The present application claims benefit of Chinese patent application CN 201510236096.6, entitled “Array Substrate and Display Device” and filed on May 11, 2015, the entirety of which is incorporated herein by reference.
The present disclosure relates to the technical field of display, and particularly to an array substrate and a display device.
A source driving signal can be obtained from image signals that are in serial arrangement after conversion, and must have the features concerning driving image display of the liquid crystal display panel. On the one hand, the source driving signal must be a parallel signal with one row as a unit. On the other hand, an amplitude change of the source driving signal must conform to the light transmittance property of the liquid crystal molecules after Gamma correction. A source driving circuit is used for converting the image signal into the source driving signal with the above features.
As shown in
The present disclosure aims to provide an array substrate and a display device so as to solve the technical problem that the uniformity of the images of the liquid crystal display panel is affected by the distortion of the source driving signal.
The present disclosure first provides an array substrate, which comprises n active areas that are arranged from top to bottom in vertical direction, each active area comprising m rows of pixel units, n and m both being any integers larger than 1, wherein each active area is provided with a source driving circuit correspondingly, which provides a source driving signal to each row of pixel units of said active area.
The array substrate is provided with a gate driving circuit, which is provided with m output ends; and each output end outputs n gate driving signals simultaneously, each of which is used for driving one row of pixel units of n active areas.
The gate driving circuit comprises a first to an mth output ends from top to bottom, and each active area comprises a first to an mth rows of pixel units from top to bottom; and the first, the second, . . . , the (m−1)th, and the mth output ends of the gate driving circuit are connected with the first, the second, . . . , the (m−1)th, and the mth rows of pixel units of each active area respectively.
The gate driving circuit comprises a first to an mth output ends from top to bottom, and each active area comprises a first to an mth rows of pixel units from top to bottom; and the first, the second, . . . , the (m−1)th, and the mth output ends of the gate driving circuit are connected with the mth, the (m−1)th, . . . , the second, and the first rows of pixel units of each active area respectively.
The gate driving circuit comprises a first to an mth output ends from top to bottom, and each active area comprises a first to an mth rows of pixel units from top to bottom; and the first, the second, . . . , the (m−1)th, and the mth output ends of the gate driving circuit are connected with the mth, the (m−1)th, . . . , the second, and the first rows of pixel units of odd-numbered active areas of the n active areas respectively, and the first, the second, . . . , the (m−1)th, and the mth output ends of the gate driving circuit are connected with the first, the second, . . . , the (m−1)th, and the mth rows of pixel units of even-numbered active areas of the n active areas respectively.
The gate driving circuit comprises a first to an mth output ends from top to bottom, and each active area comprises a first to an mth rows of pixel units from top to bottom; and the first, the second, . . . , the (m−1)th, and the mth output ends of the gate driving circuit are connected with the first, the second, . . . , the (m−1)th, and the mth rows of pixel units of odd-numbered active areas of the n active areas respectively, and the first, the second, . . . , the (m−1)th, and the mth output ends of the gate driving circuit are connected with the mth, the (m−1)th, . . . , the second, and the first rows of pixel units of even-numbered active areas of the n active areas respectively.
The n source driving circuits are all arranged at an upper end or a lower end of the array substrate.
The n source driving circuits are arranged at an upper end and a lower end of the array substrate respectively.
The source driving circuit increases an amplitude of the source driving signal.
The following beneficial effects can be brought about by the present disclosure. Since each active area is provided with a source driving circuit correspondingly, the transmission distance of the source driving signal of each source driving circuit can be shortened to a large extent compared with the transmission distance in the prior art. With respect to the pixel units that are far from the source driving circuit, the extent of delay, attenuation, and distortion of the waveform of the source driving signal received therein can be reduced. Therefore, the uniformity of the image of the liquid crystal display panel that is provided with the array substrate can be improved.
The embodiment of the present disclosure further provides a display device, which comprises the aforesaid array substrate.
Other features and advantages of the present disclosure will be further explained in the following description, and partially become self-evident therefrom, or be understood through the embodiments of the present disclosure. The objectives and advantages of the present disclosure will be achieved through the structure specifically pointed out in the description, claims, and the accompanying drawings.
The drawings necessary for explaining the embodiments are introduced briefly below to illustrate the technical solutions of the embodiments of the present disclosure more clearly.
The present disclosure will be explained in details with reference to the embodiments and the accompanying drawings, whereby it can be fully understood how to solve the technical problem by the technical means according to the present disclosure and achieve the technical effects thereof, and thus the technical solution according to the present disclosure can be implemented. It should be noted that, as long as there is no structural conflict, all the technical features mentioned in all the embodiments may be combined together in any manner, and the technical solutions obtained in this manner all fall within the scope of the present disclosure.
An embodiment of the present disclosure provides an array substrate, which comprises n active areas that are arranged from top to bottom in vertical direction, each active area comprising m rows of pixel units, n and m both being any integers larger than 1, wherein each active area is provided with a corresponding source driving circuit, which provides a source driving signal to each row of pixel units of the active area.
In order to facilitate the description, the technical solution of the present disclosure will be illustrated specifically and in detail hereinafter taking n=2 as an example. The specific structure of the array substrate would change accordingly if the number of n changes, but the technical solutions obtained therein all fall within the scope of the present disclosure.
As shown in
The first source driving circuit and the second source driving circuit can be arranged at one end of an upper end and a lower end of the array substrate side by side. Specifically, if the array substrate is provided with i columns of pixel units, as shown in
In addition, as shown in
Since each active area is provided with a source driving circuit correspondingly, the transmission distance of the source driving signal of each source driving circuit can be shortened to a large extent compared with the transmission distance in the prior art. With respect to the pixel units that are far from the source driving circuit, the waveform of the source driving signal received therein is the distorted waveform as shown by the dotted line in
Moreover, an amplitude of the source driving signal output by the source driving circuit can be increased reasonably according to the extent of attenuation of the source driving signal received by each row of pixel units with a different distance from the source driving circuit, so that the amplitude of the source driving signal received by the pixel units after the attenuation of the source driving signal during transmission is equal to the amplitude of the source driving signal which the pixel units should receive theoretically. In this case, the extent of distortion of the distorted waveform can be further reduced, and thus the display effect of the liquid crystal display panel can be further improved.
The active area A1 and the active area A2 can be driven by two gate driving circuits respectively, and perform scanning and display images from top to bottom in sequence. The active area A1 and the active area A2 can also be driven by the same gate driving circuit, and perform the line-by-line scanning and display images at the same time. With respect to the active area that is provided with m rows of pixel units, the gate driving circuit comprises m output ends. In order to drive the active area A1 and the active area A2 at the same time, each output end of the gate driving circuit outputs two gate driving signals at the same time, and each active area receives one gate driving signal. In this case, the active area A1 and the active area A2 can be driven by the two gate driving signals at the same time to perform the line-by-line scanning and display images, and the scanning rate of the array substrate can be improved with the cooperation of the source driving signals output by the two source driving circuits respectively.
For example, as shown in
It is obvious that, the situation as shown in
For another example, as shown in
It is obvious that, the situation as shown in
In the array substrate according to the embodiment of the present disclosure, the line-by-line scanning of each active area can be performed at the same time, so that the image can be displayed. Thus, the more active areas there are, the higher the scanning rate of the array substrate would be. At the same time, the lighter the distortion phenomenon of the source driving signal would be, and the better the uniformity of the liquid crystal display panel would become. However, the more active areas there are, the higher the cost of the array substrate would be, and the more complicated the wirings thereof would become. Therefore, the array substrate comprising two active areas is the optimized design taking the aforesaid factors into comprehensive consideration.
Further, the embodiment of the present disclosure provides a display device, which comprises any one of the above array substrates. The display device can be liquid crystal television, liquid crystal display device, mobile phone, tablet personal computer, and so on.
The above embodiments are described only for better understanding, rather than restricting, the present disclosure. Any person skilled in the art can make amendments to the implementing forms or details without departing from the spirit and scope of the present disclosure. The protection scope of the present disclosure shall be determined by the scope as defined in the claims.
Number | Date | Country | Kind |
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201510236096.6 | May 2015 | CN | national |
Filing Document | Filing Date | Country | Kind |
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PCT/CN2015/079747 | 5/25/2015 | WO | 00 |