line being enabled within a first time period after a polarity inversion of a drive signal level of a data line, and at least one second scan line being enabled within a second time period after the first time period. An RC delay of the second scan line is larger than that of the first scan line.
Abstract:
The present invention provides a polaroid comprising a first protecting film, a polarizing film and a second protecting film which are stacked, wherein a rough structure layer and surface protecting film are sequentially disposed above the second protecting film. The present invention further provides a liquid crystal panel comprising a thin film transistor substrate, a color filter substrate disposed oppositely to the thin film transistor substrate and a liquid crystal layer disposed between the thin film transistor substrate and the color filter substrate, and the thin film transistor substrate being coupled to a first polaroid and the color filter substrate being coupled to a second polaroid, wherein the polaroid described above is adopted to be the second polaroid. Furthermore, the present invention provides a liquid crystal display apparatus comprises the liquid crystal panel described above.
Abstract:
The present invention provides a TFT array substrate, including a display zone having a plurality of data lines, a plurality of scan lines, and sub-pixels arranged in an array. For the sub-pixels of the same row, a sub-pixel of an even column and a sub-pixel of an odd column that are respectively located at left and right sides of each of the data lines are collectively and electrically connected to the data line each by a TFT. For the sub-pixels of the same row, each of the sub-pixels of the even columns is electrically connected with the scan line above the row of the sub-pixels and each of the sub-pixels of the odd columns is electrically connected with the scan line below the row of the sub-pixels. The non-display zone includes a plurality of fan-out lines. Each of the fan-out lines corresponds to and is connected with one of the scan lines. Each of the fan-out lines includes a horizontal line segment and a slanted line segment. For a skip of every two or four successively arranged scan lines, the slanted line segments of the two fan-out lines respectively corresponding to and connected with two adjacent, upper and lower scan lines are arranged to intersect each other in a mutually isolated manner so as to change the sequence of driving the two adjacent, upper and lower scan lines.
Abstract:
In the technical field of display, a substrate, a display device and a method for manufacturing an alignment film are disclosed. The present disclosure can solve the technical problem of image sticking of the liquid crystal display caused by the difference of feedthrough at different locations of the liquid crystal display device. The substrate of the present disclosure comprises a glass base and an alignment film formed on the glass base. The thickness of the alignment film measured along a lateral direction gradually becomes thinner from both ends of the alignment film to the center thereof, and/or the thickness of the alignment film measured along a longitudinal direction gradually becomes thinner from one end of the alignment film to the other end thereof. The present disclosure can be applied to display devices, such as liquid crystal television, liquid crystal display, mobile phone, and PC tablet, etc.
Abstract:
The present disclosure relates to an array substrate, a display panel and a display device. The array substrate includes GND wirings and GOA areas. The GND wirings are configured at outer sides of the GOA areas, and the GOA area includes a variety of GOA signal lines and N-th stage GOA circuits electrically connected by the GOA signal lines. A first ESD protection circuit is configured in a middle area between the 1-th stage GOA circuit and the N-th stage GOA circuit to discharge abnormal electrical charges of the GOA signal lines within the middle area. With such configuration, better ESD protection capability is provided between the GOA signal lines.
Abstract:
The present disclosure discloses a HSD liquid crystal display panel, a display device and a driving method thereof. Said display panel comprises a plurality of sub pixel unit groups connected with data lines and scanning lines, wherein each data line comprises a plurality of winding parts; and wherein the sub pixel unit groups that are spaced from each other by k rows and connected to data line i and the sub pixel unit groups that are spaced from each other by k rows and connected to data line i+m are located in the same column group, so that during display driving the polarity of a sub pixel unit group is opposite to that of its adjacent sub pixel unit group in the same row, and the polarity of a sub pixel unit group is the same as that of the sub pixel unit group which is spaced from said sub pixel unit group by k rows in the same column group, i and k being positive integers and m being odd number.
Abstract:
In the technical field of display, a display device for solving the technical problem of H-block caused by the resistance of the wire on array is provided. The display device comprises a substrate and at least two chip on films for transmitting the gate driving signal. At least two fanouts are formed on the substrate, and each of the chip on films is connected with a corresponding one of the fanouts. Adjacent chip on films are connected with each other through a wire on array. In two adjacent fanouts, the resistance of the former fanout is larger than that of the latter fanout. The present disclosure can be applied to display devices, such as liquid crystal television, liquid crystal display, cell phone, and tablet PC, and the like.
Abstract:
A TFT array substrate includes a display zone having data lines, scan lines, and sub-pixels arranged in an array. For the sub-pixels of the same row, each of the sub-pixels of the even columns is connected with the scan line above the row of the sub-pixels and each of the sub-pixels of the odd columns is connected with the scan line below the row of the sub-pixels. The non-display zone includes fan-out lines respectively corresponding to and connected with the scan lines. Each of the fan-out lines includes a horizontal line segment and a slanted line segment. The slanted line segments of the two fan-out lines respectively corresponding to and connected with two adjacent, upper and lower scan lines are arranged to intersect each other in a mutually isolated manner so as to change the sequence of driving the two adjacent, upper and lower scan lines.