1. Field of the Invention
The present invention relates to a capacitive touch screen and a control method thereof, and more particularly, to a mutual capacitive touch screen and a control method where driving areas and receiving areas in touch sensing electrodes are disposed in the same layer of the touch screen.
2. Description of the Prior Art
In recent years, touch sensing technology advances rapidly, and many consumer electronic products such as mobile phones, GPS navigator systems, tablets, personal digital assistants (PDA) and laptops are equipped with touch sensing functions. In various electronic products, touch sensing functions are included in a display area which originally had only display functions. In other words, an original display panel is replaced by a touch screen capable of both display and touch sensing functions. The touch screen can generally be divided into out-cell, in-cell and on-cell touch screen according to the difference in structure of the touch screen. The out-cell touch screen is composed of an independent touch screen and a general display panel. In the in-cell and on-cell touch screen, a touch sensing device is directly disposed on inside and outside of a substrate in the display panel, respectively.
On the other hand, touch sensing techniques can be classified into a resistive type, capacitive type and optical type. The capacitive type touch screens became popular gradually since they have many advantages such as high sensing accuracy, high transparency, high reaction speed and long life. The capacitive touch screens can further be classified into two types: self capacitance and mutual capacitance. The self capacitive touch screens cannot sense a multi-touch accurately, and are usually applied in electronic products with only single-touch sensing functions or devices with smaller display areas. In comparison, the mutual capacitive touch screens are capable of performing multi-touch sensing functions and other complex touch sensing functions for larger display areas. In the available mutual capacitive touch screens, however, the touch sensing electrodes have to be disposed in different layers of the touch screen, in order to detect capacitor variations between two layers of touch sensing electrodes, which increases manufacturing costs and complexity of the mutual capacitive touch screens.
Thus, there is a need to provide a structure of the mutual capacitive touch screen possessing the advantage that the mutual capacitive touch screen can support multi-touch sensing functions with high accuracy, where the manufacturing costs and complexity can be reduced.
It is therefore an objective of the present invention to provide a mutual capacitive touch screen and a control method where driving areas and receiving areas in touch sensing electrodes are disposed in the same layer of the touch screen, in order to reduce the manufacturing costs and complexity of the touch screen in addition to supporting multi-touch sensing functions with high accuracy.
The present invention discloses a capacitive touch screen, which comprises a plurality of touch sensing electrodes, each comprising at least one driving area and at least one receiving area; and a touch controller, for scanning the at least one driving area in the plurality of touch sensing electrodes in order and detecting signals received by the at least one receiving area in the plurality of touch sensing electrodes, or scanning the at least one receiving area in the plurality of touch sensing electrodes in order and detecting signals received by the at least one driving area in the plurality of touch sensing electrodes; wherein the at least one driving area and the at least one receiving area in the plurality of touch sensing electrodes are located in a same layer of the capacitive touch screen; wherein each of the at least one driving area in the plurality of touch sensing electrodes is electrically connected to the touch controller respectively, and each of the at least one receiving area in the plurality of touch sensing electrodes is electrically connected to each other and then electrically connected to the touch controller.
The present invention further discloses a control method for a capacitive touch screen. The control method comprises disposing a plurality of touch sensing electrodes in a same layer of the capacitive touch screen, and each of the plurality of touch sensing electrodes comprises at least one driving area and at least one receiving area; electrically connecting each of the at least one driving area in the plurality of touch sensing electrodes to a touch controller respectively, and electrically connecting each of the at least one receiving area in the plurality of touch sensing electrodes to each other and then electrically connecting the at least one driving area to the touch controller; and scanning the at least one driving area in the plurality of touch sensing electrodes in order and detecting signals received by the at least one receiving area in the plurality of touch sensing electrodes by the touch controller, or scanning the at least one receiving area in the plurality of touch sensing electrodes in order and detecting signals received by the at least one driving area in the plurality of touch sensing electrodes by the touch controller.
These and other objectives of the present invention will no doubt become obvious to those of ordinary skill in the art after reading the following detailed description of the preferred embodiment that is illustrated in the various figures and drawings.
Distinct from conventional mutual capacitive touch screens where the driving areas and receiving areas in touch sensing electrodes are disposed in two different layers to perform touch sensing by detecting capacitance variations between these two layers, the present invention simplifies the two layers of touch sensing electrodes to one layer, where the advantage that the mutual capacitive touch screens can detect multi-touch accurately still remains.
Please refer to
An exemplary embodiment of wire connection for the driving areas and receiving areas is also detailed in
When the touch screen is operated, the touch controller 202 scans all driving areas in the touch sensing electrodes E00-E35 in order, and detects signals received by all receiving areas in the touch sensing electrodes E00-E35. For example, according to the disposition of the touch sensing electrodes E00-E35 in the touch screen 20, the touch controller 202 may detect signals from six receiving areas. After detecting four times, the touch controller 202 obtains complete capacitance variations of the 4×6 touch sensing electrodes. A logic computing device can then be utilized for calculating the location of touch gesture by interpolation according to the capacitance variations of the 4×6 touch sensing electrodes. In general, whether a touch gesture occurs can be determined according to capacitance variations of all touch sensing electrodes, i.e. capacitance variations between the driving areas and the receiving areas. When any capacitance variation exceeds a predetermined value, the touch controller 202 may determine that a touch gesture occurs. The location of touch gesture is then calculated by interpolation according to capacitance variations of all touch sensing electrodes on the basis of a touch sensing electrode having a maximum capacitance variation. The calculating method of interpolation should be well-known by those skilled in the art, and is not narrated herein.
In some embodiments, the structure of the touch screen 20 may be adjusted by external circuits to be adapted to various applications. For example, a driving terminal of the external circuit may be connected to the receiving areas of the touch sensing electrodes E00-E35, and a receiving terminal of the external circuit may be connected to the driving areas of the touch sensing electrodes E00-E35. As a result, the touch controller 202 scans all receiving areas in the touch sensing electrodes E00-E35 in order, and detects signals received by all driving areas in the touch sensing electrodes E00-E35. In other words, the functions of the driving areas and the receiving areas in the touch screen 20 are interchanged. According to different system applications, any control method such as driving method and detecting method based on the structure of the touch screen 20 is included in the scope of the present invention.
Please note that according to the present invention, the driving areas and receiving areas in the touch sensing electrodes are disposed in the same layer of the touch screen, in order to reduce the manufacturing costs and complexity of the conventional mutual capacitive touch screens, in which driving areas and receiving areas are disposed in multiple layers. Those skilled in the art can make modifications and alterations accordingly. For example, the number and the disposition of the touch sensing electrodes in the touch screen can be selected arbitrarily. In each touch sensing electrode, the number and the disposition of the driving areas and receiving areas can also be arranged in any manner, which are not limited herein. Besides, the shape of the driving areas and receiving areas may not limited to those shown in
For example, the driving areas and receiving areas with different shapes or dispositions may lead to different sensitivity. In order to achieve higher sensitivity, the disposition of the driving areas and receiving areas can be varied, which enhances capacitive sensing capability. Please refer to
Please refer to
In the prior art, the touch sensing electrodes have to be disposed in different layers of the conventional mutual capacitive touch screens, in order to detect capacitor variations between two layers of touch sensing electrodes, which increases manufacturing costs and complexity of the mutual capacitive touch screens. In comparison, according to the embodiments of the present invention, the driving areas and receiving areas in the touch sensing electrodes are disposed in the same layer of the mutual capacitive touch screen, so that the manufacturing costs and complexity can be reduced. The advantage that the mutual capacitive touch screens can detect multi-touch accurately still remains.
Those skilled in the art will readily observe that numerous modifications and alterations of the device and method may be made while retaining the teachings of the invention. Accordingly, the above disclosure should be construed as limited only by the metes and bounds of the appended claims.
Number | Date | Country | Kind |
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102107513 | Mar 2013 | TW | national |