WO2015100773A1 - 一种单层电容式触控模块 - Google Patents

一种单层电容式触控模块 Download PDF

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Publication number
WO2015100773A1
WO2015100773A1 PCT/CN2014/070377 CN2014070377W WO2015100773A1 WO 2015100773 A1 WO2015100773 A1 WO 2015100773A1 CN 2014070377 W CN2014070377 W CN 2014070377W WO 2015100773 A1 WO2015100773 A1 WO 2015100773A1
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Prior art keywords
sensing
flexible board
capacitive touch
touch module
driving
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PCT/CN2014/070377
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English (en)
French (fr)
Inventor
林永伦
张君恺
邱杰
叶成亮
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深圳市华星光电技术有限公司
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Application filed by 深圳市华星光电技术有限公司 filed Critical 深圳市华星光电技术有限公司
Priority to US14/234,422 priority Critical patent/US9588622B2/en
Publication of WO2015100773A1 publication Critical patent/WO2015100773A1/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
    • G06F3/044Digitisers, e.g. for touch screens or touch pads, characterised by the transducing means by capacitive means
    • G06F3/0443Digitisers, e.g. for touch screens or touch pads, characterised by the transducing means by capacitive means using a single layer of sensing electrodes
    • 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
    • G06F3/04164Connections between sensors and controllers, e.g. routing lines between electrodes and connection pads

Definitions

  • a single-layer capacitive touch module in particular, relates to a soft board design of a single-layer capacitive touch screen.
  • FIG. 1 is a schematic diagram of a trace on a single-layer capacitive touch screen in the prior art.
  • 2 is a soft board design diagram of a single-layer capacitive touch screen in the prior art.
  • a sense side dot matrix 13 is provided with m drive lines 16 (T1-Tm) and n sense lines 17 (R1-Rn).
  • x n sensing points In the prior art, the m x must be The n sensing points 15 are individually drawn to the coupling area on the side of the touch point matrix 13 and connected to a pin area 12 of a flexible board 14.
  • the width of the flexible board 14 must be widened.
  • the outlet area 18 of the flexible board 14 relative to the pin area 12 is too large to be disposed on the lower frame (OLB) of the mobile phone screen, causing the soft board 14 and other components in the touch module. The crowding effect in space.
  • FIG. 3 is a soft board design diagram of another prior art single layer capacitive touch screen.
  • a double-layer flexible board 21 is disposed, and a conductive layer pattern 23 is disposed on a pin region 22 of the double-layer flexible board 21 for the m driving lines 25 (T1-Tm).
  • T1-Tm m driving lines 25
  • the present invention provides a single-layer capacitive touch module including a sensing point matrix, a driving unit, a first flexible board, and a second flexible board.
  • the sensing point matrix includes m driving lines and n sensing lines staggered to form an m x n sensing points, where each of the sensing lines and the m driving lines form m sensing points is a sensing area, and m and n are positive integers.
  • the driving unit is coupled to the driving line.
  • the first flexible board is provided with a pin area on the first side of the sensing point matrix coupled to the driving line, and the first flexible board has a first conductive pattern layer, the first A conductive pattern layer implements the bridging connection required for the drive line.
  • the second flexible board is provided with a pin area on one side of the sensing point matrix coupled to the driving line and the sensing line with respect to a second side of the first side.
  • the pin region of the first flexible board includes a number of pins of m x n.
  • the m sensing points of one of the sensing regions are respectively directly connected to the m pins of the pin area of the first flexible board on the first side of the sensing point matrix.
  • the m sensing points of one of the sensing regions are respectively directly connected to the m pins of the pin area of the second soft board on the second side of the sensing point matrix.
  • the touch module is further provided with a driving soft board, and the driving soft board and the driving unit are all close to the first side of the matrix of sensing points.
  • the opposite other side of the first flexible board coupled to the driving line may be directly folded to the rear of the dot matrix.
  • the pin area of the second flexible board includes a number of pins of m+n.
  • the second flexible board is provided with an outgoing area on the other side of the pin area of the second flexible board, and the second flexible board further has a second conductive pattern layer, and the second conductive pattern layer is The outlet area is provided with a number of pins of m+n.
  • the size of the exit area of the second flexible board can be effectively reduced and the first flexible board can be folded, and the space occupied by the first soft board and the second soft board can be reduced.
  • FIG. 1 is a schematic diagram of a trace on a single-layer capacitive touch screen in the prior art.
  • FIG. 2 is a soft board design diagram of a single-layer capacitive touch screen in the prior art.
  • FIG. 3 is a soft board design diagram of another prior art single layer capacitive touch screen.
  • FIG. 4 is a structural diagram of a single-layer capacitive touch screen according to a first preferred embodiment of the present invention.
  • FIG. 5 is a soft board design diagram of a single-layer capacitive touch screen according to a first preferred embodiment of the present invention.
  • Figure 6 is a side elevational view showing the structure of a single layer capacitive touch screen of a second preferred embodiment of the present invention.
  • FIG. 4 is a structural diagram of a single-layer capacitive touch screen according to a first preferred embodiment of the present invention.
  • FIG. 5 is a soft board design diagram of a single-layer capacitive touch screen according to a first preferred embodiment of the present invention.
  • a touch screen module 100 includes a sensing point matrix 130, a driving unit 140, a first flexible board 110, a second flexible board 120, and a driving soft board 150.
  • the sensing point matrix 130 includes m driving lines 160 (T1-Tm) and n sensing lines 170 (R1-Rn) staggered to form m.
  • Xn sensing points 165, each of the sensing lines 170 and the m driving lines 160 forming m sensing points 165 is a sensing area 180, that is, the sensing side point matrix 130 has n Sensing area 180, m and n are positive integers.
  • the driving line 160 pulls out the mxn wires to the mxn pins 135 of the first side 132 of the sensing side dot matrix 130 to be coupled to the first soft plate 110.
  • One of the sensing regions 180 additionally pulls m wires to the m pins of the second side 134 of the sensing side dot matrix 130 plus the n wires of the sensing line 170 to the sense
  • the n pins 135 of the second side 134 of the side point matrix 130 are coupled to the second soft plate 120.
  • the first flexible board 110 is provided with a pin area 112 coupled to the driving line 160 on a first side of the sensing point matrix 130, and the first flexible board 110 has a first conductive pattern thereon.
  • Layer 116, the first conductive pattern layer 116 implements the bridging connection required for the drive lines 160 (T1-Tm).
  • the first conductive pattern layer 116 functions to enable m of the driving lines 160 of each of the n sensing regions 180 to be in the first conductive pattern layer 116.
  • Line design that is connected in series. That is, the pin area 112 of the first flexible board 110 has a total of mxn pins 135.
  • the second flexible board 120 is disposed with a lead region 122 on one side of the sensing point matrix 130 coupled to the driving line 160 (T1-Tm) with respect to the second side 134 of the first side 132.
  • the sensing line 170 (R1-Rn).
  • the second flexible board 120 is provided with an outgoing area 124 on the other side of the lead area 122 of the second flexible board 120, and the second flexible board 120 further has a second conductive pattern layer 126.
  • the second conductive pattern layer 126 is provided with a number of pins 135 of m+n in the outgoing region 124.
  • the second conductive pattern layer 126 is configured to directly connect the signals of the m driving lines 160 and the n sensing lines 170 pulled by one of the sensing regions 180 to the outgoing portion of the second soft board 120. 124. That is, the pin area 122 of the second flexible board 120 has a total of m+n pins 135. The outgoing area 122 of the second flexible board 120 also has m+n pins 135.
  • the pin area 112 of the first flexible board 110 includes the number m x
  • the pin 135 of n so the first side 132 corresponding to the driving point matrix 130 also needs to be set to be m x Pin 135 of n. Therefore, the first flexible board 110 requires a large width. However, there are no remaining components (not shown) around the first flexible board 110, and the first flexible board 110 is easy to wrap around in a single layer structure, so the space configuration of the remaining components is not excluded.
  • the pin area 122 of the second flexible board 120 includes a number of pins 135 of m+n, so the second side 134 corresponding to the driving point matrix 130 also needs to be provided with a number of pins of m+n. 135.
  • the purpose of this design is to reduce the number of pins of the first flexible board 110 substantially.
  • One of the first side 132 or the second side 134 of the sensing matrix is generally designed.
  • the drive soft board 150, the drive unit 140, and the remaining components (not shown) in the touch screen module are adjacent.
  • the number of pins of the pin area 122 and the outgoing area of the second flexible board 120 is reduced, thereby reducing the width of the second flexible board 120.
  • the second soft board 120 does not crowd the remaining components. (not icon), the touch screen module has more space to set the remaining components (not icon).
  • the m sensing points 165 of one of the sensing regions 180 respectively pull out m wires wired to the first side 132 of the sensing point matrix 130 and the pin region 112 of the first flexible board 110 Pin 135 is directly connected.
  • the m sensing points 165 of one of the sensing regions 180 respectively pull out m leads wired to the second side 134 of the sensing point matrix 130 and the pin region of the second flexible board 120.
  • the foot 135 is directly connected.
  • the first soft board 110 and the second soft board 120 can be coupled to all the sensing points 165 through the sensing area 130 to complete the technical effect of a double-layer soft board in the prior art.
  • the bridge of the driving line 160 (T1-Tm) is performed by using the first touch flexible board 110, and the second soft board 120 performs message output of the sensing point matrix 130.
  • the outlet area 124 of the second flexible board 120 connected to the handheld device or the remaining components is reduced. Greatly simplify and reduce the space required for soft boards in the prior art.
  • Figure 6 is a side elevational view showing the structure of a single layer capacitive touch screen of a second preferred embodiment of the present invention.
  • the second preferred embodiment of the present invention differs from the first preferred embodiment in that the first flexible board 110 is wound around the sensing point matrix 130 to further save the first soft board 110 and the second The configuration space required for the flexible board 120.

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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)
  • Computer Networks & Wireless Communication (AREA)
  • Position Input By Displaying (AREA)

Abstract

一种单层电容式触控模块,包括一感测点矩阵,包括m条驱动线与n条感测线交错排列所组成m x n个感测点,每一所述感测线与所述m条驱动线形成m个感测点的区域为一感测区,m与n为正整数。一驱动单元,耦接所述驱动线。一第一软板,一侧设置有一引脚区于所述感测点矩阵的第一侧边耦接所述驱动线,所述第一软板上具有第一导电图案层,所述第一导电图案层实现所述驱动线所需的桥接连接方式。一第二软板,一侧设置有一引脚区于所述感测点矩阵相对于第一侧边的第二侧边耦接所述驱动线以及所述感测线。

Description

一种单层电容式触控模块 技术领域
一种单层电容式触控模块,尤涉及单层电容式触控屏的软板设计。
背景技术
参考图1与图2,图1为现有技术中单层电容式触控屏上的走线设计图。图2为现有技术中单层电容式触控屏的软板设计图。如图1所示,一感侧点矩阵13上设置有m条驱动线16(T1-Tm)与n条感测线17(R1-Rn)所组成m x n个感测点。现有技术中,必须将所述m x n个感测点15皆单独拉线至所述触控点矩阵13一侧的耦接区,再与一软板14的一引脚区12连接。由于所述软板14的引脚区12必须具有与所述感测点15相同数量的引脚,所述软板14的宽度必须跟着变宽。造成所述软板14相对所述引脚区12的一出线区18因为宽度太大而不方便设置于手机屏的下边框(OLB),造成所述软板14与触控模块中的其他组件在空间上的排挤效应。
图3为另一现有技术中单层电容式触控屏的软板设计图。与上述现有技术的差别在于采用了一双层软板21,在所述双层软板21的一引脚区22设置一导电层图案23让所述m条驱动线25(T1-Tm)相互跨接,因此可以大幅降低在所述双层软板21的一出线区24的引脚数量。因为所述双层软版21的所述引脚区22因为宽度以及厚度太大,也造成所述双层软板21在折绕上有困难而影响其应用。
技术问题
本发明的目的在于提供一种单层电容式触控模块,可以降低软板的引脚数量并且便于折绕。
技术解决方案
本发明提供一种单层电容式触控模块,其中包括一感测点矩阵、一驱动单元、一第一软板以及一第二软板。
所述感测点矩阵,包括m条驱动线与n条感测线交错排列所组成m x n个感测点,每一所述感测线与所述m条驱动线形成m个感测点的区域为一感测区,m与n为正整数。
所述驱动单元,耦接所述驱动线。
所述第一软板,一侧设置有一引脚区于所述感测点矩阵的第一侧边耦接所述驱动线,所述第一软板上具有第一导电图案层,所述第一导电图案层实现所述驱动线所需的桥接连接方式。
所述第二软板,一侧设置有一引脚区于所述感测点矩阵相对于第一侧边的第二侧边耦接所述驱动线以及所述感测线。
所述第一软板的所述引脚区包括数量为m x n的引脚。
所述感测区其中之一的m个感测点分别拉出接线在所述感测点矩阵的第一侧边与所述第一软板的引脚区的m个引脚直接连接。
所述感测区其中之一的m个感测点分别拉出接线在所述感测点矩阵的第二侧边与所述第二软板的引脚区的m个引脚直接连接。
所述触控模块进一步设置有一驱动软板,所述驱动软板及所述驱动单元皆靠近所述感测点矩阵的第一侧边。
所述第一软板与所述驱动线耦接的相对的另一侧可直接绕折至所述点矩阵的后方。
所述第二软板的引脚区包括数量为m+n的引脚。
所述第二软板在相对所述第二软板的引脚区的另一侧设置有一出线区,所述第二软板上进一步有第二导电图案层,所述第二导电图案层在所述出线区设置数量为m+n的引脚。
有益效果
可以有效缩小所述第二软板的出线区的大小以及绕折所述第一软板,减少所述第一软板与所述第二软板需占用的空间。
附图说明
图1为现有技术中单层电容式触控屏上的走线设计图。
图2为一现有技术中单层电容式触控屏的软板设计图。
图3为另一现有技术中单层电容式触控屏的软板设计图。
图4为本发明的第一优选实施例的单层电容式触控屏的结构图。
图5为本发明的第一优选实施例的单层电容式触控屏的软板设计图。
图6为本发明的第二优选实施例的单层电容式触控屏的结构的侧视图。
本发明的最佳实施方式
以下各实施例的说明是参考附加的图式,用以例示本发明可用以实施的特定实施例。本发明所提到的方向用语,例如「上」、「下」、「前」、「后」、「左」、「右」、「内」、「外」、「侧面」等,仅是参考附加图式的方向。因此,使用的方向用语是用以说明及理解本发明,而非用以限制本发明。
参考图4与图5,图4为本发明的第一优选实施例的单层电容式触控屏的结构图。图5为本发明的第一优选实施例的单层电容式触控屏的软板设计图。根据本发明的第一优选实施例,一触控屏模块100包括一感测点矩阵130、一驱动单元140、一第一软板110、一第二软板120以及一驱动软板150。
所述感测点矩阵130,包括m条驱动线160(T1-Tm)与n条感测线170(R1-Rn)交错排列所组成m x n个感测点165,每一所述感测线170与所述m条驱动线160形成m个感测点165的区域为一感测区180,意即所述感侧点矩阵130具有n个感测区180, m与n为正整数。所述驱动线160拉出mxn条接线至所述感侧点矩阵130的第一侧边132的mxn个引脚135与所述第一软版110耦接。其中之一所述感测区180另外拉出m条接线至所述感侧点矩阵130的第二侧边134的m个引脚加上所述感测线170的n条接线至所述感侧点矩阵130的第二侧边134的n个引脚135与所述第二软版120耦接。
所述第一软板110,一侧设置有一引脚区112于所述感测点矩阵130的第一侧边耦接所述驱动线160,所述第一软板110上具有第一导电图案层116,所述第一导电图案层116实现所述驱动线160(T1-Tm)所需的桥接连接方式。所述第一导电图案层116的作用在于实现让所述n个感测区180中,每个所述感测区180的m个所述驱动线160能够在所述第一导图案层116中互相串接的线路设计。意即所述第一软板110的引脚区112共有mxn个引脚135。
所述第二软板120,一侧设置有一引脚区122于所述感测点矩阵130相对于第一侧边132的第二侧边134耦接所述驱动线160(T1-Tm)以及所述感测线170(R1-Rn)。所述第二软板120在相对所述第二软板120的引脚区122的另一侧设置有一出线区124,所述第二软板120上进一步有第二导电图案层126,所述第二导电图案层126在所述出线区124设置数量为m+n的引脚135。所述第二导电图案层126用于实现将其中之一感测区180所拉出的m个驱动线160以及n个感测线170的讯号直接接线到所述第二软版120的出线区124。意即所述第二软板120的引脚区122共有m+n个引脚135。所述第二软板120的出线区122同样有m+n个引脚135。
所述第一软板110的所述引脚区112包括数量为m x n的引脚135,因此对应所述驱动点矩阵130的所述第一侧边132也需要设置数量为m x n的引脚135。因此所述第一软板110需要较大的宽度。然而在所述第一软板110的周围没有其余的组件(未图标),再者所述第一软板110为单层结构易于绕折,所以不会排挤其余组件的空间配置。
所述第二软板120的引脚区122包括数量为m+n的引脚135,因此对应所述驱动点矩阵130的所述第二侧边134也需要设置数量为m+n的引脚135。大幅度的降低相较于所述第一软板110的引脚数量,此设计的目的在于,一般设计下,所述感测矩阵的第一侧边132或第二侧边134的其中之一会邻近触控屏模块中的所述驱动软板150、所述驱动单元140以及其余组件(未图标)。本优选实施例中,减少所述第二软板120的引脚区122与出线区的引脚数量,进而降低所述第二软板120的宽度。在所述感测点矩阵130的第二侧边134靠近所述驱动软板150、所述驱动单元140以及其余组件(未图标)的情况下,所述第二软板120不会排挤其余组件(未图标),使所述触控屏模块有更多空间设置其余组件(未图标)。
参考图5中的虚线框,为所述其中之一感测区180。所述感测区180其中之一的m个感测点165分别拉出接线在所述感测点矩阵130的第一侧边132与所述第一软板110的引脚区112的m个引脚135直接连接。所述感测区180其中之一的m个感测点165分别拉出接线在所述感测点矩阵130的第二侧边134与所述第二软板120的引脚区的m个引脚135直接连接。使所述第一软板110与所述第二软板120可以透过所述感测区130耦接所有感测点165,完成现有技术中一块双层软板才能完成的技术功效。本实施例透过采用所述第一触控软板110进行所述驱动线160(T1-Tm)的桥接以及所述第二软板120进行所述感测点矩阵130的讯息输出。一方面缩小与手持装置或其余组件连接的所述第二软板120的出线区124。大大的简化与缩小现有技术中软板所需使用的空间。
图6为本发明的第二优选实施例的单层电容式触控屏的结构的侧视图。本发明的第二优选实施例与第一优选实施例的差异在于所述第一软板110绕折到所述感测点矩阵130背后,进一步节省所述第一软板110与所述第二软板120所需要的配置空间。
综上所述,虽然本发明已以优选实施例揭露如上,但上述优选实施例并非用以限制本发明,本领域的普通技术人员,在不脱离本发明的精神和范围内,均可作各种更动与润饰,因此本发明的保护范围以权利要求界定的范围为准。
本发明的实施方式
工业实用性
序列表自由内容

Claims (15)

  1. 一种单层电容式触控模块,其中包括:
    一感测点矩阵,包括m条驱动线与n条感测线交错排列所组成m x n个感测点,每一所述感测线与所述m条驱动线形成m个感测点的区域为一感测区,其中m与n为正整数;
    一驱动单元,耦接所述驱动线;
    一第一软板,一侧设置有一引脚区于所述感测点矩阵的第一侧边耦接所述驱动线,所述第一软板上具有第一导电图案层,所述第一导电图案层实现所述驱动线所需的桥接连接方式,所述感测区其中之一的m个感测点分别拉出接线在所述感测点矩阵的第一侧边与所述第一软板的引脚区的m个引脚直接连接;及
    一第二软板,一侧设置有一引脚区于所述感测点矩阵相对于第一侧边的第二侧边耦接所述驱动线以及所述感测线。
  2. 如权利要求1所述之单层电容式触控模块,其中所述第一软板的所述引脚区包括数量为m x n的引脚。
  3. 如权利要求1所述之单层电容式触控模块,其中所述感测区其中之一的m个感测点分别拉出接线在所述感测点矩阵的第二侧边与所述第二软板的引脚区的m个引脚直接连接。
  4. 如权利要求1所述之单层电容式触控模块,其中所述触控模块进一步设置有一驱动软板,所述驱动软板及所述驱动单元皆靠近所述感测点矩阵的第一侧边。
  5. 如权利要求1所述之单层电容式触控模块,其中所述第一软板与所述驱动线耦接的相对的另一侧可直接绕折至所述触控点矩阵的后方。
  6. 如权利要求1所述之单层电容式触控模块,其中所述第二软板的引脚区包括数量为m+n的引脚。
  7. 如权利要求1所述之单层电容式触控模块,其中所述第二软板在相对所述第二软板的引脚区的另一侧设置有一出线区,所述第二软板上进一步有第二导电图案层,所述第二导电图案层在所述出线区设置数量为m+n的引脚。
  8. 一种单层电容式触控模块,其中包括:
    一感测点矩阵,包括m条驱动线与n条感测线交错排列所组成m x n个感测点,每一所述感测线与所述m条驱动线形成m个感测点的区域为一感测区,其中m与n为正整数;
    一驱动单元,耦接所述驱动线;
    一第一软板,一侧设置有一引脚区于所述感测点矩阵的第一侧边耦接所述驱动线,所述第一软板上具有第一导电图案层,所述第一导电图案层实现所述驱动线所需的桥接连接方式;及
    一第二软板,一侧设置有一引脚区于所述感测点矩阵相对于第一侧边的第二侧边耦接所述驱动线以及所述感测线。
  9. 如权利要求8所述之单层电容式触控模块,其中所述第一软板的所述引脚区包括数量为m x n的引脚。
  10. 如权利要求8所述之单层电容式触控模块,其中所述感测区其中之一的m个感测点分别拉出接线在所述感测点矩阵的第一侧边与所述第一软板的引脚区的m个引脚直接连接。
  11. 如权利要求8所述之单层电容式触控模块,其中所述感测区其中之一的m个感测点分别拉出接线在所述感测点矩阵的第二侧边与所述第二软板的引脚区的m个引脚直接连接。
  12. 如权利要求8所述之单层电容式触控模块,其中所述触控模块进一步设置有一驱动软板,所述驱动软板及所述驱动单元皆靠近所述感测点矩阵的第一侧边。
  13. 如权利要求8所述之单层电容式触控模块,其中所述第一软板与所述驱动线耦接的相对的另一侧可直接绕折至所述触控点矩阵的后方。
  14. 如权利要求8所述之单层电容式触控模块,其中所述第二软板的引脚区包括数量为m+n的引脚。
  15. 如权利要求8所述之单层电容式触控模块,其中所述第二软板在相对所述第二软板的引脚区的另一侧设置有一出线区,所述第二软板上进一步有第二导电图案层,所述第二导电图案层在所述出线区设置数量为m+n的引脚。
PCT/CN2014/070377 2013-12-31 2014-01-09 一种单层电容式触控模块 WO2015100773A1 (zh)

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