WO2016101308A1 - 具有触控功能的显示面板、显示装置及控制方法 - Google Patents
具有触控功能的显示面板、显示装置及控制方法 Download PDFInfo
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- WO2016101308A1 WO2016101308A1 PCT/CN2014/095562 CN2014095562W WO2016101308A1 WO 2016101308 A1 WO2016101308 A1 WO 2016101308A1 CN 2014095562 W CN2014095562 W CN 2014095562W WO 2016101308 A1 WO2016101308 A1 WO 2016101308A1
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Definitions
- the present invention relates to the field of touch display, and in particular to a display panel with a touch function, a display device, and a control method.
- the touch screen also known as the touch panel, is an inductive liquid crystal display device that can receive input signals such as finger touches.
- the tactile feedback system on the screen can be scanned according to a preset driving mode. Determine the position of the touched action, further determine the button of the clicked graphic, and determine the type of the instruction.
- the touch screen is more convenient than the prior art mechanical button panel, and thus has been widely used.
- the projected capacitive touch screen is one of the commonly used touch screens, and the touch technology that utilizes the capacitance change generated when the finger is close to the capacitive touch panel includes self-capacitive touch technology and mutual capacitive touch technology. In-line touch technology and in-line touch technology are also included, while in-cell touch technology includes In-cell touch technology and On-cell touch technology.
- In-cell self-capacitive touch technology a plurality of touch electrodes are formed on the surface of the glass with a transparent conductive material, and the touch electrodes are respectively connected to the controller through wires. The touch electrodes respectively form a capacitance with the ground. This is the so-called self-capacitance.
- the capacitance of the finger will increase to the screen capacitance, so that the capacitance of the screen body increases, according to the change of the capacitance before and after the touch. , you can determine the location of the touch.
- In-cell technology has gradually become the mainstream technology of small and medium-sized touch screens.
- the same controller IC uses the principle of time division multiplexing to display signals and touch screens respectively.
- the signal is processed so that the thickness and weight of the touch display panel are all reduced to some extent.
- FIG. 1 is an equivalent circuit diagram of a working mode of a touch display panel of the prior art.
- 101 is a data line
- 102 is a scan line
- a gate of the first thin film transistor T1 is connected to a scan line
- a source is connected to a data line
- a drain is connected to one end of the parallel liquid crystal capacitor C LC and the storage capacitor C st1
- the liquid crystal capacitor C LC The other end of the storage capacitor C st1 is connected to the drain of the second thin film transistor T 2
- the source of T 2 is connected to the signal control line TPE
- the gate of T 2 is connected to the common electrode
- the TPE controls T 2 to be turned on the touch The display panel is in the display stage.
- the liquid crystal capacitor C LC and the storage capacitor C st1 are charged and discharged line by line through the data line 101 and the scan 102 to control the deflection of the liquid crystal molecules to realize display of different screens.
- the TPE control T 2 is off, it is a touch phase for detecting a touch signal.
- the working principle of the In-cell technology lies in the time division multiplexing of the touch phase and the display phase, that is, the time of each frame is divided into two time periods for respectively displaying and processing the signal and the touch signal.
- the touch display panel generally needs to have a high report rate to achieve an ideal touch effect, but the time division multiplexing method inevitably imposes certain restrictions on the time zone of the touch signal processing stage, that is, Limits the reporting rate of the touch signal.
- the time zone for controlling the touch signal is generally increased by reducing the frame frequency, but the decrease of the frame frequency means an increase of the display time interval.
- the T 2 is at The off-state, but the leakage current inevitably occurs in the circuit, which causes the voltage across the liquid crystal capacitor to decrease, and even the normal voltage required for liquid crystal display, which seriously affects the display effect of the touch liquid crystal display panel.
- the technical problem to be solved by the present invention is to provide a display panel, a display device and a control method with a touch function, which can increase the report rate of the touch signal under the premise of ensuring normal display of the screen.
- the present invention adopts a technical solution to provide a display panel including a first substrate, a second substrate, and a liquid crystal layer disposed between the first substrate and the second substrate.
- the first substrate includes a plurality of pixel units formed by insulatingly intersecting a plurality of scan lines and a plurality of data lines, each of the pixel units including a liquid crystal capacitor, a first switch, a second switch, and a first storage capacitor.
- the control end of the first switch is connected to the first controller through a first control line, the input end is connected to the liquid crystal capacitor, and the output end is connected to the first storage capacitor;
- the control end of the second switch is connected to the signal controller through a signal control line, the input end is connected to the common electrode, and the output end is respectively connected to the liquid crystal capacitor and the first storage capacitor end;
- the signal controller controls the time when the second switch is turned off, and the first controller controls the first switch to be turned on. Increasing the amount of power of the first storage capacitor to maintain the voltage of the liquid crystal capacitor.
- Each of the pixel regions further includes a third switch and a second storage capacitor, wherein the scan line of the control end of the third switch is connected, the input end is connected to the data line, and the output end is respectively connected to the liquid crystal capacitor The second storage capacitor and the input end of the first switch are connected, and the second storage capacitor is further connected to the output end of the second switch.
- the first switch may also be located between the first storage capacitor and the second substrate.
- the signal controller reduces the time for the first switch to be turned off to decrease the power of the first storage capacitor when the rate of change of the image displayed by the display panel is greater than a preset rate threshold.
- the first switch, the second switch, and the third switch are thin film transistors, respectively a first thin film transistor, a second thin film transistor, and a third thin film transistor, and the control terminal, the input end, and the output of the first switch
- the terminals respectively correspond to the gate, the source and the drain of the first thin film transistor, and the control end, the input end and the output end of the second switch respectively correspond to the gate and the source of the second thin film transistor
- the drain, the control end, the first end and the second end of the third switch respectively correspond to a gate, a source and a drain of the third thin film transistor.
- a display device with a touch function including a display panel, the display panel including a first substrate, a second substrate, and a set a liquid crystal layer between the first substrate and the second substrate,
- the first substrate includes a plurality of pixel units formed by insulatingly intersecting a plurality of scan lines and a plurality of data lines, each of the pixel units including a liquid crystal capacitor, a first switch, a second switch, and a first storage capacitor.
- the control end of the first switch is connected to the first controller through a first control line, the input end is connected to the liquid crystal capacitor, and the output end is connected to the first storage capacitor;
- the control end of the second switch is connected to the signal controller through a signal control line, the input end is connected to the common electrode, and the output end is respectively connected to the liquid crystal capacitor and the first storage capacitor end;
- the signal controller controls the time when the second switch is turned off, and the first controller controls the first switch Turning on to increase the amount of power of the first storage capacitor, maintaining the voltage of the liquid crystal capacitor.
- Each of the pixel units further includes a third switch and a second storage capacitor, wherein the scan line of the control end of the third switch is connected, the input end is connected to the data line, and the output end is respectively connected to the liquid crystal capacitor The second storage capacitor and the input end of the first switch are connected, and the second storage capacitor is further connected to the output end of the second switch.
- the signal controller reduces the time when the first switch is turned off when the rate of change of the image displayed by the display panel is greater than a preset rate threshold, and reduces the amount of power of the first storage capacitor.
- the first switch may also be located between the first storage capacitor and the second substrate.
- the first switch, the second switch, and the third switch are thin film transistors, respectively a first thin film transistor, a second thin film transistor, and a third thin film transistor, and the control terminal, the input end, and the output of the first switch
- the terminals respectively correspond to a gate, a source and a drain of the first thin film transistor
- the The control terminal, the input terminal and the output terminal of the two switches respectively correspond to the gate, the source and the drain of the second thin film transistor
- the control end, the first end and the second end of the third switch respectively correspond to The gate, source and drain of the third thin film transistor.
- the display device with the touch display function acquires the rate of change of the currently displayed image
- the control switch When the rate of change of the pattern is lower than the preset rate threshold, the control switch is turned on to charge the first storage capacitor to increase the capacity of the first storage capacitor and maintain the voltage of the liquid crystal capacitor;
- the first storage capacitor is connected in parallel with the liquid crystal capacitor and the second storage capacitor.
- the control switch when the rate of change of the pattern is lower than the preset rate threshold, the control switch is turned on to charge and discharge the first storage capacitor to increase the capacity of the first storage capacitor and maintain the liquid crystal capacitor
- the steps of the voltage also include:
- the frame frequency of the display signal is lowered to increase the control time of the touch signal.
- the present invention increases the first switch and the first storage capacitor on the basis of the existing touch display panel, and timely replenishes the liquid crystal capacitor due to leakage current loss.
- the voltage of the terminal enables the display panel to display a normal picture when the display picture rate is low and the display signal frame frequency is low, and when the display signal frequency is low, the display panel is also processed to handle the touch signal. Time, which increases the reporting rate of the touch signal and reduces the loss of the touch panel.
- FIG. 1 is a schematic diagram showing an equivalent circuit structure of a display device of the prior art
- FIG. 2 is a schematic structural view of an embodiment of a display panel having a touch function
- FIG. 3 is a schematic diagram showing an equivalent circuit structure of an embodiment of a first substrate of the display panel of FIG. 2;
- FIG. 4 is a schematic structural view of an embodiment of a control method of the present invention.
- Fig. 5 is a schematic structural view of another embodiment of the control method of the present invention.
- FIG. 2 is a schematic structural diagram of an embodiment of a display panel with a touch function according to the present invention.
- the display panel of the present embodiment includes a first substrate 201, a second substrate 202, and a liquid crystal layer 203 disposed between the first substrate and the second substrate.
- the touch panel has a touch electrode and a pixel electrode, and the touch electrode generally includes a horizontally distributed touch electrode RX and a vertically distributed touch electrode. TX, wherein the horizontally-disposed touch electrodes RX are located outside the second substrate 202 (not shown).
- the touch electrodes TX in the vertical direction in this embodiment are The common electrodes Array Vcom of the first substrate are combined and located on the inner side of the first substrate and arranged in a matrix on the display panel.
- the display panel realizes the control of the touch signal and the display signal respectively by means of time division multiplexing, that is, the time of each frame is respectively used for transmitting and processing the display signal and the touch signal. Two time periods.
- the display panel of the embodiment further includes The first storage capacitor of the liquid crystal capacitor.
- FIG. 3 is a schematic diagram showing the equivalent circuit structure of an embodiment of the first substrate of the display panel of FIG.
- the first substrate of the present embodiment includes a plurality of pixel units 300 formed by a plurality of scanning lines 302 and a plurality of data lines 301, and each of the pixel units 300 includes a liquid crystal capacitor C LC 310 and a first storage capacitor C st1 . 307.
- the second storage capacitor C st2 311, the first switch T1 306, and the second switch T2 308 further include a third switch T3 309.
- the first switch T1 306, the second switch T2 308, and the third switch T3 309 are thin film transistors, respectively a first thin film transistor, a second thin film transistor, and a third thin film transistor, and the first switch T1 306 is controlled.
- the terminal, the input end and the output end respectively correspond to the gate, the source and the drain of the first thin film transistor, and the control end, the input end and the output end of the second switch T2 308 respectively correspond to the second film
- the gate, the source and the drain of the transistor, the control terminal, the first terminal and the second terminal of the third switch T3 309 respectively correspond to the gate, the source and the drain of the third thin film transistor.
- first switch T1 306, the second switch T2 308, and the third switch T3 309 may be other types of switches, such as the first switch, the second switch, and the third switch, in other embodiments.
- the emitter, the control end, the first end and the second end of the third switch respectively correspond to a base, a collector and an emitter of a third Darlington or a triode.
- the control end of the first switch T1 306 is connected to the first controller (not shown) through the first control line 303, and the input end is connected to the liquid crystal capacitor C LC 310, and the output end is connected.
- the control terminal of the second switch T2 308 is connected to the signal controller (not shown) through the signal control line 304, and the input terminal is connected to the common electrode Array Vcom 305, and the output is The terminals are respectively connected to the liquid crystal capacitor C LC 310 and the first storage capacitor C st1 307;
- the control end of the third switch T3 309 is connected to the scan line 302 for inputting a scan signal for the pixel unit, and the input end is connected to the data line 301 for the liquid crystal capacitor C LC 310 and the second
- the storage capacitor C st2 311 inputs a data signal, that is, provides an input voltage to the liquid crystal capacitor C LC 310 and the second storage capacitor C st2 311 , and the output end is respectively connected to the liquid crystal capacitor C LC 310 and the second storage capacitor C st2
- the input terminal of the first switch T1 306 is connected, and the second storage capacitor C st2 311 is also connected to the output end of the second switch T2 308.
- the second switch T2 308 realizes switching between the display function and the touch function of the display panel by switching between on and off once in each frame time.
- the second switch T2 308 is turned on, the display is displayed.
- the panel is in the display stage, and the display signal is processed, and the liquid crystal capacitor C LC 310 and the second storage capacitor C st2 311 are charged by the input signal in the circuit diagram 3 to store the necessary power for the display in the touch phase.
- the second switch T2 308 is turned off, the display panel is in the touch phase, and the display signal is processed.
- the touch precision requires relatively extending the control time of the touch signal, which is used in the embodiment.
- the method is that the signal controller reduces the proportion of time occupied by the display signal by reducing the frame frequency of the display signal, and relatively increases the proportion of time occupied by the control time of the touch signal.
- the signal controller determines the rate of change of the graphic displayed by the touch panel before lowering the frame frequency of the display signal. Whether it is lower than a preset rate threshold, for example, when the displayed image does not change within 0.5 seconds, it is determined to be lower than the preset rate threshold. Specifically, the signal controller determines the rate of change of the displayed image by acquiring a time difference between the current picture and the previous picture.
- the signal controller controls the time when the second switch T2 308 is turned off to increase, and increases the control time of the touch signal
- the first controller controls the first switch T1 306 to be turned on by the first control line 303.
- the second switch T2 308 is turned on the first charge storage capacitor C st1 307, a first storage capacitor is increased power C st1 307, the second switch is opened again when T2 308, a first storage capacitor C st1 307
- the second storage capacitor C st2 311 is discharged by discharging the liquid crystal capacitor C LC 310 to maintain the normal voltage of the liquid crystal capacitor C LC 310 for display, that is, the voltage difference of the liquid crystal capacitor C LC 310 of each pixel unit is constant, To ensure the uniformity of the screen of the display panel.
- the signal controller determines that the rate of change of the graphic displayed by the touch panel is greater than a predetermined rate threshold, the time for controlling the first switch to be turned off is reduced, and the amount of power of the first storage capacitor is decreased.
- the capacity of the first storage capacitor C st2 311 is inversely proportional to the frame frequency of the displayed signal, and the smaller the frame frequency of the display signal is, the longer the corresponding display panel processes the touch signal.
- the capacitance of the first storage capacitor C st1 307 is approximately 2 pf to 0.8 pf.
- the liquid crystal capacitor C LC 310 and the first storage capacitor C st1 307 and the second storage capacitor C st2 311 undergo a coupling phenomenon during charge and discharge, a DC offset value is generated, and the liquid crystal capacitor C LC 310
- the operating voltage of the display panel is AC, that is, AC drive, when the positive and negative currents are converted, the presence of a DC offset value may cause the voltage across the liquid crystal capacitor C LC 310 to be insufficient to support the normal display image.
- the DC offset values of the respective pixel units 300 are different, and the voltage difference across the liquid crystal capacitors C LC 310 is different, which eventually causes the entire screen to be displayed unevenly.
- the display panel compensates the voltage of the common electrode Array Vcom 305 end so that the liquid crystal capacitor C LC 310 has a voltage difference before and after the positive and negative polarity conversion of the power source. Constant to maintain the normal display of the picture. Specifically, please refer to the formula.
- the voltage across the liquid crystal capacitor Vpixel Vdata-Vcom, where Vdata is the input voltage of the input end of the liquid crystal capacitor C LC 310, and Vcom is the voltage of the common electrode Array Vcom 305 terminal, and
- Vdata is the input voltage of the input end of the liquid crystal capacitor C LC 310
- Vcom is the voltage of the common electrode Array Vcom 305 terminal
- the compensation voltage ⁇ V of the common electrode Array Vcom terminal voltage Vcom is smaller, and the voltage value of the common electrode Array Vcom is larger, and finally the liquid crystal capacitor C is ensured.
- the voltage difference of LC 310 is constant.
- the position of the first switch T1 306 is not limited to the first substrate.
- the first switch may also be located between the first storage capacitor and the second substrate.
- the first switch may also be located in other layers of the display panel, as long as the first storage capacitor can be charged and discharged by its disconnection and conduction control, which is not limited herein.
- the display panel of the present embodiment increases the first switch and the first storage capacitor on the basis of the existing touch display panel, and timely replenishes the voltage of the liquid crystal capacitor due to the leakage current, so that the display is displayed.
- the panel can display a normal picture, and when the display signal frequency is low, the display time of the display panel is increased correspondingly, thereby increasing the processing time.
- the reporting rate of the touch signal reduces the loss of the touch panel.
- the voltage difference between the liquid crystal capacitor before and after the positive and negative polarity conversion of the power source is constant to maintain the normal display of the screen.
- the present invention further provides a display device having a touch function, and the display device includes the display panel in any of the above embodiments.
- the display device includes the display panel in any of the above embodiments.
- FIG. 4 is a schematic structural diagram of an embodiment of a control method according to the present invention.
- the display device with the touch display function acquires the rate of change of the currently displayed image.
- the display panel realizes the control of the touch signal and the display signal respectively by means of time division multiplexing, that is, the time of each frame is respectively used for transmitting and processing the display signal and the touch signal. Two time periods, one of which is for processing the touch signal and the other for processing the display signal. Since the display panel is in the touch phase, the pixel electrode is no longer theoretically charged. In order to ensure that the voltage difference between the two ends of the pixel electrode is constant, the voltage of the liquid crystal capacitor is maintained, and the liquid crystal capacitor is generally performed through a second storage capacitor. Charging.
- the control of the touch signal by the display panel requires a certain reaction processing time, in order to improve the reporting rate of the touch signal, the touch precision is further mentioned, and the control time of the touch signal needs to be relatively extended.
- the control time of the signal also prolongs the charging time of stopping the liquid crystal capacitor.
- the display device In order not to affect the normal display of the current image, that is, the liquid crystal obviously has enough power to maintain the display during the time of stopping the charging, the display device needs to obtain the current display. The rate of change of the image.
- the display device determines the rate of change of the displayed image by acquiring the time difference between the current picture and the previous picture. For example, if the displayed image does not change within 0.5 seconds, it is determined to be lower than the preset rate threshold.
- the control switch When the rate of change of the graphic is lower than the preset rate threshold, the control switch is turned on to charge the first storage capacitor to increase the capacity of the first storage capacitor and maintain the voltage of the liquid crystal capacitor;
- the first storage capacitor is connected in parallel with the liquid crystal capacitor and the second storage capacitor.
- the control end of the switch is connected to the first controller through the first control line, the input end is connected to the liquid crystal capacitor, the output end is connected to the first storage capacitor, the first storage capacitor and the liquid crystal capacitor and the first Two storage capacitors are connected in parallel.
- the first controller controls the switch to be turned on by the first control line, for the first storage
- the capacitor is charged, and the power of the first storage capacitor is also increased.
- the second switch is turned off again, the first storage capacitor and the second storage capacitor are discharged by discharging the liquid crystal capacitor to maintain the normal voltage of the liquid crystal capacitor for display, that is, It is ensured that the voltage difference of the liquid crystal capacitance of each pixel unit is constant to ensure the uniformity of the picture of the display panel.
- the display device controls the switch to be turned off to stop charging the first storage capacitor.
- the capacity of the first storage capacitor is inversely proportional to the frame frequency of the displayed signal, and the smaller the frame frequency of the display signal is, the longer the corresponding display device processes the touch signal, and the liquid crystal capacitor is maintained.
- the larger the amount of power normally displayed the larger the capacity of the first storage capacitor.
- the capacitance of the first storage capacitor is about 2 pf to 0.8 pf.
- the liquid crystal capacitor and the first storage capacitor and the second storage capacitor are coupled during the charging and discharging process, a DC offset value is generated, and the liquid crystal capacitor and the first storage capacitor and the second storage capacitor are The faster the voltage value changes, the more severe the coupling effect will be, ie the greater the DC offset value.
- the operating voltage of the display panel is alternating current, that is, AC driving, when the positive and negative currents are converted, the presence of a DC offset value may cause the voltage across the liquid crystal capacitor to be insufficient to support the normal display of the displayed image, and The DC offset values of the individual pixel units are different, and the voltage difference across the liquid crystal capacitors is different, which will eventually result in uneven display of the entire screen.
- the display device is connected to the liquid crystal capacitor to compensate the voltage of the common electrode Array Vcom terminal, so that the voltage difference between the liquid crystal capacitor before and after the positive and negative polarity conversion of the power source is constant.
- the display device is connected to the liquid crystal capacitor to compensate the voltage of the common electrode Array Vcom terminal, so that the voltage difference between the liquid crystal capacitor before and after the positive and negative polarity conversion of the power source is constant.
- Vdata is the input voltage of the input terminal of the liquid crystal capacitor C LC 310
- Vcom is the voltage of the common electrode Array Vcom 305 terminal
- Vpixel (Vdata- ⁇ V )-(Vcom- ⁇ V)
- the compensation voltage ⁇ V to the common electrode Array Vcom terminal voltage Vcom is also larger, and the common electrode Array Vcom at this time The voltage value is small.
- the compensation voltage ⁇ V of the common electrode Array Vcom terminal voltage Vcom is also smaller, and the voltage value of the common electrode Array Vcom is larger, and finally the liquid crystal capacitor is ensured.
- the voltage difference is constant.
- the control method of the embodiment increases the number by controlling the switch to turn on the first storage capacitor when the rate of change of the pattern is lower than the preset rate threshold.
- the capacity of a storage capacitor replenishes the voltage of both ends of the liquid crystal capacitor due to leakage current, and maintains the voltage of the liquid crystal capacitor, so that the display panel can display a normal picture when the display picture rate is low and the display signal frame frequency is low.
- the processing time of the touch panel is increased correspondingly, thereby increasing the reporting rate of the touch signal and reducing the loss of the touch device.
- the voltage difference between the liquid crystal capacitor before and after the positive and negative polarity conversion of the power source is constant to maintain the normal display of the screen.
- FIG. 5 is a schematic structural diagram of another embodiment of a control method of the present invention.
- the control method of the present embodiment is different from the control method of the previous embodiment in that, in step 502, after determining whether the rate of change of the image is lower than a preset rate threshold, the rate of change of the graph in step 504 is When the threshold value is lower than the preset rate threshold, the control switch is turned on to charge the first storage capacitor to increase the capacity of the first storage capacitor, and before the voltage of the liquid crystal capacitor is maintained, the step 503 is further included: The frame frequency of the signal is displayed to further increase the control time of the touch signal.
- the rate of change of the graph is lower than the preset rate threshold, for example, the displayed image does not change within 0.5 seconds, and the amount of image signals transmitted during each frame time period is not large, and the display device It does not require too much time to process the display signal.
- the proportion of time taken by the control time of the touch signal is further increased to further increase the control time of the touch signal, and the reporting rate of the control signal is increased, and the touch precision of the display device is mentioned.
- the control method of the embodiment increases the number by controlling the switch to turn on the first storage capacitor when the rate of change of the pattern is lower than the preset rate threshold.
- the capacity of a storage capacitor timely replenish the voltage of the liquid crystal capacitor due to the leakage current, maintain the voltage of the liquid crystal capacitor, so that the display panel has a lower display rate and a lower display frame frequency.
- the normal picture can be displayed, and when the display signal frequency is low, the processing time of the touch signal by the display panel is also increased correspondingly, thereby increasing the reporting rate of the touch signal and reducing the loss of the touch device.
- the voltage difference between the liquid crystal capacitor before and after the positive and negative polarity conversion of the power source is constant to maintain the normal display of the screen.
- the control method of the embodiment reduces the frame frequency of the display signal when the rate of change of the graph is lower than the preset rate threshold, and reduces the control signal of each frame time period.
- the proportion of time occupied increases the proportion of time taken by the control time of the touch signal to further increase the control time of the touch signal, increases the reporting rate of the control signal, and mentions the touch precision of the display device.
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Abstract
Description
Claims (12)
- 一种具有触控功能的显示面板,包括相对设置的第一基板、第二基板以及设置在所述第一基板和第二基板之间的液晶层,其中,所述第一基板上包括由多条扫描线和多条数据线两两绝缘交叉形成的多个像素单元,每个像素单元包括液晶电容、第一开关、第二开关和第一存储电容,所述第一开关的控制端通过第一控制线与第一控制器进行连接,输入端与所述液晶电容连接,输出端与所述第一存储电容连接;所述第二开关的控制端通过信号控制线与信号控制器相连接,输入端连接至公共电极,输出端分别与所述液晶电容和所述第一存储电容端连接;当显示的图像的变化速率低于一预设速率阀值时,所述信号控制器控制所述第二开关断开的时间增大,所述第一控制器控制所述第一开关导通以增大所述第一储存电容的电量,维持所述液晶电容的电压。
- 根据权利要求1所述的显示面板,其中,每个所述像素区域还包括第三开关和第二存储电容,所述第三开关的控制端所述扫描线连接,输入端与所述数据线连接,输出端分别与所述液晶电容、所述第二存储电容以及所述第一开关的输入端连接,所述第二存储电容还与所述第二开关的输出端连接。
- 根据权利要求1所述的显示面板,其中,所述第一开关还可位于所述第一存储电容与所述第二基板之间。
- 根据权利要求1所述的显示面板,其中,所述信号控制器在所述显示面板显示的图像的变化速率大于预设速率阀值时,控制所述第一开关断开的时间减少,降低所述第一存储电容的电量。
- 根据权利要求1所述的显示面板,其中,所述第一开关、第二开关以及第三开关均为薄膜晶体管,分别为第一薄膜晶体管、第二薄膜晶体管以及第三薄膜晶体管,所述第一开关的控制端、输入端和输出端分别对应为所述第一薄膜晶体管的栅极、源极和漏极,所述第二开关的控制端、输入端和输出端分别对应为所述第二薄膜晶体管的栅极、源极和漏极,所述第三开关的控制端、第一端和第二端分别对应为所述第三薄膜晶体管的栅极、源极和漏极。
- 一种具有触控功能的显示装置,包括显示面板,所述显示面板包括相对设 置的第一基板、第二基板以及设置在所述第一基板和第二基板之间的液晶层,其中,所述第一基板上包括由多条扫描线和多条数据线两两绝缘交叉形成的多个像素单元,每个像素单元包括液晶电容、第一开关、第二开关和第一存储电容,所述第一开关的控制端通过第一控制线与第一控制器进行连接,输入端与所述液晶电容连接,输出端与所述第一存储电容连接;所述第二开关的控制端通过信号控制线与信号控制器相连接,输入端连接至公共电极,输出端分别与所述液晶电容和所述第一存储电容端连接;当所述显示信号的图像的变化速率低于一预设速率阀值时,所述信号控制器控制所述第二开关断开的时间增大,所述第一控制器控制所述第一开关导通以增大所述第一储存电容的电量,维持所述液晶电容的电压。
- 根据权利要求6所述的装置,其中,每个所述像素单元还包括第三开关和第二存储电容,所述第三开关的控制端所述扫描线连接,输入端与所述数据线连接,输出端分别与所述液晶电容、所述第二存储电容以及所述第一开关的输入端连接,所述第二存储电容还与所述第二开关的输出端连接。
- 根据权利要求6所述的装置,其中,所述信号控制器在所述显示面板显示的图像的变化速率大于预设速率阀值时控制所述第一开关断开的时间减少,降低所述第一存储电容的电量。
- 根据权利要求6所述的装置,其中,所述第一开关还可位于所述第一存储电容与所述第二基板之间。
- 根据权利要求6所述的装置,其中,所述第一开关、第二开关以及第三开关均为薄膜晶体管,分别为第一薄膜晶体管、第二薄膜晶体管以及第三薄膜晶体管,所述第一开关的控制端、输入端和输出端分别对应为所述第一薄膜晶体管的栅极、源极和漏极,所述第二开关的控制端、输入端和输出端分别对应为所述第二薄膜晶体管的栅极、源极和漏极,所述第三开关的控制端、第一端和第二端分别对应为所述第三薄膜晶体管的栅极、源极和漏极。
- 一种控制方法,其中,所述方法包括:具有触控显示功能的显示装置获取当前显示的图像的变化速率;确定所述图像的变化速率是否低于预设速率阀值,以及在所述图形的变化速率低于所述预设速率阀值时,控制开关导通对第一存储电容进行充电,以增大所述第一存储电容的容量,维持液晶电容的电压;其 中,所述第一存储电容与所述液晶电容以及第二存储电容并联。
- 根据权利要求11所述的控制方法,其中,所述在所述图形的变化速率低于所述预设速率阀值时,控制开关导通对第一存储电容进行充放电,以增大所述第一存储电容的容量,维持液晶电容的电压的步骤之前还包括:降低所述显示信号的帧频率,以增加触控信号的控制时间。
Priority Applications (5)
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US14/426,379 US9563312B2 (en) | 2014-12-24 | 2014-12-30 | Display panel having touch function, display device, and control method for the same |
JP2017533456A JP6488387B2 (ja) | 2014-12-24 | 2014-12-30 | タッチ機能を有する表示パネル、表示装置及び制御方法 |
GB1708783.4A GB2548273B (en) | 2014-12-24 | 2014-12-30 | Display panel having touch function, display device, and control method for the same |
KR1020177019412A KR101945650B1 (ko) | 2014-12-24 | 2014-12-30 | 터치 기능이 구비되는 디스플레이 패널, 디스플레이 장치 및 제어 방법 |
RU2017125469A RU2680345C2 (ru) | 2014-12-24 | 2014-12-30 | Панель дисплея, имеющая сенсорную функцию, устройство дисплея и способ управления для них |
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CN201410817400.1A CN104503173B (zh) | 2014-12-24 | 2014-12-24 | 具有触控功能的显示面板、显示装置及控制方法 |
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JP6365368B2 (ja) * | 2015-03-19 | 2018-08-01 | 株式会社Jvcケンウッド | 液晶表示装置 |
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CN105629609A (zh) * | 2016-02-18 | 2016-06-01 | 深圳市华星光电技术有限公司 | 阵列基板、液晶显示装置及液晶显示装置的驱动方法 |
CN105955532B (zh) | 2016-05-04 | 2019-03-12 | 武汉华星光电技术有限公司 | 触控显示面板及其驱动电路、电子设备 |
CN106406609B (zh) * | 2016-09-09 | 2024-07-02 | 合肥京东方光电科技有限公司 | 一种触控显示面板及其驱动方法、触控显示装置 |
US10496116B2 (en) | 2017-05-03 | 2019-12-03 | Shenzhen Winsemi Microelectronics Co., Ltd. | Small capacitance compensation network circuit |
CN207352947U (zh) * | 2017-10-25 | 2018-05-11 | 中华映管股份有限公司 | 显示面板及其像素电路 |
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US9563312B2 (en) | 2017-02-07 |
JP6488387B2 (ja) | 2019-03-20 |
CN104503173B (zh) | 2017-06-13 |
GB2548273B (en) | 2021-06-30 |
KR20170093973A (ko) | 2017-08-16 |
RU2017125469A (ru) | 2019-01-21 |
GB2548273A (en) | 2017-09-13 |
KR101945650B1 (ko) | 2019-02-07 |
RU2680345C2 (ru) | 2019-02-19 |
GB201708783D0 (en) | 2017-07-19 |
CN104503173A (zh) | 2015-04-08 |
US20160342276A1 (en) | 2016-11-24 |
JP2018507427A (ja) | 2018-03-15 |
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