Abstract:
The present invention provides a liquid crystal panel which has a plurality of data lines, a plurality of scan lines and a plurality of display units. Each of the scan lines has a second metal wiring layer, a third metal wiring layer located above the second metal wiring layer, and two transparent conductive lines. The transparent conductive lines are spaced apart from each other and located between the second and third metal wiring layers. The second and third metal wiring layers can form a parallel connection by electrically connecting the second metal wiring layer with the third metal wiring layer, so that the impedance of the scan lines can be reduced.
Abstract:
The present invention provides a liquid crystal panel and a method for manufacturing the same. The liquid crystal panel comprises a color filter substrate including a first testing point of a common electrode thereon; and a thin film transistor substrate including a second testing point thereon for testing circuits of the color filter substrate, and a switching unit is arranged between the second testing point and the first testing point, and enables the circuit connection between the second testing point and the first testing point to be in a disconnected state when the potential of the second testing point is abnormal. In this manner, the potential of the first testing point inside the color filter substrate may be prevented from interfere as well as a phenomenon of picture display abnormality of the liquid crystal panel due to short in the testing points.
Abstract:
A liquid crystal display and the driving method thereof are disclosed. The liquid crystal display includes a plurality of pixels, data lines for transmitting data driving signals to the pixels, a scanning driver for generating scanning driving signals, a waveform shaping circuit for connecting with the scanning driver, a plurality of scanning lines for transmitting the shaped scanning driving signal to the pixels. The waveform shaping circuit shapes the waveforms of the scanning driving signal along a rising edge. In this way, the voltage difference between the pixel electrodes is eliminated. Thus, the color shift is reduced, and the display performance of the liquid crystal display is enhanced.
Abstract:
An array substrate and a manufacturing method thereof are disclosed. The present disclosure relates to the technical field of display, whereby the qualified rate of the array substrate can be improved, and the manufacturing cost thereof can be reduced significantly. The array substrate comprises a first wiring, a first insulating layer, and a second wiring from bottom up in sequence, wherein said second wiring crosses over said first wiring; wherein a crossed-over part of said second wiring consists of a plurality of branches, with an interspace formed between every two adjacent branches, so as to obtain a comb structure; and wherein at least one of the branches is nearer to said first wiring relative to other branches. The array substrate of the present disclosure can be used in liquid crystal TV, liquid crystal display, mobile phone, tablet personal computer, and other display devices.
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, each of the wires comprising a conductive portion and all or some of the wires each comprising a non-conductive portion. In the bounding lead, the areas of the conductive portions 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 liquid crystal display and the driving method thereof are disclosed. The liquid crystal display includes a plurality of pixels, data lines for transmitting data driving signals to the pixels, a scanning driver for generating scanning driving signals, a waveform shaping circuit for connecting with the scanning driver, a plurality of scanning lines for transmitting the shaped scanning driving signal to the pixels. The waveform shaping circuit shapes the waveforms of the scanning driving signal along a rising edge. In this way, the voltage difference between the pixel electrodes is eliminated. Thus, the color shift is reduced, and the display performance of the liquid crystal display is enhanced.
Abstract:
A mask utilized in a liquid crystal display (LCD) panel is disclosed in the present invention, and the mask comprises a substrate; a light shielding layer disposed on the substrate and separated into a first light shielding region and a second light shielding region and the first light shielding region is for shielding the UV light and the second light shielding region is for shielding the UV light and absorbing the UV light reflected from the TFT substrate of the LCD panel; and a photic region disposed on the substrate and adjacent to an area of the light shielding layer and allowing the UV light to pass therethrough.