The present invention relates generally to a driving circuit, and particularly to a touch display driving circuit for reducing the influence of parasitic capacitance.
With the prevalence of touch display devices, various types of touch display devices are developed for different requirements. For example, the in-cell and out-cell technologies improve touch display devices in different aspects for satisfying the demands in thinness for mobile devices. The so-called in-cell touch display devices are designs embedded and highly integrated into liquid crystal displays (LCD), categorized into single-sided and double-sided designs. In single-sided touch sensors, Tx electrodes/Rx electrodes are integrated on the same layer, for example, the sensing layer, which is coated below the color filter. On the others hand, double-sided touch sensors dispose Tx electrodes/Rx electrodes on and below the liquid crystal layer structure, respectively. Thereby, in terms of fabrication processes, since the design for the structure of single-sided touch sensors is simpler than double-sided ones, the process steps can be further simplified.
Unfortunately, for the single- or double-sided in-cell design of touch sensors, high integration is required in the panel process. In addition, it should be taken into account that the extracted signal quality of touch signals might be influenced by display signals. Moreover, the influence of the parasitic capacitance of liquid crystal display panels on the touch detection sensitivity should be considered as well. Consequently, the design challenges for in-cell touch display devices are increased. Currently, the related technologies for improving touch signal interference include the U.S. Pat. No. 9,164,641B1 and the PROC Patent Publication Numbers CN102929460B and CN202887154U. Normally, outside of the touch display driving circuit, a guard circuit and coupling capacitors and their circuits are disposed for generating and transmitting active guard signals and improving the parasitic capacitance effect. Nonetheless, this solution will increase the manufacturing costs of touch display devices. Besides, the touch driving signal TX is generally generated by the additionally disposed coupling capacitors and transmitted to the common electrode COM, further increasing the manufacturing costs.
Accordingly, the present invention provides a touch display driving circuit for improving the influence of parasitic capacitance on the touch detection sensitivity as well as lowering the manufacturing costs of touch display devices.
An objective of the present invention is to provide a touch display driving circuit for improving the influence of parasitic capacitance on the touch detection sensitivity.
The present invention discloses a touch display driving circuit, which comprises a source driving circuit and a touch detection circuit. The source driving circuit is coupled to a plurality of source lines of a touch display panel. The touch display driving circuit outputs a touch driving signal to one of the plurality of source lines during a touch detection cycle. The touch detection circuit receives a plurality of touch sensing signals via the corresponding common electrode of the source line. The plurality of touch sensing signals are then generated according to the touch driving signal.
The touch display driving circuit outputs source active guard signals to the others source lines of the plurality of source lines. Alternatively, the output terminals of the source driving circuit are in a floating state to make the others source lines of the plurality of source lines to the floating state.
The output terminals of the source driving circuit coupled to the others source lines of the plurality of source lines output a plurality of source active guard signals or are in the floating state, respectively. A plurality of output terminals of a gate driving circuit output a plurality of gate active guard signals or are in the floating state, respectively.
Moreover, the touch display driving circuit comprises a gate driving circuit coupled to a plurality of scan lines of the touch display panel. In the touch detection cycle, the gate driving circuit outputs the gate active guard signals to the plurality of scan lines. Alternatively, the gate driving circuit is coupled to the plurality of scan lines of the touch display panel. During the touch detection cycle, the plurality of output terminals of the gate driving circuit are floating and hence making the plurality of scan lines floating as well.
In the specifications and subsequent claims, certain words are used for representing specific devices. A person having ordinary skill in the art should know that hardware manufacturers might use different nouns to call the same device. In the specifications and subsequent claims, the differences in names are not used for distinguishing devices. Instead, the differences in functions are the guidelines for distinguishing. In the whole specifications and subsequent claims, the word “comprising” is an open language and should be explained as “comprising but not limited to”. Besides, the word “couple” includes any direct and indirect electrical connection. Thereby, if the description is that a first device is coupled to a second device, it means that the first device is connected electrically to the second device directly, or the first device is connected electrically to the second device via other device or connecting means indirectly.
In order to make the structure and characteristics as well as the effectiveness of the present invention to be further understood and recognized, the detailed description of the present invention is provided as follows along with embodiments and accompanying figures.
Please refer to
In a frame display cycle, the source driving circuit 10 outputs a plurality of source signals VS to the plurality of source lines S0˜S3 for driving the plurality of pixel electrodes and enabling the touch display panel to display a frame. In a touch detection cycle, the source driving circuit 10 outputs the touch driving signal TX to one of the plurality of source lines S0˜S3. For example, the source line S0 in
According to the present embodiment, the touch detection circuit 20 can be coupled to the source driving circuit 10 for outputting the touch driving signals TX to the plurality of source lines S0˜S3 via the source driving circuit 10. Nonetheless, according to another embodiment of the present invention, the touch detection circuit 20 can be coupled to the plurality of source lines S0˜S3 for outputting the touch driving signals TX to the plurality of source lines S0˜S3 directly. Besides, according to another embodiment of the present invention, touch detection and the display driving circuit can be integrated for using the source driving circuit 10 to generate the touch driving signals TX and output the touch driving signals TX to the plurality of source lines S0˜S3.
Furthermore, the plurality of source lines S0˜S3 can be adjacent or not adjacent, such as having a specific spacing, source lines on the display panel. In addition, according to some embodiments of the present invention, the touch driving signals TX can be output to a plurality of source lines concurrently. For example, because the distances between the source lines for transmitting the source signals VS of different colors including red, green, and blue on the same row of pixels are very close, the touch driving signals TX can be output to the source lines for different colors on the same row of pixels concurrently.
According to the present invention, the original source line S0 is used for transmitting the touch driving signal TX. The parasitic capacitances CS0, CS0′, . . . between the source line S0 and the common electrodes com0˜com35 are used for coupling the touch driving signal TX to the common electrode com0˜com35. Thereby, compared to the prior art, in which additionally disposed coupling capacitors are required for transmitting the touch driving signal TX to the common electrode COM, the circuit and capacitors required for transmitting the touch driving signal TX can be omitted according to the embodiments of the present invention and thus saving the costs of touch display devices.
Furthermore, according to the prior art, various parasitic capacitances of display panels, including the parasitic capacitance between source lines and the common electrode, should be minimized. Alternatively, active guard signals can be applied to the others terminals of parasitic capacitances to improve the parasitic capacitance effect and hence reducing the influence of parasitic capacitances on the touch detection sensitivity. According to the embodiments of the present invention, because the touch driving signal TX can be coupled to the common electrodes directly through the parasitic capacitances between the source lines and the common electrodes, signal transmission is done via the parasitic capacitances between the source lines and the common electrodes. Hence, the parasitic capacitances will not influence the touch detection sensitivity.
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Thereby, according to the present embodiment, the gate driving circuit 30 outputs the gate active guard signal Gag to one terminal of the parasitic capacitance CG0 while the other terminal of the parasitic capacitance CG0 is connected to the common electrode com0 and receives the touch driving signal TX. Because the touch driving signal TX and the gate active guard signal Gag can be in phase and have identical voltage levels, the parasitic capacitance CG0 can be ignored.
Moreover, when the touch detection line RX0 is used to detect the touch sensing signal VT of the common electrode com0, there exist parasitic capacitances CX1˜CX35 between the touch detection line RX0 and the others common electrodes com1˜com35. In addition, the plurality of parasitic capacitances CX1˜CX35 will be coupled to the others source lines S1, S2, S3 through the parasitic effect inside the display panel. Thereby, to avoid the influence of the plurality of parasitic capacitance CX1˜CX35 on the touch detection sensitivity, source active guard signals Sag can be output to the plurality of source lines S1, S2, S3 not used for the touch detection. In other words, the source driving circuit 10 outputs the touch driving signal TX to one of plurality of source lines S0, S1, S2, S3 and outputs the source active guard signal Sag to the others source lines S1, S2, S3, except the source line S0 receiving the touch driving signal TX, for reducing the influence of the parasitic capacitances of the touch display panel on the touch detection sensitivity. Besides, the source active guard signals Sag can be in phase with the touch driving signal TX and have identical voltage levels. For example, the source active guard signals Sag and the touch driving signal TX can both be sine or square waves.
Thereby, according to the present embodiment, the source driving circuit 10 outputs the plurality of source active guard signals Sag to one terminal of each of the plurality of parasitic capacitances CX1˜CX35 while the others terminal of each of the plurality of parasitic capacitances CX1˜CX35 is connected to the common electrode com0 and receives the touch driving signal TX. Because the touch driving signal TX and the plurality of source active guard signals Sag can be in phase and have identical voltage levels, the parasitic capacitances CX1˜CX35 can be ignored. In other words, after a finger touches the touch display panel, the variation of the touch sensing signal VT is only influenced by the ratio of the parasitic capacitance CS0 between the source line S0 and the common electrode com0 to the finger capacitance CF. Hence, higher touch detection sensitivity can be maintained.
There are different embodiments for the touch display driving circuit to drive the plurality of source lines S0˜S3 and the plurality of scan lines G0˜Gn to reduce the influence of the parasitic capacitances of the touch display panel on the touch detection sensitivity. Please refer to
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To sum up, the present invention discloses a touch display driving circuit, which comprises a source driving circuit and a touch detection circuit. The source driving circuit is coupled to a plurality of source lines of a touch display panel. The touch display driving circuit outputs a touch driving signal to one of the plurality of source lines during a touch detection cycle. The touch detection circuit receives a plurality of touch sensing signals via the corresponding common electrode of the source line. The plurality of touch sensing signals are then generated according to the touch driving signal.
The touch display driving circuit outputs source active guard signals to the others source lines of the plurality of source lines. Alternatively, the output terminals of the source driving circuit are in a floating state to make the others source lines of the plurality of source lines to the floating state.
The output terminals of the source driving circuit coupled to the others source lines of the plurality of source lines output a plurality of source active guard signals or are in the floating state, respectively. A plurality of output terminals of a gate driving circuit output a plurality of gate active guard signals or are in the floating state, respectively.
Moreover, the touch display driving circuit comprises a gate driving circuit coupled to a plurality of scan lines of the touch display panel. In the touch detection cycle, the gate driving circuit outputs the gate active guard signals to the plurality of scan lines. Alternatively, the gate driving circuit is coupled to the plurality of scan lines of the touch display panel. During the touch detection cycle, the plurality of output terminals of the gate driving circuit are floating and hence making the plurality of scan lines floating as well.
Number | Date | Country | |
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62541890 | Aug 2017 | US |