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WO2017071602A1 - 触控模组、其驱动方法及显示装置 - Google Patents

触控模组、其驱动方法及显示装置 Download PDF

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Publication number
WO2017071602A1
WO2017071602A1 PCT/CN2016/103473 CN2016103473W WO2017071602A1 WO 2017071602 A1 WO2017071602 A1 WO 2017071602A1 CN 2016103473 W CN2016103473 W CN 2016103473W WO 2017071602 A1 WO2017071602 A1 WO 2017071602A1
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WO
WIPO (PCT)
Prior art keywords
touch
electrode layer
transparent electrode
touch detection
signal
Prior art date
Application number
PCT/CN2016/103473
Other languages
English (en)
French (fr)
Inventor
丁小梁
董学
陈小川
王海生
刘英明
赵卫杰
杨盛际
任涛
Original Assignee
京东方科技集团股份有限公司
北京京东方光电科技有限公司
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by 京东方科技集团股份有限公司, 北京京东方光电科技有限公司 filed Critical 京东方科技集团股份有限公司
Priority to US15/521,506 priority Critical patent/US10379653B2/en
Publication of WO2017071602A1 publication Critical patent/WO2017071602A1/zh

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    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F3/00Input arrangements for transferring data to be processed into a form capable of being handled by the computer; Output arrangements for transferring data from processing unit to output unit, e.g. interface arrangements
    • G06F3/01Input arrangements or combined input and output arrangements for interaction between user and computer
    • G06F3/03Arrangements for converting the position or the displacement of a member into a coded form
    • G06F3/041Digitisers, e.g. for touch screens or touch pads, characterised by the transducing means
    • G06F3/0412Digitisers structurally integrated in a display
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F3/00Input arrangements for transferring data to be processed into a form capable of being handled by the computer; Output arrangements for transferring data from processing unit to output unit, e.g. interface arrangements
    • G06F3/01Input arrangements or combined input and output arrangements for interaction between user and computer
    • G06F3/03Arrangements for converting the position or the displacement of a member into a coded form
    • G06F3/041Digitisers, e.g. for touch screens or touch pads, characterised by the transducing means
    • G06F3/0416Control or interface arrangements specially adapted for digitisers
    • G06F3/04166Details of scanning methods, e.g. sampling time, grouping of sub areas or time sharing with display driving
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F3/00Input arrangements for transferring data to be processed into a form capable of being handled by the computer; Output arrangements for transferring data from processing unit to output unit, e.g. interface arrangements
    • G06F3/01Input arrangements or combined input and output arrangements for interaction between user and computer
    • G06F3/03Arrangements for converting the position or the displacement of a member into a coded form
    • G06F3/041Digitisers, e.g. for touch screens or touch pads, characterised by the transducing means
    • G06F3/0414Digitisers, e.g. for touch screens or touch pads, characterised by the transducing means using force sensing means to determine a position
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F3/00Input arrangements for transferring data to be processed into a form capable of being handled by the computer; Output arrangements for transferring data from processing unit to output unit, e.g. interface arrangements
    • G06F3/01Input arrangements or combined input and output arrangements for interaction between user and computer
    • G06F3/03Arrangements for converting the position or the displacement of a member into a coded form
    • G06F3/041Digitisers, e.g. for touch screens or touch pads, characterised by the transducing means
    • G06F3/044Digitisers, e.g. for touch screens or touch pads, characterised by the transducing means by capacitive means
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F3/00Input arrangements for transferring data to be processed into a form capable of being handled by the computer; Output arrangements for transferring data from processing unit to output unit, e.g. interface arrangements
    • G06F3/01Input arrangements or combined input and output arrangements for interaction between user and computer
    • G06F3/03Arrangements for converting the position or the displacement of a member into a coded form
    • G06F3/041Digitisers, e.g. for touch screens or touch pads, characterised by the transducing means
    • G06F3/044Digitisers, e.g. for touch screens or touch pads, characterised by the transducing means by capacitive means
    • G06F3/0445Digitisers, e.g. for touch screens or touch pads, characterised by the transducing means by capacitive means using two or more layers of sensing electrodes, e.g. using two layers of electrodes separated by a dielectric layer
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F2203/00Indexing scheme relating to G06F3/00 - G06F3/048
    • G06F2203/041Indexing scheme relating to G06F3/041 - G06F3/045
    • G06F2203/04105Pressure sensors for measuring the pressure or force exerted on the touch surface without providing the touch position
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F2203/00Indexing scheme relating to G06F3/00 - G06F3/048
    • G06F2203/041Indexing scheme relating to G06F3/041 - G06F3/045
    • G06F2203/04107Shielding in digitiser, i.e. guard or shielding arrangements, mostly for capacitive touchscreens, e.g. driven shields, driven grounds
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F2203/00Indexing scheme relating to G06F3/00 - G06F3/048
    • G06F2203/041Indexing scheme relating to G06F3/041 - G06F3/045
    • G06F2203/04112Electrode mesh in capacitive digitiser: electrode for touch sensing is formed of a mesh of very fine, normally metallic, interconnected lines that are almost invisible to see. This provides a quite large but transparent electrode surface, without need for ITO or similar transparent conductive material

Definitions

  • the present disclosure relates to the field of touch display technologies, and in particular, to a touch module, a driving method thereof, and a display device.
  • the Touch Screen Panel With the rapid development of display technology, the Touch Screen Panel has gradually spread throughout people's lives.
  • the touch screen can be divided into an add-on touch panel, an on-cell touch panel, and an in-cell touch panel according to the composition structure.
  • the external touch screen is produced by separately separating the touch module from the display screen, and then bonding them together to form a display with touch function.
  • Most of the current touch screens can only detect two-dimensional coordinates, that is, only the touch position of the finger in the xy coordinate on the surface of the touch screen can be detected, and the pressure in the z direction perpendicular to the surface of the touch screen cannot be detected when the finger presses the screen.
  • the embodiment of the invention provides a touch module, a driving method thereof and a display device, which are used for realizing three-dimensional detection of the touch module.
  • the touch module includes: a touch substrate, a first transparent electrode layer, a second transparent electrode layer, and a first transparent layer disposed under opposite surfaces of the touch surface of the touch substrate a transparent flexible dielectric layer between the electrode layer and the second transparent electrode layer.
  • the first transparent electrode layer includes first touch detection electrodes arranged in an array and insulated from each other. During the touch detection period, the first transparent electrode layer and the second transparent electrode layer are configured to simultaneously receive the first touch detection signal to detect the change of the capacitance value of each of the first touch detection electrodes Touch location.
  • the first transparent electrode layer and the pressure detecting period One of the second transparent electrode layers is configured to receive a second touch detection signal to detect between the first touch detection electrodes and the second transparent electrode layer caused by the pressure at the touch position. The capacitance value changes.
  • the other of the first transparent electrode layer and the second transparent electrode layer is for receiving a fixed value signal during a pressure detecting period.
  • the touch module further includes a touch detection chip for providing the first touch detection signal, the second touch detection signal, and the fixed value signal.
  • the second transparent electrode layer is composed of a planar electrode.
  • the first transparent electrode layer receives a fixed value signal during a pressure detecting period
  • the second transparent electrode layer receives a second touch detection signal
  • the touch detection chip is further configured to detect The signal of each of the first touch detection electrodes changes.
  • the second transparent electrode layer includes a second touch detection electrode arranged in an array and insulated from each other, and the second touch detection electrode is in one-to-one correspondence with the first touch detection electrode, and The orthographic projections on the flexible dielectric layer coincide with each other.
  • the touch detection chip is further configured to detect a signal change of each of the second touch detection electrodes during a pressure detection period.
  • the touch substrate is a protective substrate.
  • Another embodiment of the present invention provides a display device, which can include a display panel, and the touch module according to any of the foregoing embodiments, the touch module can be fixed to the display panel On the light exiting side, the second transparent electrode layer of the touch module and the light emitting side of the display panel are in contact with each other.
  • the display panel is any one of a liquid crystal display panel, an organic electroluminescence display panel, a cathode ray tube display panel, a plasma display panel, an electronic paper, or an electroluminescent display panel.
  • Another embodiment of the present invention provides a driving method for a touch module, which may be the touch module described in the foregoing embodiments, and the method may include:
  • the first touch detection signal is applied to the first transparent electrode layer and the second transparent electrode layer to detect the change of the capacitance value of each of the first touch detection electrodes in the first transparent electrode layer.
  • the method includes: applying a second touch detection signal to the second transparent electrode layer while loading a fixed value signal to the first transparent electrode layer during a pressure detection period; and detecting each The signal of the first touch detection electrode changes.
  • the method may include: applying a fixed value signal to the second transparent electrode layer while loading a second touch detection signal to the first transparent electrode layer; and detecting The signal of each of the first touch detection electrodes changes.
  • the second transparent electrode layer may include a second touch detection electrode arranged in an array and insulated from each other, and the second touch detection electrode has a one-to-one correspondence with the first touch detection electrode. And the orthographic projections on the transparent flexible medium layer coincide with each other.
  • the method may include: applying a second touch detection signal to the first transparent electrode layer while loading a fixed value signal to the second transparent electrode layer during a pressure detection period; and detecting each of the second touches Control the signal change of the detection electrode.
  • the second transparent electrode layer may include a second touch detection electrode arranged in an array and insulated from each other, and the second touch detection electrode has a one-to-one correspondence with the first touch detection electrode. And the orthographic projections on the transparent flexible medium layer coincide with each other.
  • the method may include: applying a fixed value signal to the first transparent electrode layer while loading a second touch detection signal to the second transparent electrode layer during a pressure detecting period; and detecting each of the second touches Control the signal change of the detection electrode.
  • a first transparent electrode layer, a transparent flexible dielectric layer and a second transparent electrode layer are disposed under the opposite surfaces of the touch surface of the touch substrate. Since the transparent flexible medium layer can have a certain flexibility, when the touch substrate is touch-pressed, the transparent flexible medium layer pressed at the force point is compressed, where the corresponding first transparent electrode layer and the second transparent layer are transparent. The distance between the electrode layers will decrease. During the touch detection period, the first transparent detection layer and the second transparent electrode layer can be simultaneously loaded with the first touch detection signal, so that the first transparent electrode layer and the second transparent electrode layer are pressed by the touch control.
  • the change in the distance does not cause the charging and discharging of the capacitor structure formed between the two, that is, the first touch detection signal loaded on the first transparent electrode layer is not affected, and therefore, the first touch can be detected.
  • the change of the capacitance value of the detecting electrode is used to determine the touch position, and the two-dimensional detecting function of the touch is realized.
  • the second touch detection signal may be applied to one of the first transparent electrode layer and the second transparent electrode layer, and the first transparent electrode layer and the second transparent electrode layer are caused by the touch pressing.
  • the change in the distance between the two will affect the charge and discharge of the capacitor structure formed between the two, so it is possible to detect each of the first touch detection electrodes and
  • the capacitance value between the second transparent electrode layers is changed to detect the pressure in the z direction perpendicular to the surface of the touch screen to realize the pressure sensing function.
  • FIG. 1 and 2 are schematic structural views of a touch module provided by different embodiments of the present invention.
  • FIG. 3 and FIG. 4 are schematic diagrams showing driving timings of a touch module according to different embodiments of the present invention.
  • FIG. 5 is a schematic flowchart of a driving method of a touch module according to an embodiment of the present invention.
  • the touch control module includes a touch substrate 100 , a first transparent electrode layer 200 disposed under the opposite surface of the touch surface of the touch substrate 100 , and a first transparent electrode layer 200 .
  • the first transparent electrode layer 200 includes a first touch detecting electrode 201 arranged in an array and insulated from each other.
  • the first transparent electrode layer and the second transparent electrode layer simultaneously receive the first touch detection signal to detect the change of the capacitance value of each first touch detection electrode to determine the touch position;
  • One of the first transparent electrode layer and the second transparent electrode layer receives the second touch detection signal to detect between the first touch detection electrodes and the second transparent electrode layer caused by the pressure at the touch position.
  • the capacitance value changes.
  • the opposite surface of the touch surface of the touch panel 100 in the touch panel refers to the back surface of the touch substrate 100 opposite to the touch surface, that is, in the example shown in FIG.
  • the surface is the upper surface, and the opposite surface of the touch surface is the lower surface.
  • the touch substrate 100 can be used as a protective substrate, for example, a protective cover, so that the detecting electrode capable of realizing three-dimensional touch is integrated into the protective cover. It can realize the function of pressure sensing while detecting two-dimensional touch, and can also be compatible with display panels of various display modes, application scenarios. widely.
  • the transparent flexible dielectric layer 300 between the first transparent electrode layer 200 and the second transparent electrode layer 400 may have a certain flexibility, for example, the transparent flexible dielectric layer 300.
  • the transparent flexible dielectric layer 300 at the point of pressing is compressed when the touch control substrate 100 is touch-pressed.
  • the corresponding first transparent electrode layer 200 is here.
  • the distance between the second transparent electrode layer 400 and the second transparent electrode layer 400 is reduced, so that the capacitance formed between the first transparent electrode layer 200 and the second transparent electrode layer 400 is increased, and the change of the capacitance value can be determined.
  • the size of the touch pressure is not limited to the touch pressure.
  • the touch module may further include a controller (not shown) such as a touch detection chip, and the touch detection chip (controller) is at least provided for use in the touch detection period.
  • the first touch detection signal and the second touch detection signal used in the pressure detection period.
  • each of the first touch detection electrodes 201 included in the first transparent electrode layer 200 may have a block structure.
  • the touch detection chip can load the first touch detection signal on each of the first touch detection electrodes 201, and then can detect the capacitance of the human body due to the touch.
  • the capacitance value of each of the first touch detection electrodes is changed, so that the two-dimensional coordinates of the touch point on the screen can be determined, that is, the touch position is determined.
  • the first transparent electrode layer 200 and the second transparent electrode layer 400 simultaneously receive the first touch detection signal, and the potential of the second transparent electrode layer 400
  • the potential of a transparent electrode layer 200 is the same, and the second transparent electrode layer 400 can be used as a shielding layer to shield interference of other signals on the one hand, and can eliminate the parasitic capacitance of the first transparent electrode layer 200 on the other hand.
  • the change in the distance between the first transparent electrode layer 200 and the second transparent electrode layer 400 caused by the pressing does not cause charging and discharging of the capacitor structure formed therebetween, that is, is not received by the first transparent electrode layer 200.
  • the first touch detection signal has an effect.
  • one of the first transparent electrode layer 200 and the second transparent electrode layer 400 can receive the second touch detection signal from the touch detection chip.
  • the first transparent electrode caused by the touch pressing
  • the change in the distance between the layer 200 and the second transparent electrode layer 400 affects the charge and discharge of the capacitor structure formed between the two, and therefore, between the first touch detection electrodes 200 and the second transparent electrode layer 400 can be detected.
  • the capacitance value changes to detect the pressure in the z direction perpendicular to the surface of the touch screen, and the pressure sensing function is realized.
  • the first transparent electrode layer 200 and the second The other of the transparent electrode layers 400 can receive a fixed value signal.
  • the fixed value signal can also be provided by the touch detection chip. Therefore, in some embodiments, the touch module can include a touch detection chip for providing the first touch detection signal, the second touch detection signal, and the fixed value signal.
  • the signal frequency, the duty ratio, and the amplitude of the first touch detection signal loaded during the touch detection period and the second touch detection signal loaded during the pressure detection period may be the same, or Different, there is no limit here.
  • the touch detection chip can load the first transparent electrode layer 200 or the second transparent electrode layer 400 by using signals in the following manners.
  • the touch detection chip applies a second touch detection signal to the second transparent electrode layer 400 during the pressure detection period; and simultaneously applies a fixed value signal to the first transparent electrode layer 200. That is, the level of the first transparent electrode layer 200 at this time is relatively fixed.
  • the change in the distance between the first transparent electrode layer 200 and the second transparent electrode layer 400 caused by the touch pressing causes charging and discharging of the capacitor structure formed between the two, and thus, using the self-capacitance detecting principle,
  • the change in the signal amount of each of the first touch detection electrodes 200 is detected, and the amount of change in the capacitance between the first transparent electrode layer 200 and the second transparent electrode layer 400 can be determined, thereby calculating the magnitude of the pressure.
  • the touch detection chip applies a second touch detection signal to the first transparent electrode layer 200 during the pressure detection period; and simultaneously applies a fixed value signal to the second transparent electrode layer 400. That is, the level of the second transparent electrode layer 400 at this time is relatively fixed. In this way, the change in the distance between the first transparent electrode layer 200 and the second transparent electrode layer 400 caused by the touch pressing causes charging and discharging of the capacitor structure formed between the two, and the influence of the charging and discharging process is affected. The detection signal amount of the first transparent electrode layer 200 is entered.
  • the detection signal amount obtained at this time is b
  • the second transparent electrode layer can be composed of a planar electrode. This embodiment is particularly applicable to the manner in which signals are loaded as shown in FIG. That is, in the embodiment, the first transparent electrode layer 200 receives the fixed value signal during the pressure detecting period, the second transparent electrode layer 400 receives the second touch detection signal, and the touch detection chip is further used to detect each location. The signal change of the first touch detection electrode is described.
  • the second transparent electrode layer 400 can Thought it is a non-patterned full-surface electrode.
  • the second transparent electrode layer 400 in the touch module may also be composed of a block electrode, which is not limited herein.
  • the second transparent electrode layer 400 of the above-mentioned touch module provided by the embodiment of the present invention may include a second touch detecting electrode 401 arranged in an array and insulated from each other;
  • the second touch detection electrodes 401 are in one-to-one correspondence with the first touch detection electrodes 201, and the orthographic projections on the flexible medium layer 300 or the touch substrate 100 coincide with each other.
  • the touch detecting chip can load the first transparent electrode layer 200 or the second transparent electrode layer 400 with signals in the following manners.
  • the touch detection chip applies a second touch detection signal to the first transparent electrode layer 200 during the pressure detection period; and simultaneously applies a fixed value signal to the second transparent electrode layer 400. That is, the level of the second transparent electrode layer 400 at this time is relatively fixed.
  • the change of the distance between the first transparent electrode layer 200 and the second transparent electrode layer 400 caused by the touch pressing causes the charging and discharging of the capacitor structure formed between the two, and the self-capacitance detection principle can be used to detect
  • the signal amount of each of the second touch detection electrodes 400 changes, and thus the amount of change in capacitance between the first transparent electrode layer 200 and the second transparent electrode layer 400 can be determined, thereby calculating the magnitude of the pressure. It can be understood that, in this embodiment, it is also possible to calculate the magnitude of the pressure by detecting the change in the signal amount of the first touch detection electrode 201.
  • the touch detection chip applies a second touch detection signal to the second transparent electrode layer 400 during the pressure detection period; and simultaneously applies a fixed value signal to the first transparent electrode layer 200. That is, the level of the first transparent electrode layer 200 at this time is relatively fixed.
  • the change of the distance between the first transparent electrode layer 200 and the second transparent electrode layer 400 caused by the touch pressing causes the charging and discharging of the capacitor structure formed between the two, and can be detected by using the self-capacitance detection principle.
  • the amount of change in the capacitance between the first transparent electrode layer 200 and the second transparent electrode layer 400 can be determined by changing the signal amount of each of the second touch detection electrodes 400, thereby calculating the magnitude of the pressure.
  • another embodiment of the present invention provides a driving method of the touch module described in the above embodiment. As shown in FIG. 5, the method may include the following steps:
  • the signal frequency, the duty ratio, and the amplitude of the first touch detection signal loaded in step S501 and the second touch detection signal loaded in step S502 may be the same or different, and are not limited herein. .
  • the driving method may further include the following steps: loading the second touch detection signal on the second transparent electrode layer during the pressure detection period, and simultaneously transparent to the first The electrode layer loads the fixed value signal; and detects the signal change of each of the first touch detection electrodes.
  • the driving method may include the following steps: loading a fixed value signal to the second transparent electrode layer during the pressure detecting period, and simultaneously transparent to the first The electrode layer loads the second touch detection signal; and detects a signal change of each of the first touch detection electrodes.
  • the second transparent electrode layer includes a second touch detection electrode arranged in an array and insulated from each other, and the second touch detection electrode is in one-to-one correspondence with the first touch detection electrode and is on the transparent flexible medium layer.
  • the positive projections are coincident with each other, and the driving method for the touch module includes: loading a second touch detection signal on the first transparent electrode layer and loading a fixed value signal on the second transparent electrode layer during the pressure detection period; A signal change of each of the second touch detection electrodes is detected.
  • the second transparent electrode layer may include a second touch detection electrode arranged in an array and insulated from each other, and the second touch detection electrode is in one-to-one correspondence with the first touch detection electrode and is in the transparent flexible medium layer.
  • the driving method for the touch module may include: loading a fixed value signal to the first transparent electrode layer and loading a second touch detection signal to the second transparent electrode layer during the pressure detecting period; And detecting a signal change of each of the second touch detection electrodes.
  • a further embodiment of the present invention provides a display device, including: a display panel and the touch module provided by the embodiment of the present invention, and the touch module is fixed on the light-emitting side of the display panel.
  • the second transparent electrode layer is in contact with the light exiting side of the display panel.
  • the display device can be: mobile phone, tablet computer, television, display, pen Any product or component that has a display function, such as a computer, a digital photo frame, and a navigator.
  • the display device refer to the embodiment of the touch module, and the repeated description is omitted.
  • the display device does not limit the type of the display panel.
  • the display panel may specifically be a liquid crystal display panel, an organic electroluminescence display panel, a cathode ray tube display panel, a plasma display panel, and an electronic device. Any of paper or electroluminescent display panels.
  • the embodiment of the invention provides a touch module, a driving method thereof and a display device.
  • a first transparent electrode layer, a transparent flexible dielectric layer, and a second transparent electrode layer are disposed under the opposite surfaces of the touch surface of the touch substrate.
  • the first transparent electrode layer may include first touch detection electrodes arranged in an array and insulated from each other. Since the transparent flexible medium layer has a certain flexibility, when the touch substrate is touch-pressed, the transparent flexible medium layer pressed at the force point is compressed, where the corresponding first transparent electrode layer and the second transparent electrode are respectively The distance between the layers will decrease.
  • the first transparent detection layer and the second transparent electrode layer can be simultaneously loaded with the first touch detection signal, so that the first transparent electrode layer and the second transparent electrode layer are pressed by the touch control.
  • the change in the distance does not cause the charging and discharging of the capacitor structure formed between the two, that is, the first touch detection signal loaded on the first transparent electrode layer is not affected, and therefore, the first touch can be detected.
  • the change of the capacitance value of the detecting electrode is used to determine the touch position, and the two-dimensional detecting function of the touch is realized.
  • the second touch detection signal may be applied to one of the first transparent electrode layer and the second transparent electrode layer, and the first transparent electrode layer and the second transparent electrode layer are caused by the touch pressing.
  • the change in the distance between the two can affect the charging and discharging of the capacitor structure formed between the two, so that the z direction perpendicular to the surface of the touch screen can be detected by detecting the change in the capacitance value between each of the first touch detecting electrodes and the second transparent electrode layer.
  • the pressure is detected to achieve the pressure sensing function.

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  • Engineering & Computer Science (AREA)
  • General Engineering & Computer Science (AREA)
  • Theoretical Computer Science (AREA)
  • Human Computer Interaction (AREA)
  • Physics & Mathematics (AREA)
  • General Physics & Mathematics (AREA)
  • Position Input By Displaying (AREA)

Abstract

一种触控模组、其驱动方法及显示装置。触控基板(100)的触控面的相对表面设置有第一透明电极层(200)、透明柔性介质层(300)和第二透明电极层(400)。第一透明电极层(200)可包括呈阵列排布且相互绝缘的第一触控检测电极(201)。在触控检测时间段,可以同时对第一透明电极层(200)和第二透明电极层(400)加载第一触控检测信号,通过检测各第一触控检测电极(201)的电容值变化以判断触控位置,实现触控的二维侦测功能。在压力检测时间段,可以对第一透明电极层(200)和第二透明电极层(400)中的一个加载第二触控检测信号,通过检测各第一触控检测电极(201)和第二透明电极层(400)之间的电容值变化而对垂直于触摸屏表面的z方向的压力进行探测,实现压力感应功能。

Description

触控模组、其驱动方法及显示装置
相关申请的交叉引用
本申请要求于2015年10月30日向中国专利局提交的专利申请201510729661.2的优先权利益,并且在此通过引用的方式将该在先申请的内容并入本文。
技术领域
本公开涉及触控显示技术领域,尤其涉及一种触控模组、其驱动方法及显示装置。
背景技术
随着显示技术的飞速发展,触摸屏(Touch Screen Panel)已经逐渐遍及人们的生活中。目前,触摸屏按照组成结构可以分为:外挂式触摸屏(Add on Mode Touch Panel)、覆盖表面式触摸屏(On Cell Touch Panel)、以及内嵌式触摸屏(In Cell Touch Panel)。外挂式触摸屏是将触控模组与显示屏分开生产,然后贴合到一起成为具有触控功能的显示屏。
目前的触摸屏大部分只能进行二维坐标的探测,即只能探测手指在触摸屏表面上的xy坐标中的触碰位置,不能对手指按压屏幕时垂直于触摸屏表面的z方向的压力进行探测。
发明内容
有鉴于此,本发明实施例提供了一种触控模组、其驱动方法及显示装置,用以实现触控模组的三维探测。
本发明的实施例提供的触控模组包括:触控基板、设置于所述触控基板的触控面的相对表面的下方的第一透明电极层、第二透明电极层和位于第一透明电极层和第二透明电极层之间的透明柔性介质层。第一透明电极层包括呈阵列排布且相互绝缘的第一触控检测电极。在触控检测时间段,所述第一透明电极层和所述第二透明电极层用于同时接收第一触控检测信号,以检测各所述第一触控检测电极的电容值变化从而判断触控位置。在压力检测时间段,所述第一透明电极层和 所述第二透明电极层之一用于接收第二触控检测信号,以检测由触控位置处的压力引起的各所述第一触控检测电极和所述第二透明电极层之间的电容值变化。
在一些实施例中,在压力检测时间段,所述第一透明电极层和所述第二透明电极层中的另一个用于接收固定值信号。
在一些实施例中,所述触控模组还包括用于提供所述第一触控检测信号、所述第二触控检测信号和所述固定值信号的触控侦测芯片。
在一些实施例中,所述第二透明电极层由面状电极组成。
在一些实施例中,在压力检测时间段,所述第一透明电极层接收固定值信号,所述第二透明电极层接收第二触控检测信号,所述触控侦测芯片还用于检测各所述第一触控检测电极的信号变化。
在一些实施例中,第二透明电极层包括呈阵列排布且相互绝缘的第二触控检测电极,所述第二触控检测电极与所述第一触控检测电极一一对应,且在所述柔性介质层上的正投影相互重合。
在一些实施例中,在压力检测时间段,所述触控侦测芯片还用于检测各所述第二触控检测电极的信号变化。
在一些实施例中,所述触控基板为保护基板。
本发明的另一实施例提供了一种显示装置,其可包括显示面板,以及如前述实施例中的任一实施例所述的触摸模组,该触控模组可固定于所述显示面板的出光侧,所述触控模组的第二透明电极层与所述显示面板的出光侧相互接触。
在一些实施例中,所述显示面板为液晶显示面板、有机电致发光显示面板、阴极射线管显示面板、等离子显示面板、电子纸或电致发光显示面板中的任意一种。
本发明的另一实施例提供了一种用于触控模组的驱动方法,该触控模组可以是前述实施例所述的触控模组,该方法可包括:
在触控检测时间段,同时对第一透明电极层和第二透明电极层加载第一触控检测信号,以检测所述第一透明电极层中的各第一触控检测电极的电容值变化以判断触控位置;
在压力检测时间段,对所述第一透明电极层或所述第二透明电极层加载第二触控检测信号,以检测由触控位置处的压力引起的各所述第一触控检测电极和所述第二透明电极层之间的电容值变化。
在一些实施例中,所述方法包括:在压力检测时间段,对所述第二透明电极层加载第二触控检测信号,同时对所述第一透明电极层加载固定值信号;以及检测各所述第一触控检测电极的信号变化。
在一些实施例中,所述方法可包括:在压力检测时间段,对所述第二透明电极层加载固定值信号,同时对所述第一透明电极层加载第二触控检测信号;以及检测各所述第一触控检测电极的信号变化。
在一些实施例中,所述第二透明电极层可包括呈阵列排布且相互绝缘的第二触控检测电极,所述第二触控检测电极与所述第一触控检测电极一一对应且在透明柔性介质层上的正投影相互重合。所述方法可包括:在压力检测时间段,对所述第一透明电极层加载第二触控检测信号,同时对所述第二透明电极层加载固定值信号;以及检测各所述第二触控检测电极的信号变化。
在一些实施例中,所述第二透明电极层可包括呈阵列排布且相互绝缘的第二触控检测电极,所述第二触控检测电极与所述第一触控检测电极一一对应且在透明柔性介质层上的正投影相互重合。所述方法可包括:在压力检测时间段,对所述第一透明电极层加载固定值信号,同时对所述第二透明电极层加载第二触控检测信号;以及检测各所述第二触控检测电极的信号变化。
根据本发明实施例提供的触控模组,在触控基板的触控面的相对表面下方设置有第一透明电极层、透明柔性介质层和第二透明电极层。由于透明柔性介质层可以具有一定的伸缩性,因此在对触控基板进行触控按压时,按压着力点处的透明柔性介质层会被压缩,此处对应的第一透明电极层和第二透明电极层之间的距离会减小。在触控检测时间段,可以同时对第一透明电极层和第二透明电极层加载第一触控检测信号,因此此时由触控按压造成的第一透明电极层和第二透明电极层之间距离的变化不会带来两者之间形成的电容结构的充放电,即不会对第一透明电极层加载的第一触控检测信号造成影响,因此,可以通过检测各第一触控检测电极的电容值变化以判断触控位置,实现触控的二维侦测功能。在压力检测时间段,可以对第一透明电极层和第二透明电极层中的一个加载第二触控检测信号,此时由触控按压造成的第一透明电极层和第二透明电极层之间距离的变化会影响两者之间形成的电容结构的充放电,因此可以通过检测各第一触控检测电极和 第二透明电极层之间的电容值变化而对垂直于触摸屏表面的z方向的压力进行探测,实现压力感应功能。
附图说明
图1和图2分别为本发明的不同实施例提供的触控模组的结构示意图;
图3和图4分别为本发明的不同实施例提供的触控模组的驱动时序示意图;
图5为本发明实施例提供的触控模组的驱动方法的流程示意图。
具体实施方式
下面结合附图,对本发明实施例提供的触控模组、其驱动方法及显示装置的具体实施方式进行详细地说明。
附图中各膜层的厚度和形状不反映真实比例,目的只是示意说明本发明的实施例。
本发明实施例提供的一种触控模组,如图1所示,包括:触控基板100,设置于触控基板100的触控面的相对表面的下方的第一透明电极层200、第二透明电极层400和位于第一透明电极层100和第二透明电极层400之间透明柔性介质层300。第一透明电极层200包括呈阵列排布且相互绝缘的第一触控检测电极201。在触控检测时间段,第一透明电极层和第二透明电极层同时接收第一触控检测信号,以检测各第一触控检测电极的电容值变化从而判断触控位置;在压力检测时间段,第一透明电极层和第二透明电极层之一接收第二触控检测信号,以检测由触控位置处的压力引起的各第一触控检测电极和第二透明电极层之间的电容值变化。
上述触控模组中的触控基板100的触控面的相对表面指的是触控基板100的与触控面相对的背面,即在图1所示的示例中,触控基板的触控面为上表面,触控面的相对表面为下表面。
在具体实施时,在本发明实施例提供的上述触控模组中,触控基板100可以作为保护基板,例如,保护盖板,这样,将能够实现三维触控的检测电极集成于保护盖板,可以在进行探测二维触控的同时实现压力感应的功能,还可以兼容各种显示模式的显示面板,应用场景 广泛。
在本发明实施例提供的上述触控模组中,位于第一透明电极层200和第二透明电极层400之间的透明柔性介质层300可以具有一定的伸缩性,例如,透明柔性介质层300可以由诸如聚氨酯之类的高分子材料形成,因此,在对触控基板100进行触控按压时,按压着力点处的透明柔性介质层300会被压缩,此处对应的第一透明电极层200和第二透明电极层400之间的距离会减小,这样第一透明电极层200和第二透明电极层400之间形成的电容就会增大,通过检测此电容值的变化就可以确定出触控压力的大小。在一些实施例中,触摸模组还可包括诸如触控侦测芯片的控制器(图中未示出),该触控侦测芯片(控制器)至少可提供在触控检测时间段中所用到的第一触控检测信号以及在压力检测时间段中所用到的第二触控检测信号。在本发明实施例提供的上述触控模组中,第一透明电极层200所包括的各第一触控检测电极201可具有块状结构。在触控检测时间段,如图3和图4所示,触控侦测芯片可对各第一触控检测电极201加载第一触控检测信号,然后可检测到由于触控时人体的电容引起的各第一触控检测电极的电容值变化,从而可以判断出触控点在屏幕的二维坐标,即确定出触控位置。并且,如图3和图4所示,由于在该时间段内,第一透明电极层200和第二透明电极层400同时接收第一触控检测信号,第二透明电极层400的电位与第一透明电极层200的电位相同,第二透明电极层400一方面可以作为屏蔽层以屏蔽其他信号的干扰,另一方面可以消除第一透明电极层200的寄生电容,因此,此时由触控按压造成的第一透明电极层200和第二透明电极层400之间距离的变化就不会带来两者之间形成的电容结构的充放电,即不会对第一透明电极层200所接收的第一触控检测信号造成影响。
在压力检测时间段,第一透明电极层200和第二透明电极层400之一可接收来自触控侦测芯片的第二触控检测信号,此时,由触控按压造成的第一透明电极层200和第二透明电极层400之间距离的变化会影响两者之间形成的电容结构的充放电,因此,可以通过检测各第一触控检测电极200和第二透明电极层400之间的电容值变化而对垂直于触摸屏表面的z方向的压力进行探测,实现压力感应功能。
在一些实施中,在压力检测时间段,第一透明电极层200和第二 透明电极层400中的另一个可接收固定值信号。并且,该固定值信号也可由触控侦测芯片提供。因此,在一些实施例中,触控模组可包括用于提供所述第一触控检测信号、所述第二触控检测信号和所述固定值信号的触控侦测芯片。
在具体的实施例中,在触控检测时间段加载的第一触控检测信号和在压力检测时间段加载的第二触控检测信号的信号频率、占空比和幅值可以相同,也可以不同,在此不做限定。
在一些实施例中,在压力检测时间段,触控侦测芯片可通过以下几种方式对第一透明电极层200或第二透明电极层400加载信号。
在一些实施例中,如图3所示:在压力检测时间段,触控侦测芯片对第二透明电极层400加载第二触控检测信号;同时对第一透明电极层200加载固定值信号,即第一透明电极层200此时的电平相对固定。这样,在触控按压时造成的第一透明电极层200和第二透明电极层400之间距离的变化会带来两者之间形成的电容结构的充放电,因而,利用自电容检测原理,检测各第一触控检测电极200的信号量变化,可以确定出第一透明电极层200和第二透明电极层400之间的电容值变化量,从而计算出压力的大小。
在一些实施例中,如图4所示,在压力检测时间段,触控侦测芯片对第一透明电极层200加载第二触控检测信号;同时对第二透明电极层400加载固定值信号,即第二透明电极层400此时的电平相对固定。这样,在触控按压时造成的第一透明电极层200和第二透明电极层400之间距离的变化会带来两者之间形成的电容结构的充放电,该充放电过程造成的影响会计入第一透明电极层200的探测信号量中。假设此时得到的探测信号量为b,而在触控检测时间段通过手指与第一透明电极层200之间产生的电容探测到第一透明电极层200的探测信号量假设为a,则由于压力而产生的探测信号量f=b-a。f越大则表明压力值越大,通过上述方式可以确定出压力值。
在一些实施例中,第二透明电极层可由面状电极组成。该实施例可特别适用于如图3所示的加载信号的方式。即,在该实施例中,在压力检测时间段,第一透明电极层200接收固定值信号,第二透明电极层400接收第二触控检测信号,触控侦测芯片还用于检测各所述第一触控检测电极的信号变化。在该实施例中,第二透明电极层400可 以为一无构图的整面电极。当然,触控模组中的第二透明电极层400也可以采用块状电极组成,在此不做限定。
在一些实施例中,本发明实施例提供的上述触控模组中的第二透明电极层400,如图2所示,可以包括呈阵列排布且相互绝缘的第二触控检测电极401;并且,第二触控检测电极401与第一触控检测电极201一一对应,且在柔性介质层300或触控基板100上的正投影相互重合。
基于如图4所示结构的第二透明电极层400,在压力检测时间段,触控侦测芯片可以以下面几种方式对第一透明电极层200或第二透明电极层400加载信号。
在一些实施例中,如图4所示,在压力检测时间段,触控侦测芯片对第一透明电极层200加载第二触控检测信号;同时对第二透明电极层400加载固定值信号,即第二透明电极层400此时的电平相对固定。这样,在触控按压时造成的第一透明电极层200和第二透明电极层400之间距离的变化会带来两者之间形成的电容结构的充放电,利用自电容检测原理,可以检测各第二触控检测电极400的信号量变化,因而可以确定出第一透明电极层200和第二透明电极层400之间的电容值变化量,从而计算出压力的大小。能够理解到的是,在该实施例中,通过检测第一触控检测电极201的信号量变化来计算出压力的大小也是可能的。
在一些实施例中,如图3所示,在压力检测时间段,触控侦测芯片对第二透明电极层400加载第二触控检测信号;同时对第一透明电极层200加载固定值信号,即第一透明电极层200此时的电平相对固定。这样,在触控按压时造成的第一透明电极层200和第二透明电极层400之间距离的变化会带来两者之间形成的电容结构的充放电,利用自容检测原理,可以检测各第二触控检测电极400的信号量变化,可以确定出第一透明电极层200和第二透明电极层400之间的电容值变化量,从而计算出压力的大小。
基于同一发明构思,本发明的另一实施例提供了一种可用于上述实施例所描述的触控模组的驱动方法,如图5所示,该方法可包括以下步骤:
S501、在触控检测时间段,同时对第一透明电极层和第二透明电 极层加载第一触控检测信号,以检测第一透明电极层中的各第一触控检测电极的电容值变化以判断触控位置;
S502、在压力检测时间段,对第一透明电极层或第二透明电极层加载第二触控检测信号,以检测由触控位置处的压力引起的各第一触控检测电极和第二透明电极层之间的电容值变化。
在具体实施时,步骤S501中加载的第一触控检测信号和步骤S502中加载的第二触控检测信号的信号频率、占空比和幅值可以相同,也可以不同,在此不做限定。
在本发明实施例提供的上述触控模组的驱动方法中,驱动方法还可包括以下步骤:在压力检测时间段,对第二透明电极层加载第二触控检测信号,同时对第一透明电极层加载固定值信号;以及检测各第一触控检测电极的信号变化。
替代性地,在本发明实施例提供的上述触控模组的驱动方法中,驱动方法可包括以下步骤:在压力检测时间段,对第二透明电极层加载固定值信号,同时对第一透明电极层加载第二触控检测信号;以及检测各第一触控检测电极的信号变化。
在一些实施例中,第二透明电极层包括呈阵列排布且相互绝缘的第二触控检测电极,第二触控检测电极与第一触控检测电极一一对应且在透明柔性介质层上的正投影相互重合,用于触控模组的驱动方法包括:在压力检测时间段,对第一透明电极层加载第二触控检测信号,同时对第二透明电极层加载固定值信号;以及检测各第二触控检测电极的信号变化。
在一些实施例中,第二透明电极层可包括呈阵列排布且相互绝缘的第二触控检测电极,第二触控检测电极与第一触控检测电极一一对应且在透明柔性介质层上的正投影相互重合,用于触控模组的驱动方法可包括:在压力检测时间段,对第一透明电极层加载固定值信号,同时对第二透明电极层加载第二触控检测信号;以及检测各第二触控检测电极的信号变化。
基于同一发明构思,本发明的又一实施例还提供了一种显示装置,包括:显示面板以及固定于显示面板的出光侧的本发明实施例提供的上述触控模组,且触控模组的第二透明电极层与显示面板的出光侧相互接触。该显示装置可以为:手机、平板电脑、电视机、显示器、笔 记本电脑、数码相框、导航仪等任何具有显示功能的产品或部件。该显示装置的实施可以参见上述触控模组的实施例,重复之处不再赘述。
在具体实施时,本发明实施例提供的上述显示装置中并不限定显示面板的类型,显示面板具体可以是液晶显示面板、有机电致发光显示面板、阴极射线管显示面板、等离子显示面板、电子纸或电致发光显示面板中的任意一种。
本发明实施例提供了一种触控模组、其驱动方法及显示装置。在触控基板的触控面的相对表面的下方设置了第一透明电极层、透明柔性介质层和第二透明电极层。第一透明电极层可以包括呈阵列排布且相互绝缘的第一触控检测电极。由于透明柔性介质层具有一定的伸缩性,因此在对触控基板进行触控按压时,按压着力点处的透明柔性介质层会被压缩,此处对应的第一透明电极层和第二透明电极层之间的距离会减小。在触控检测时间段,可以同时对第一透明电极层和第二透明电极层加载第一触控检测信号,因此此时由触控按压造成的第一透明电极层和第二透明电极层之间距离的变化不会带来两者之间形成的电容结构的充放电,即不会对第一透明电极层加载的第一触控检测信号造成影响,因此,可以通过检测各第一触控检测电极的电容值变化以判断触控位置,实现触控的二维侦测功能。在压力检测时间段,可以对第一透明电极层和第二透明电极层中的一个加载第二触控检测信号,此时由触控按压造成的第一透明电极层和第二透明电极层之间距离的变化会影响两者之间形成的电容结构的充放电,因此可以通过检测各第一触控检测电极和第二透明电极层之间的电容值变化而对垂直于触摸屏表面的z方向的压力进行探测,实现压力感应功能。
显然,本领域的技术人员可以对本发明进行各种改动和变型而不脱离本发明的精神和范围。这样,倘若本发明的这些修改和变型属于本发明权利要求及其等同技术的范围之内,则本发明也意图包含这些改动和变型在内。

Claims (15)

  1. 一种触控模组,包括:触控基板,设置于所述触控基板的触控面的相对表面的下方的第一透明电极层、第二透明电极层和位于第一透明电极层和第二透明电极层之间的透明柔性介质层,其中,
    所述第一透明电极层包括呈阵列排布且相互绝缘的第一触控检测电极,
    在触控检测时间段,所述第一透明电极层和所述第二透明电极层用于同时接收第一触控检测信号,以检测各所述第一触控检测电极的电容值变化从而判断触控位置,在压力检测时间段,所述第一透明电极层和所述第二透明电极层之一用于接收第二触控检测信号,以检测由触控位置处的压力引起的各所述第一触控检测电极和所述第二透明电极层之间的电容值变化。
  2. 如权利要求1所述的触控模组,其中在压力检测时间段,所述第一透明电极层和所述第二透明电极层中的另一个用于接收固定值信号。
  3. 如权利要求2所述的触控模组,其中所述触控模组还包括用于提供所述第一触控检测信号、所述第二触控检测信号和所述固定值信号的触控侦测芯片。
  4. 如权利要求3所述的触控模组,其中所述第二透明电极层由面状电极组成。
  5. 如权利要求4所述的触控模组,其中在压力检测时间段,所述第一透明电极层接收固定值信号,所述第二透明电极层接收第二触控检测信号,所述触控侦测芯片还用于检测各所述第一触控检测电极的信号变化。
  6. 如权利要求3所述的触控模组,其中所述第二透明电极层包括呈阵列排布且相互绝缘的第二触控检测电极,
    所述第二触控检测电极与所述第一触控检测电极一一对应,且在所述柔性介质层上的正投影相互重合。
  7. 如权利要求6所述的触控模组,其中在压力检测时间段,所述触控侦测芯片还用于检测各所述第二触控检测电极的信号变化。
  8. 如权利要求1-7任一项所述的触控模组,其中所述触控基板为 保护基板。
  9. 一种显示装置,包括:
    显示面板,以及
    固定于所述显示面板的出光侧的如权利要求1-8任一项所述的触控模组,其中所述触控模组的第二透明电极层与所述显示面板的出光侧相互接触。
  10. 如权利要求9所述的显示装置,其中所述显示面板为液晶显示面板、有机电致发光显示面板、阴极射线管显示面板、等离子显示面板、电子纸或电致发光显示面板中的任意一种。
  11. 一种如权利要求1-3任一项所述的触控模组的驱动方法,包括:
    在触控检测时间段,同时对第一透明电极层和第二透明电极层加载第一触控检测信号,以检测所述第一透明电极层中的各第一触控检测电极的电容值变化以判断触控位置;
    在压力检测时间段,对所述第一透明电极层或所述第二透明电极层加载第二触控检测信号,以检测由触控位置处的压力引起的各所述第一触控检测电极和所述第二透明电极层之间的电容值变化。
  12. 如权利要求11所述的驱动方法,其中所述方法包括:在压力检测时间段,对所述第二透明电极层加载第二触控检测信号,同时对所述第一透明电极层加载固定值信号;以及
    检测各所述第一触控检测电极的信号变化。
  13. 如权利要求11所述的驱动方法,其中所述方法包括:在压力检测时间段,对所述第二透明电极层加载固定值信号,同时对所述第一透明电极层加载第二触控检测信号;以及
    检测各所述第一触控检测电极的信号变化。
  14. 如权利要求11所述的驱动方法,其中所述第二透明电极层包括呈阵列排布且相互绝缘的第二触控检测电极,所述第二触控检测电极与所述第一触控检测电极一一对应且在透明柔性介质层上的正投影相互重合,
    其中所述方法包括:
    在压力检测时间段,对所述第一透明电极层加载第二触控检测信号,同时对所述第二透明电极层加载固定值信号;以及
    检测各所述第二触控检测电极的信号变化。
  15. 如权利要求11所述的驱动方法,其中所述第二透明电极层包括呈阵列排布且相互绝缘的第二触控检测电极,所述第二触控检测电极与所述第一触控检测电极一一对应且在透明柔性介质层上的正投影相互重合,其中所述方法包括:
    在压力检测时间段,对所述第一透明电极层加载固定值信号,同时对所述第二透明电极层加载第二触控检测信号;以及
    检测各所述第二触控检测电极的信号变化。
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