The subject matter herein generally relates to touch display apparatus.
Electronic device with a display function and a touch function is widely used for performing a human-computer interaction. The electronic device includes electrodes and a driver coupled to the touch electrodes through lines. Due to a distance difference between electrodes and the driver, the lines connected to the electrodes are in different length, thus resistances of the lines are different. The resistance difference between two adjacent electrodes will affect a display performance of the electronic device, for example, when displaying a horizontal line.
There is room for improvement in the art.
Implementations of the present disclosure will be described, by way of embodiment, with reference to the figures.
It will be appreciated that for simplicity and clarity of illustration, where appropriate, reference numerals have been repeated among the different figures to indicate corresponding or analogous elements. In addition, numerous specific details are set forth in order to provide a thorough understanding of the embodiments described herein. However, it will be understood by those of ordinary skill in the art that the embodiments described herein can be practiced without these specific details. In other instances, methods, procedures, and components have not been described in detail so as not to obscure the related relevant feature being described. The drawings are not necessarily to scale and the proportions of certain parts may be exaggerated to better illustrate details and features. The description is not to be considered as limiting the scope of the embodiments described herein.
The term “substantially” is defined to be essentially conforming to the particular dimension, shape, or other feature that the term modifies, such that the component need not be exact. For example, “substantially cylindrical” means that the object resembles a cylinder but can have one or more deviations from a true cylinder. In general, the word “module,” as used herein, refers to logic embodied in hardware or firmware, or to a collection of software instructions, written in a programming language, for example, Java, C, or assembly. One or more software instructions in the modules may be embedded in firmware, such as an EPROM, magnetic, or optical drives. It will be appreciated that modules may comprise connected logic units, such as gates and flip-flops, and may comprise programmable units, such as programmable gate arrays or processors, such as a CPU. The modules described herein may be implemented as either software and/or hardware modules and may be stored in any type of computer-readable medium or other computer storage systems. The term “comprising” means “including, but not necessarily limited to”; it specifically indicates open-ended inclusion or membership in a so-described combination, group, series, and the like. The disclosure is illustrated by way of example and not by way of limitation in the figures of the accompanying drawings in which like references indicate similar elements. It should be noted that references to “an” or “one” embodiment in this disclosure are not necessarily to the same embodiment, and such references can mean “at least one.” Embodiments of the present disclosure are described with reference to the drawings.
The present disclosure describes a touch display apparatus for decreasing a difference in resistance between two connection lines connected to two adjacent electrodes.
In one embodiment, the touch module 20 is an in-cell touch module.
Referring to
Referring to
Referring to
In one embodiment, in each electrode column 22, two third of the electrode blocks 21 are respectively connected to the first connection lines 24, and one third of the electrode blocks 21 are respectively connected to the second connection lines 25. This means that M−1 is equal to N/3.
Due to the connections between the electrode blocks 21 and the driver 30 through the first connection lines 24 or the second connection lines 25, the greater the number of the electrode blocks 21, the larger is the length of the first connection line 24 or the second connection line 25 connected to the electrode blocks 21 away from the driver 30. Thus, a resistance of the first connection line 24 or the second connection line 25 is larger, and a transmitting loss of the signal on the first connection line 24 or the second connection line 25 also becomes larger, which affects a display performance of the touch display apparatus 10.
For reducing the transmitting loss, in one embodiment, each first connection line 24 includes two conductive lines 241, 242 connected in parallel, thus the constant distance between the electrode block 21 and the driver 30 reduces the resistance of the first connection line 24. In one embodiment, each second connection line 25 of the electrode block 21 adjacent to the driver 30 is one single conductive line 251. In one embodiment, a resistance of the conductive line 241, 242 is equal to a resistance of the single conductive line 251. Thus, the resistance of each conductive line 241, 242 with a specified length is equal to the resistance of the single conductive line 251 in the specified length.
In one embodiment, the projections of the through holes 231 on the electrode block 21 are defined as electrical connection points. A length of the first connection line 24 or the second connection line 25 is a distance between the driver 30 and the electrical connection point adjacent to the driver 30, which is on the corresponding electrode block 21 being connected to the first connection line 24 or the second connection 25. For example, the Nth electrode block 21 includes nine electrical connected points arranged in a line along the first direction X and is connected to the first connection line 24. The length of the first connection line 24 is a distance from the driver 30 to the electrical connection point closest to the driver 30.
Referring to
Referring to
If the resistance difference between the first connection line 243 and the second connection line 252 is suddenly increased, this will cause abnormal display of horizontal lines of the touch display apparatus 10.
Thus, in one embodiment, the number of the through holes 231 connected between the electrode block 21 and the first connection line 243 are adjusted for increasing the length of the first connection line 243, and the resistance of the first connection line 243 is increased. Thus, a difference in resistance between the first connection line 243 and the second connection line 252 is reduced.
In one embodiment, each electrode column 22 of the touch module 20 is in a same structure. The structure of one of the electrode columns 22 is explained as below, the other electrode columns 22 are the same.
Referring to
In one electrode column 22, the first connection line 243 is connected to the Mth electrode block 213 through the through holes 243 in a first specified number, and other first connection lines 24 are respectively connected to one of the (M+1)th to Nth electrode blocks 21 through the through holes 231 in a second specified number. The first specified number is less than the second specified number. The first specified number is less than 120, and the second specified number is less than or equal to 120.
Since the first specified number is less than the second specified number, the positions of the through holes 231 corresponding to the first connection line 243 can be moved away from the driver 30, and the electrical connection point closest to the driver 30 is also moved away from the driver 30. Thus, the distance between the driver 30 and the electrical connection point closest to the driver 30 is increased. The length of the first connection line 243 is thereby increased and the length of the first connection line 243 is proportional to the resistance of the first connection line 243, thus the resistance of the first connection line 243 is also increased. The resistance of the second connection line 252 adjacent to the first connection line 243 is unchanged, thus a resistance difference between the first connection line 243 and the second connection line 252 is decreased.
In the touch module 20, the number of the through holes 231 connected to the first connection line 243 and the electrode block 213 is dependent on the resistances and the lengths of the conductive lines 241, 242, and the single conductive lines 251. In one embodiment, the number of the through holes 231 must be enough to keep the resistance difference of the first connection line 243 and the second connection line 252 within 200Ω.
It can be understood that, the number of the through holes 231 corresponding to the first connection lines 24 and the second connection lines 25 in
When a position, location, size, or depth of the through hole 231 does not satisfy a requirement, the through hole 231 can be disabled. When some of the through holes 231 on the first connection lines 24 and the second connection lines 25 are disabled, the first connection lines 24 and the second connection lines 25 still connect to the electrode block 21 based on the through holes 231 which are enabled, for ensuring a function of the touch module 20.
The touch display apparatus 10 includes the touch module 20. The touch module 20 includes a plurality of electrode blocks 21 arranged in a matrix. The matrix includes a plurality of electrode columns 22. In each electrode column 22, the (M+1)th to Nth electrode blocks 21 are respectively connected to the first connection lines 243. The Mth electrode block 21 is connected to a first connection line 243 through the first specified number of through holes 231. The (M−1)th electrode block 21 is connected to the second connection line 252 through a second specified number of through holes 231. The (M−1)th electrode block 21 is adjacent to the Mth electrode block 21, and a resistance difference between the first connection line 243 and the second connection line 252 is larger than a resistance between two adjacent first connection lines 243 or two adjacent second connection lines 252, and the first specified number is less than the second specified number for increasing a resistance of the first connection line 243. Thus, the ordinary structure of the electrode blocks 21 and the driver 30 means that a resistance difference between the first connection line 243 and the second connection line 252 is reduced, and display performance of the touch display apparatus 10 with the touch module 20 is improved.
While various and preferred embodiments have been described the disclosure is not limited thereto. On the contrary, various modifications and similar arrangements (as would be apparent to those skilled in the art) are also intended to be covered. Therefore, the scope of the appended claims should be accorded the broadest interpretation so as to encompass all such modifications and similar arrangements.
Number | Date | Country | Kind |
---|---|---|---|
201910718952.X | Aug 2019 | CN | national |