The present disclosure relates to a touch display panel and a sensing and driving method thereof, and in particular, to a touch display panel with functions of detecting a touch position and detecting a touch pressure and a sensing and driving method thereof.
Owing to a touch panel is integrated with a liquid crystal display (LCD), cost can be lowered, and thickness of a touch display apparatus is therefore reduced. However, a touch sensor of the touch panel integrated with the LCD can only detect a touch position but not detect a magnitude of a touch pressure. If a function of detecting a touch pressure is needed, an external pressure sensor (for example: a force sensor) is needed to execute the function. However, using the external pressure sensor not only leads to more adhesive procedures, but the extra thickness of the external pressure sensor increases the thickness of the touch display apparatus, which violates a current tendency of thinning, and the external pressure sensor may also cause optical quality of the LCD to deteriorate.
An embodiment of the present disclosure provides a touch display panel. The touch display panel includes a first electrode layer, a second electrode layer, a third electrode layer, a first dielectric layer, a second dielectric layer, and an active layer. The first electrode layer includes a plurality of first sensing electrodes, the second electrode layer includes a plurality of second sensing electrodes, the third electrode layer includes a plurality of third sensing electrodes, the first dielectric layer is disposed between the first electrode layer and the second electrode layer, and the second dielectric layer includes a flexible material. The active layer is configured to determine a touch position of the touch display panel according to a capacitance variation between the first sensing electrodes and the second sensing electrodes; in a first interval, determine a touch pressure at the touch position according to a capacitance variation between the second sensing electrodes and the third sensing electrodes; and in a second interval, provide a common voltage to the third sensing electrodes. The first interval and the second interval do not overlap each other in time sequence, and the common voltage has a constant voltage level provided for the touch display panel to execute pixel driving.
An embodiment of the present disclosure provides a touch display panel. The touch display panel includes a first electrode layer, a second electrode layer, a first dielectric layer, and an active layer. The first electrode layer includes a plurality of first sensing electrodes, and the second electrode layer includes a plurality of second sensing electrodes. The first dielectric layer is formed between the first electrode layer and the second electrode layer and includes a flexible material. The second electrode layer is formed over the active layer. The active layer is configured to in a first interval, determine a touch position of the touch display panel according to a capacitance variation between the first sensing electrodes and the second sensing electrodes; in a second interval, determine a touch pressure at the touch position at least by means of the second sensing electrodes; and in a third interval, provide a common voltage to the second sensing electrodes. The first interval, the second interval, and the third interval do not overlap each other in time sequence, and the common voltage has a constant voltage level provided for the touch display panel to execute pixel driving.
An embodiment of the present disclosure provides a sensing and driving method for driving a touch display panel. The touch display panel includes a first electrode layer, a second electrode layer, a third electrode layer, a first dielectric layer, and a second dielectric layer. The first electrode layer includes a plurality of first sensing electrodes, the second electrode layer includes a plurality of second sensing electrodes, the third electrode layer includes a plurality of third sensing electrodes, the first dielectric layer is disposed between the first electrode layer and the second electrode layer, and the second dielectric layer includes a flexible material. The sensing and driving method includes: providing a first driving signal to the second sensing electrodes for the touch display panel to detect a touch position; receiving a first sensing signal from the first sensing electrodes to detect a touch position of the touch display panel, where a voltage level of the first sensing signal is related to a capacitance variation between the first sensing electrodes and the second sensing electrodes; in a first interval, receiving a second sensing signal, so as to determine the touch pressure at the touch position; and in a second interval, providing a common voltage to the third sensing electrodes. The first interval and the second interval do not overlap each other in time sequence, and the common voltage has a constant voltage level provided for the touch display panel to execute pixel driving.
An embodiment of the present disclosure provides a sensing and driving method for driving a touch display panel. The touch display panel includes a first electrode layer, a second electrode layer, and a first dielectric layer. The first electrode layer includes a plurality of first sensing electrodes, and the second electrode layer includes a plurality of second sensing electrodes. The first dielectric layer is formed between the first electrode layer and the second electrode layer and includes a flexible material. The sensing and driving method includes: in a first interval, providing a first driving signal to the second sensing electrodes, and receiving a first sensing signal from the first electrode layer, so as to detect a touch position of the touch display panel, where a voltage level of the first sensing signal is related to a capacitance variation between the first sensing electrodes and the second sensing electrodes; in a second interval, receiving a second sensing signal from the second sensing electrodes, so as to determine a touch pressure at the touch position; and in a third interval, providing a common voltage to the second sensing electrodes. The first interval, the second interval, and the third interval do not overlap each other in time sequence, and the common voltage has a constant voltage level provided for the touch display panel to execute pixel driving.
An embodiment of the present disclosure provides a sensing and driving method for driving the touch display panel. The sensing and driving method includes: providing a first driving signal to the second sensing electrodes, and receiving a first sensing signal from the first sensing electrodes, so as to detect a touch intensity of a touch event of the touch display panel according to a position detection frequency; judging whether the touch intensity of the touch event is greater than a first touch intensity; when the touch intensity of the touch event is greater than the first touch intensity, detecting the touch pressure according to a pressure detection frequency, and detecting the touch event according to the position detection frequency, where the pressure detection frequency is less than the position detection frequency; judging whether the touch pressure is greater than a preset pressure; and when the touch pressure is greater than the preset pressure, adjusting the position detection frequency or the pressure detection frequency to make the pressure detection frequency greater than the position detection frequency.
In each embodiment of the present disclosure, a time-multiplexing manner is used, in different intervals, a plurality of sensing electrodes of one of the electrode layers as electrodes for detecting a magnitude of a touch control force borne at a touch position and as common electrodes for providing a common voltage in a time-multiplexing manner. Therefore, one and the same electrode layer may have double functions, so that the overall thickness of a touch display panel can be effectively reduced, which is beneficial to thinning the touch display panel. In addition, because one and the same electrode layer may have the foregoing double functions, the touch display panel can be provided with a function of detecting a magnitude of an external force without using an external pressure sensor, which can relatively reduce adhering procedures.
Generally, a touch control-type LCD panel may include an upper substrate, a color filter, a liquid crystal layer, an active layer, and a lower substrate in sequence from the top to the bottom, and a touch display panel disclosed by the present disclosure integrates some or all electrode layers for detecting a touch position and detecting a touch pressure in the touch display panel, so as to reduce the thickness of the touch display panel and integrate touch control display functions. A touch display panel of each embodiment of the present disclosure may be a touch control-type LCD panel. In addition, the active layer is a driving component layer of a display area of the touch display panel and may include a metal layer such as a data line or a scan line. Specific implementation manners of a touch display panel of the present disclosure and a sensing and driving method thereof are described in detail below.
Referring to
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A sensing and driving manner of the touch display panel 100 is described in the following. Refer to
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Referring to
Detailed acting manners of the touch display panels 100, 300, 400, and 500 including the three electrode layers 120, 140, and 160 are described in the following. Referring to
Step S710: An electrode layer 140 receives a driving signal TX from a control unit (not shown), that is, the control unit provides the driving signal TX to the electrode layer 140, where the control unit may be an integrated circuit (IC) or a driving circuit to receive a sensing signal or provide a driving signal to a touch display panel, and may, for example, be a touch control driving circuit, a display driving circuit, a data driving circuit, a sequence control unit, or the like, and the present disclosure is not limited thereto.
Step S720: An electrode layer 120 outputs a sensing signal RX-TP to the control unit (that is, the control unit receives the sensing signal RX-TP from the electrode layer 120), so as to detect a touch position.
Step S720: In a interval A, an electrode layer 160 outputs a sensing signal RX-F to the control unit (that is, the control unit receives the sensing signal RX-F from the electrode layer 160), so as to detect a magnitude of a touch pressure at the touch position.
Step S740: In a interval B, the electrode layer 160 receives a common voltage VCOM provided by the control unit. The interval A and the interval B do not overlap each other in time sequence, and the common voltage VCOM has a constant voltage level provided for the touch display panel to execute pixel driving.
In this embodiment, steps S710 to S740 may be executed once in each frame period T of the touch display panels 100, 300, 400, and 500, that is, the touch display panels 100, 300, 400, and 500 periodically execute steps S710 to S740. Each frame period T includes a interval A and a interval B, the interval A and the interval B do not overlap each other in time sequence, and the frame period may be a time for the touch display panel to completely display a screen, which is approximately a time for scanning all gate lines. The driving signal TX is a driving signal when the touch display panel 100, 300, 400, or 500 detects a touch position and detects a touch pressure, and because the driving signal TX is transmitted to the electrode layer 140, the electrode layer 120 and the electrode layer 160 would respectively output sensing signals RX-TP and RX-F correspondingly. The voltage level of the sensing signal RX-TP is related to a variation of the capacitance variation C1, and the voltage level of the sensing signal RX-F is related to a variation of the capacitance variation C2. The touch display panel 100, 300, 400, or 500 may judge a change of the capacitance variation C1 according to the sensing signal RX-TP, and further judges whether a touch event occurs in the touch display panel 100, 300, 400, or 500 according to the change of the capacitance variation C1, thus determines a touch position of the touch event, and may output coordinates of the touch position. In this embodiment, when detecting a touch position, the touch display panel 100, 300, 400, or 500 may detect a change of the capacitance variation C1 between the electrode layer 120 and the electrode layer 140 in a mutual-capacitance sensing manner, so as to judge a touched position of the touch display panel 100, 300, 400, or 500. The action that the touch display panel 100, 300, 400, or 500 detects touch position may be executed in both of the intervals A and B, and may also be executed in only one of the intervals A and B. In addition, the touch display panel 100, 300, 400, or 500 may judge a change of the capacitance variation C2 according to the sensing signal RX-F, and further judges a magnitude of a touch pressure borne by the touch display panel 100, 300, 400, or 500 at the touch position according to the change of the capacitance variation C2. In the interval A, the sensing signal RX-F may be output from the electrode layer 160 to the control unit, so as to detect, in a mutual-capacitance sensing manner, a variation of the capacitance variation C2 generated because the dielectric layer 150 is deformed, and further, detect a touch pressure at the touch position according to the variation of the capacitance variation C2; and in the interval B, the common voltage VCOM is provided to the electrode layer 160 to execute a display function. Therefore, by means of the sensing and driving method 700, on the one hand, the touch display panel 100, 300, 400, or 500 may detect a touch position and execute a display function at the same time, so that touch control efficiency thereof is improved; and on the other hand, the touch display panel 100, 300, 400, or 500 may detect a touch position and detect a touch pressure at the same time, so that touch control efficiency thereof is improved. However, detecting a touch position, executing a display function, and detecting a touch pressure may be executed separately at different times, the present disclosure is not limited thereto, and any one applicable to a driving method of the touch display panel of the present disclosure shall fall within a scope to be protected by the present disclosure. In addition, because one and the same electrode layer may have double functions (for example, the electrode layer 160 may serve as a common electrode layer and an electrode layer for detecting a touch pressure), the touch display panel can be provided with a function of detecting a magnitude of an external force without using an external pressure sensor, which can relatively reduce adhering procedures of a touch display panel.
Referring to
Step S910: In a sub-interval A1 of a interval A, an electrode layer 160 receives a driving signal TX-F from a control unit, that is, the control unit provides the driving signal TX-F to the electrode layer 160.
Step S920: In a sub-interval A2 of the interval A, the electrode layer 160 outputs a sensing signal RX-F to the control unit, so as to detect a touch pressure at a touch position.
Step S930: In the sub-interval A1 of the interval A, an electrode layer 140 receives a driving signal TX-F from the control unit, that is, the control unit provides the driving signal TX-F to the electrode layer 140.
Step S920: In the sub-interval A2 of the interval A, the electrode layer 140 outputs a sensing signal RX-F to the control unit, so as to detect a magnitude of the touch pressure at the touch position.
Step S930: In a interval B, the electrode layer 140 receives a driving signal TX-TP from the control unit, that is, the control unit provides the driving signal TX-TP to the electrode layer 140.
Step S960: In the interval B, the electrode layer 120 outputs a sensing signal RX-TP to the control unit, so as to detect the touch position.
Step S940: In the interval B, the electrode layer 160 receives a common voltage VCOM provided by the control unit. The the sub-interval A1, sub-interval A2, and interval B do not overlap each other in time sequence, and the common voltage VCOM has a constant voltage level provided for the touch display panel to execute pixel driving.
In this embodiment, steps S910 to S970 may be executed once in each frame period T of the touch display panels 100, 300, 400, and 500, that is, the touch display panels 100, 300, 400, and 500 periodically execute steps S910 to S970. Each frame period T includes a interval A and a interval B, the interval A further includes a sub-intervals A1 and A2, and the sub-interval A1, sub-interval A2, and interval B do not overlap each other in time sequence. In the interval A, the touch display panels 100, 300, 400, and 500 detect a touch pressure at a touch position; and in the interval B, the touch display panels 100, 300, 400, and 500 detect the touch position and provide a common voltage VCOM to execute a pixel driving operation. In this embodiment, the function of steps S910 to S920 is the same as that of steps S930 and S940, both for detecting a touch pressure. However, in others embodiments of the present disclosure, steps S910 to S920 can be omitted or steps S930 and S940 can be omitted, and the rest steps are reserved. The driving signal TX-F is a driving signal when the touch display panel 100, 300, 400, or 500 detects a touch pressure, and when the touch display panel 100, 300, 400, or 500 detects a touch pressure detect, a change of the capacitance variation C2 of the dielectric layer 150 may be detected in a self-capacitance sensing manner. When the touch display panel 100, 300, 400, or 500 detects a touch pressure in a self-capacitance sensing manner, the control unit transmits the driving signal TX-F to the electrode layer 140 or 160. When the driving signal TX-F is transmitted to the electrode layer 140 or 160 in the sub-interval A1, the electrode layer 140 or 160 correspondingly outputs a sensing signal RX-F, and the touch display panel 100, 300, 400, or 500 may judge a change of the capacitance variation C2 according to the sensing signal RX-F, and further judges a magnitude of a touch pressure borne by the touch display panel 100, 300, 400, or 500 at the touch position according to the change of the capacitance variation C2. In addition, the driving signal TX-TP is a driving signal when the touch display panel 100, 300, 400, or 500 detects a touch position, and when the driving signal TX-TP is transmitted to the electrode layer 140, the electrode layer 120 outputs a sensing signal RX-TP correspondingly. A voltage level of the sensing signal RX-TP is related to a variation of the capacitance variation C1, the touch display panel 100, 300, 400, or 500 may judge a change of the capacitance variation C1 according to the sensing signal RX-TP, and further judges whether a touch event occurs in the touch display panel 100, 300, 400, or 500 according to the change of the capacitance variation C1, thus determines a touch position of the touch event, and may output coordinates of the touch position. Therefore, by means of the sensing and driving method 900, the touch display panel 100, 300, 400, or 500 may detect a touch position and execute a display function at the same time, so that touch control efficiency thereof is improved. In addition, because one and the same electrode layer may have double functions, the touch display panel can be provided with a function of detecting a magnitude of an external force without using an external pressure sensor, which can relatively reduce adhering procedures.
Referring to
Referring to
Referring to
Step S1410: An electrode layer 140 receives a driving signal TX-TP from a control unit, that is, the control unit provides the driving signal TX-TP to the electrode layer 140.
Step S1420: An electrode layer 120 outputs a sensing signal RX-TP to the control unit, so as to detect a touch position.
Step S1430: In a interval A, the control unit provides a reference voltage VREF to an active layer 170, where the reference voltage VREF has a constant voltage level.
Step S1440: In a sub-interval A1 of the interval A, an electrode layer 160 receives a driving signal TX-F from the control unit, that is, the control unit provides the driving signal TX-F to the electrode layer 160.
Step S1450: In a sub-interval A2 of the interval A, the electrode layer 160 outputs a sensing signal RX-F to the control unit, so as to detect a magnitude of a touch pressure at the touch position.
Step S1460: In a interval B, the electrode layer 160 receives a common voltage VCOM provided by the control unit. The the sub-interval A1,sub-interval A2, and interval B do not overlap each other in time sequence, and the common voltage VCOM has a constant voltage level provided for the touch display panel to execute pixel driving.
In this embodiment, steps S1410 to S1460 may be executed once in each frame period T of the touch display panels 100, 300, 400, 500, 1000, and 1100 that is, the touch display panels 100, 300, 400, 500, 1000, and 1100 periodically execute steps S1410 to S1460. Each frame period T includes a interval A and a interval B, the interval A further includes a sub-intervals A1 and A2, and the sub-interval A1,sub-interval A2, and interval B do not overlap each other in time sequence. The driving signal TX-TP is a driving signal when the touch display panel 100, 300, 400, 500, 1000, or 1100 detects a touch position, and when the driving signal TX-TP is transmitted to the electrode layer 140, the electrode layer 120 outputs a sensing signal RX-TP correspondingly. A voltage level of the sensing signal RX-TP is related to a variation of the capacitance variation C1, the touch display panel 100, 300, 400, or 500 may judge a change of the capacitance variation C1 according to the sensing signal RX-TP, and further judges whether a touch event occurs in the touch display panel 100, 300, 400, 500, 1000, or 1100 according to the change of the capacitance variation C1, thus determines a touch position of the touch event, and may output coordinates of the touch position. In addition, the driving signal TX-F is a driving signal when the touch display panel 100, 300, 400, 500, 1000, or 1100 detects a touch pressure, and when the touch display panel 100, 300, 400, 500, 1000, or 1100 detects a touch pressure detect, a change of the capacitance variation C2 of the dielectric layer 150 may be detected in a self-capacitance sensing manner. When the touch display panel 100, 300, 400, 500, 1000, or 1100 detects a touch pressure in a self-capacitance sensing manner, the control unit may provide a reference voltage having a constant level to a data line, a scan line, or the like of a metal layer (not shown) in the active layer 170 and the control unit also transmits the driving signal TX-F to the electrode layer 160. When the driving signal TX-F is transmitted to the electrode layer 160 in the sub-interval A1, the electrode layer 140 correspondingly outputs a sensing signal RX-F, and the touch display panel 100, 300, 400, 500, 1000, or 1100 may judge a change of the capacitance variation C2 according to the sensing signal RX-F, and further judges a magnitude of a touch pressure borne by the touch display panel 100, 300, 400, 500, 1000, or 1100 at the touch position according to the change of the capacitance variation C2.
By means of a designing manner of three electrode layers, the touch display panels 100, 300, 400, 500, 1000, and 1100 integrate a display function, a touch position detecting function, and a touch pressure detecting function. Time-multiplexing of the electrode layer 160 is used to provide the common voltage VCOM and receive the sensing signal RX-F, so that the electrode layer 160 can be shared for display driving and touch pressure detecting, thereby producing an effect of thinning a touch control display device. In addition, the electrode layer 140 is disposed between the electrode layer 120 and the electrode layer 160, so that the electrode layer 140 may be used to input driving signals for detecting a touch position and detecting a touch pressure, so as to produce an effect of thinning the touch display panels 100, 300, 400, 500, 1000, and 1100. The inventive concept disclosed in the present disclosure is not only limited to an LCD, and as long as a display panel includes a common electrode layer capable of providing a signal and a common voltage VCOM, the display panel may execute display driving and touch pressure detecting functions in a time-multiplexing manner.
Referring to
A sensing and driving manner of the touch display panel 1500 is described in the following. When a user touches a touch control surface 112 of the touch display panel 1500 with a finger or a stylus, so as to cause the capacitance variation C1 to change between the electrical field between the electrode layer 140 and the electrode layer 160 changes, the touch display panel 1500 can determine a touch event and a touch position according to the change of the capacitance variation C1. Moreover, in a interval other than a interval of detecting a touch position, the touch display panel 1500 can judge a touch pressure at the touch position according to the change of the capacitance variation C1. It is worth noting that the electrode layer 160 may serve as an electrode layer during touch pressure detection, touch position detection, and display driving in a time-multiplexing manner, so that the thickness of the touch display panel 1500 can be reduced.
Referring to
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Detailed acting manners of the touch display panels 1700 and 1800 including two electrode layers in the sixth embodiment and seventh embodiment are described in the following. Referring to
Step S2010: In a interval A, an electrode layer 160 receives a driving signal TX-TP from a control unit, that is, the control unit provides the driving signal TX-TP to the electrode layer 160.
Step S2020: In the interval A, an electrode layer 140 outputs a sensing signal RX-TP to the control unit (that is, receiving the sensing signal RX-TP from the electrode layer 140), so as to detect a touch position.
Step S2030: In a interval B, the electrode layer 140 receives a driving signal TX-F from the control unit, that is, the control unit provides the driving signal TX-F to the electrode layer 140.
Step S2040: In the interval B, the electrode layer 160 outputs a sensing signal RX-F to the control unit (that is, the control unit receives the sensing signal RX-F from the electrode layer 160), so as to detect a magnitude of a touch pressure.
Step S2050: In a interval C, the control unit provides a common voltage VCOM to the electrode layer 160. The intervals A, B, and C do not overlap each other in time sequence, and the common voltage VCOM has a constant voltage level provided for the touch display panel to execute pixel driving.
In this embodiment, steps S2010 to S2050 may be executed once in each frame period T of the touch display panels 1700 and 1800, that is, the touch display panels 1700 and 1800 periodically execute steps S2010 to S2050. In the interval A, the driving signal TX-TP is transmitted to the electrode layer 160, and the sensing signal RX-TP is received by using the electrode layer 140. Moreover, a change of a capacitance variation C1 between the electrode layer 140 and the electrode layer 160 is detected in a mutual-capacitance sensing manner to judge whether a touch event occurs in the touch display panel 1700 or 1800, so as to determine a touch position and output coordinates of the touch position. In the interval B, the driving signal TX-F is transmitted to the electrode layer 140, and the sensing signal RX-F is received by using the electrode layer 160. Moreover, a gap change (namely, the change of capacitance variation C1) of the dielectric layer 150 is detected in a mutual-capacitance sensing manner to detect a magnitude of a touch pressure of the touch display panel 1700 or 1800. In the interval C, the common voltage VCOM is provided to the electrode layer 160 to execute a display function of the touch display panel 1700 or 1800.
Referring to
A detailed acting manner of the touch display panel 2100 including two electrode layers in the eighth embodiment is described in the following. Referring to a control unit of
Step S2410: In a interval A, an electrode layer 160 receives a driving signal TX-TP from a control unit, that is, the control unit provides the driving signal TX-TP to the electrode layer 160.
Step S2420: In the interval A, an electrode layer 140 outputs a sensing signal RX-TP to the control unit, so as to detect a touch position.
Step S2030: In a interval B, the electrode layer 160 receives a driving signal TX-F from the control unit, and the electrode layer 160 outputs a sensing signal RX-F to the control unit, so as to detect a magnitude of a touch pressure in a self-capacitance sensing manner.
Step S2440: In the interval B, an active layer 170 is provided with a reference voltage VREF, where the reference voltage VREF has a constant voltage level.
Step S2450: In a interval C, the electrode layer 160 receives a common voltage VCOM provided by the control unit. The intervals A, B, and C do not overlap each other in time sequence, and the common voltage VCOM has a constant voltage level provided for the touch display panel to execute pixel driving.
In this embodiment, steps S2410 to S2450 may be executed once in each frame period T of the touch display panel 2100, that is, the touch display panel 2100 periodically execute steps S2410 to S2450. In the interval A, the driving signal TX-TP is transmitted to the electrode layer 160 to drive sensing electrodes 230 of the electrode layer 160 row by row along an X direction, and the sensing signal RX-TP is received by sensing electrodes 240 of the electrode 140 row by row along the X direction by using the electrode layer 140. In this way, the touch display panel 2100 detects a change of a capacitance variation C1 between the electrode layer 140 and the electrode layer 160 in a mutual-capacitance sensing manner to judge whether a touch event occurs in the touch display panel including two electrode layers, so as to determine a touch position and output coordinates of the touch position. In the interval B, the active layer 170 maintains a reference level, the driving signal TX-F is transmitted to the sensing electrodes 240 of the electrode 140, and the sensing signal RX-F is received in sequence by using the sensing electrodes 240 of the corresponding electrode 140, so as to detect a capacitance change between the electrode layer 140 and the active layer 170 caused by a gap change of the dielectric layer 190 in a mutual-capacitance sensing manner and to detect a magnitude of the touch pressure of the touch display panel 2100. In the interval C, the common voltage VCOM is provided to the electrode layer 160 to execute a display function of the touch display panel 2100. The dielectric layer 190 may include a flexible material, so that the dielectric layer 190 is deformed because the touch display panel 2100 is subject to an external force.
In an implementation of the present disclosure, a control unit of a touch display panel executes a touch position detecting action and a touch pressure detecting action separately once in each frame period T. Referring to
In addition, in another implementation of the present disclosure, the touch position detecting action to be executed in each frame period T is executed by interval, and the touch pressure detecting action to be executed in each frame period T is executed at one time. Referring to
In addition, in another implementation of the present disclosure, the touch position detecting action to be executed and the touch pressure detecting action to be executed in each frame period T are both executed by interval. Referring to
Referring to
Referring to
Step S3010: Provide a driving signal TX-TP to a sensing electrode 220 and receive a sensing signal RX-TP from a sensing electrode 210, so as to detect a touch intensity of a touch event of a touch display panel according to a position detection frequency. The position detection frequency is a reciprocal of a time for executing touch position detection, for example, detection of a touch position is executed N times per second (that is, N/s), where N is a positive integer. In addition, a basis for judging a touch intensity of a touch event may be a threshold (which may be a voltage, a magnitude of a current, or the like) of the sensing signal RX-TP, and when the sensing signal RX-TP is greater than a first signal threshold, it could be determined that the touch intensity of the touch event is greater than a first touch intensity.
Step S3020: Judge whether the touch intensity of the touch event is greater than a first touch intensity. If the touch intensity of the touch event is greater than the first touch intensity, step S3030 is executed; and otherwise, step S3010 is executed again.
Step S3030: Detect a touch pressure according to a pressure detection frequency and detect the touch event according to the position detection frequency. The pressure detection frequency is a reciprocal of a time for executing touch pressure detection, for example, detection of a touch pressure is executed Q times per second (that is, Q/s), where Q is a positive integer. In addition, in step S3030, the pressure detection frequency is less than the position detection frequency.
Step S3040: Judge whether the touch pressure is greater than a preset pressure. A basis for determining whether the touch pressure is greater than the preset pressure may be a signal threshold of the sensing signal RX-F, and when the signal of the sensing signal RX-F is greater than a specific signal threshold, it could be determined that the touch pressure is greater than the preset pressure.
Step S3050: Adjust the position detection frequency or pressure detection frequency, so as to make the pressure detection frequency greater than the position detection frequency; and afterward, S3040 is executed again.
Actions of the sensing and driving method 3000 is described in detail below, where a touch control display device 100 is used as an example. In step S3010, a control unit (not shown) of a touch display panel 100 detects a touch event according to a position detection frequency without detecting a touch pressure, that is, the control unit only provides a driving signal TX-TP to an electrode layer 140 and receives a sensing signal RX-TP from an electrode layer 120; in step S3020, the control unit judges whether a touch intensity of the touch event is greater than a first touch intensity; in step S3030, when it is judged that the touch intensity of the touch event is greater than the first touch intensity, that is, when the touch display panel 100 has a touch event occurred and effectively outputs a touch position, touch pressure detection is executed according to a pressure detection frequency and the touch event is detected according to a continuous position detection frequency, where the pressure detection frequency is less than the position detection frequency, that is, a touch pressure function is executed at a frequency lower than the position detection frequency; in step S3040, the control unit receives a sensing signal RX-F from the touch display panel 100 to judge whether a touch pressure is greater than a preset pressure; and in step S3050, when the sensing signal RX-F is greater than the preset pressure, the position detection frequency or pressure detection frequency is adjusted to make the pressure detection frequency greater than the position detection frequency, that is, the touch pressure function is executed at a frequency higher than the position detection frequency.
The sensing and driving method 3000 may also include: (1) the control unit judges whether the sensing signal RX-TP is greater than a second touch intensity, where the second touch intensity may be greater than the first touch intensity, that is, a pressure applied by a finger or a stylus to the touch display panel 100 is greater than the second touch intensity; and (2) when the touch event is greater than the second touch intensity, a touch pressure of an active area is detected only in an active area of the touch event. In this way, after the touch display panel 100 detects the active area of the touch event, it could be determined that the touch display panel 100 is under touch control of an external force only in the active area, so that touch pressure detection is executed only in the active area of the touch event of the touch display panel 10; and it is unnecessary to additionally detect a touch pressure in an inactive area, which reduces energy consumption.
In conclusion, in each embodiment of the present disclosure, a time-multiplexing control manner is used to use, in different intervals, a plurality of sensing electrodes of one of the electrode layers as electrodes for detecting a magnitude of a touch control force borne at a touch position and as common electrodes for providing a common voltage in a time-multiplexing manner. Therefore, one and the same electrode layer may have double functions, so that the overall thickness of a touch display panel can be effectively reduced, which is beneficial to thinning the touch display panel. In addition, because one and the same electrode layer may have double functions, the touch display panel can be provided with a function of detecting a magnitude of an external force without using an external pressure sensor, which can relatively reduce adhering procedures.
The foregoing are merely preferred embodiments of the present disclosure, and equivalent alternation and modification made according to the claims of the present disclosure are covered by the present disclosure.
Number | Date | Country | Kind |
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105133516 | Oct 2016 | TW | national |