WO2016013105A1 - 位置検出ユニット - Google Patents
位置検出ユニット Download PDFInfo
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- WO2016013105A1 WO2016013105A1 PCT/JP2014/069668 JP2014069668W WO2016013105A1 WO 2016013105 A1 WO2016013105 A1 WO 2016013105A1 JP 2014069668 W JP2014069668 W JP 2014069668W WO 2016013105 A1 WO2016013105 A1 WO 2016013105A1
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- position detection
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- bodies
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- G—PHYSICS
- G06—COMPUTING; CALCULATING OR COUNTING
- G06F—ELECTRIC DIGITAL DATA PROCESSING
- G06F3/00—Input 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
- G06F3/01—Input arrangements or combined input and output arrangements for interaction between user and computer
- G06F3/03—Arrangements for converting the position or the displacement of a member into a coded form
- G06F3/041—Digitisers, e.g. for touch screens or touch pads, characterised by the transducing means
- G06F3/0416—Control or interface arrangements specially adapted for digitisers
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- G—PHYSICS
- G06—COMPUTING; CALCULATING OR COUNTING
- G06F—ELECTRIC DIGITAL DATA PROCESSING
- G06F3/00—Input 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
- G06F3/01—Input arrangements or combined input and output arrangements for interaction between user and computer
- G06F3/03—Arrangements for converting the position or the displacement of a member into a coded form
- G06F3/041—Digitisers, e.g. for touch screens or touch pads, characterised by the transducing means
- G06F3/046—Digitisers, e.g. for touch screens or touch pads, characterised by the transducing means by electromagnetic means
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- G—PHYSICS
- G06—COMPUTING; CALCULATING OR COUNTING
- G06F—ELECTRIC DIGITAL DATA PROCESSING
- G06F3/00—Input 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
- G06F3/01—Input arrangements or combined input and output arrangements for interaction between user and computer
- G06F3/03—Arrangements for converting the position or the displacement of a member into a coded form
- G06F3/041—Digitisers, e.g. for touch screens or touch pads, characterised by the transducing means
- G06F3/0416—Control or interface arrangements specially adapted for digitisers
- G06F3/04166—Details of scanning methods, e.g. sampling time, grouping of sub areas or time sharing with display driving
-
- G—PHYSICS
- G06—COMPUTING; CALCULATING OR COUNTING
- G06F—ELECTRIC DIGITAL DATA PROCESSING
- G06F3/00—Input 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
- G06F3/01—Input arrangements or combined input and output arrangements for interaction between user and computer
- G06F3/03—Arrangements for converting the position or the displacement of a member into a coded form
- G06F3/041—Digitisers, e.g. for touch screens or touch pads, characterised by the transducing means
- G06F3/044—Digitisers, e.g. for touch screens or touch pads, characterised by the transducing means by capacitive means
-
- G—PHYSICS
- G06—COMPUTING; CALCULATING OR COUNTING
- G06F—ELECTRIC DIGITAL DATA PROCESSING
- G06F3/00—Input 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
- G06F3/01—Input arrangements or combined input and output arrangements for interaction between user and computer
- G06F3/03—Arrangements for converting the position or the displacement of a member into a coded form
- G06F3/041—Digitisers, e.g. for touch screens or touch pads, characterised by the transducing means
- G06F3/044—Digitisers, e.g. for touch screens or touch pads, characterised by the transducing means by capacitive means
- G06F3/0446—Digitisers, e.g. for touch screens or touch pads, characterised by the transducing means by capacitive means using a grid-like structure of electrodes in at least two directions, e.g. using row and column electrodes
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- G—PHYSICS
- G06—COMPUTING; CALCULATING OR COUNTING
- G06F—ELECTRIC DIGITAL DATA PROCESSING
- G06F3/00—Input 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
- G06F3/01—Input arrangements or combined input and output arrangements for interaction between user and computer
- G06F3/03—Arrangements for converting the position or the displacement of a member into a coded form
- G06F3/041—Digitisers, e.g. for touch screens or touch pads, characterised by the transducing means
- G06F3/044—Digitisers, e.g. for touch screens or touch pads, characterised by the transducing means by capacitive means
- G06F3/0448—Details of the electrode shape, e.g. for enhancing the detection of touches, for generating specific electric field shapes, for enhancing display quality
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- G—PHYSICS
- G06—COMPUTING; CALCULATING OR COUNTING
- G06F—ELECTRIC DIGITAL DATA PROCESSING
- G06F2203/00—Indexing scheme relating to G06F3/00 - G06F3/048
- G06F2203/041—Indexing scheme relating to G06F3/041 - G06F3/045
- G06F2203/04106—Multi-sensing digitiser, i.e. digitiser using at least two different sensing technologies simultaneously or alternatively, e.g. for detecting pen and finger, for saving power or for improving position detection
Definitions
- the present invention relates to a position detection unit that can be used for a terminal device including a display surface on which a touch panel is superimposed, for example.
- a terminal device having a display surface on which a touch panel is superimposed is frequently used as a means that allows a user to easily execute processing of information corresponding to the display position by designating a specific display position on the display surface. .
- a parallel resonance circuit, a magnetic body, etc. are incorporated in a number of loop coils provided on the display surface as detection means for detecting the position designated by the user on the tablet display surface.
- An electromagnetic induction type position detection unit has been proposed in which a position specifying member to be moved is brought close to a display surface to detect the close coordinate position as a user specified position (Patent Document 1).
- a more flexible position detection unit is provided.
- the position detection unit includes: an XY coordinate forming unit having a configuration in which an X-axis linear body composed of a plurality of linear bodies and a Y-axis linear body composed of a plurality of linear bodies intersect each other; A drive signal input unit that is provided on one end side of the Y-axis linear body, inputs a drive input signal to one end side of the plurality of Y-axis linear bodies, and is provided on one end side of the plurality of X-axis linear bodies; A position detection signal output unit that outputs a position detection signal corresponding to the designated coordinate position when an XY coordinate position of the XY coordinate formation unit is designated, wherein the plurality of Y-axis linear bodies One end is connected to the drive signal input unit, the other end is short-circuited, and the drive signal input unit selects at least two Y axis line bodies that form an input loop coil from the plurality of Y axis line bodies. Including the body selector. It is an butterfly
- the terminal device includes “the position detection unit described in the above item and a central processing unit that processes information based on a position detection signal output from the position detection unit”. It is characterized by this.
- the various embodiments of the present invention provide a more flexible position detection unit.
- FIG. 1 is a schematic diagram of a terminal device 1 according to the first embodiment of the present invention.
- FIG. 2 is a block diagram showing a configuration of the terminal device 1 of FIG.
- FIG. 3 is an electrical connection diagram showing a detailed configuration of the position detection unit 10 of FIG.
- FIG. 4 is a conceptual diagram showing a switch management table provided in the designated position detection control unit 16.
- FIG. 5 is a conceptual diagram showing a switch management table provided in the designated position detection control unit 16.
- FIG. 6 is a conceptual diagram of an input loop coil formed by the position detection unit 10 of FIG.
- FIG. 7 is a conceptual diagram showing a switch management table provided in the designated position detection control unit 16.
- FIG. 8 is a conceptual diagram showing a switch management table provided in the designated position detection control unit 16.
- FIG. 1 is a schematic diagram of a terminal device 1 according to the first embodiment of the present invention.
- FIG. 2 is a block diagram showing a configuration of the terminal device 1 of FIG.
- FIG. 3 is an electrical connection diagram showing
- FIG. 10 is a diagram illustrating a specific structure of the Y-axis line portion 12 constituting the XY coordinate forming portion according to the first embodiment.
- Fig.11 (a) is a figure which shows typically the edge part of the conventional Y-axis line part.
- FIG. 11B is a diagram schematically showing a partial cross section of the end portion of the conventional Y-axis line portion.
- FIG. 12 is a diagram schematically illustrating the structure of the end portion of the Y-axis linear body constituting the Y-axis line portion according to the first embodiment.
- FIG. 13 is a block diagram illustrating a configuration of the terminal device 100 according to the second embodiment.
- FIG. 10 is a diagram illustrating a specific structure of the Y-axis line portion 12 constituting the XY coordinate forming portion according to the first embodiment.
- Fig.11 (a) is a figure which shows typically the edge part of the conventional Y-axis line part.
- FIG. 11B is a diagram schematic
- FIG. 14 is an electrical connection diagram showing a detailed configuration of the position detection unit 110 of FIG.
- FIG. 15 is a conceptual diagram showing a switch management table provided in the designated position detection control unit 116.
- FIG. 16 is a conceptual diagram showing a switch management table provided in the designated position detection control unit 116.
- FIG. 17 is a conceptual diagram of an input loop coil formed by the position detection unit 110 of FIG.
- FIG. 18 is a conceptual diagram of the X and Y axes formed by the position detection unit 110 of FIG.
- FIG. 19 is a diagram showing a specific structure of the Y-axis line portion 112 that constitutes the XY coordinate forming portion according to the second embodiment.
- FIG. 20 is a diagram illustrating a specific structure of the Y-axis line portion 112 constituting the XY coordinate forming portion according to the second embodiment.
- FIG. 20 is a diagram showing a specific structure of the X-axis line part 111 and the Y-axis line part 112 that constitute the XY coordinate forming part according to the second embodiment.
- FIG. 22 is a block diagram showing the configuration of the terminal device 200 according to the third embodiment of the present invention.
- FIG. 23 is an electrical connection diagram showing a detailed configuration of the position detection unit 210 of FIG.
- FIG. 24 is a conceptual diagram of the X and Y axes formed by the position detection unit 210 of FIG.
- FIG. 25 is a diagram showing a specific structure of the Y-axis line part 212 that constitutes the XY coordinate forming part according to the third embodiment.
- a terminal device 1 including a display surface on which a position designation detection device according to this embodiment is superimposed will be described.
- a smartphone is described as an example of the terminal device 1, but the present invention is not limited thereto.
- terminal devices include tablet mobile terminals, mobile phones, PDAs, portable game machines, laptop computers, desktop PCs, various business terminals (registers, ATM terminals, ticket vending machines, etc.), handwritten signature authentication terminals And a large display device for electronic advertisement.
- the position detection unit 10 in which the position detection unit 10 is provided so as to overlap the position detection unit display unit 30 will be described, but the present invention is not limited to this.
- the position detection unit 10 according to the present embodiment may be applied to a terminal device that is not provided with the display unit 30 such as a digitizer-dedicated tablet or is connected to a display unit provided separately. Is possible.
- FIG. 1 is a schematic diagram of a terminal device 1 according to the first embodiment of the present invention.
- the terminal device 1 according to the present embodiment includes at least a position detection unit 10 and a display unit 30.
- the configuration of the position detection unit 10 and the display unit 30 will be described in more detail.
- positioned on the insulating layer part 13 and the protective layer part 31 which covers the display part 30 and the position detection unit 10 are included.
- an XY coordinate forming unit is configured by the Y axis line part 12, the insulating layer part 13, and the X axis line part 11, and the user's contact and proximity operation positions are detected as XY coordinate positions on the operation display surface of the protective layer part 31.
- the user can read the information display projected on the display unit 30 from the protective layer unit 31 side and specify a specific information display material by the position specifying tool 2 having a pen shape that the user holds. Has been made.
- the XY coordinate forming unit constituting the position detection unit 10 is configured by a transparent electrode or the like in order to describe an example in which the XY coordinate forming unit is provided so as to overlap the upper surface of the display unit 30.
- the position detection unit 10 according to the present embodiment can also be realized as an embedded touch sensor in which the XY coordinate forming unit constituting the position detection unit 10 is provided on the lower surface of the display unit 30.
- the position detection unit 10 is a terminal device such as a digitizer tablet that is not provided with the display unit 30 or is connected to a display unit provided separately, or a terminal device such as an electronic blackboard. It is also possible to apply to. In such a case, the XY coordinate forming unit constituting the position detection unit 10 does not necessarily need to be constituted by a transparent electrode or the like.
- the position specifying tool 2 may be any position as long as the specified XY coordinate position can be detected by the position detection unit 10 according to the present embodiment, and is not limited to a pen shape. There is no limitation.
- FIG. 2 is a block diagram showing the configuration of the terminal device 1 according to the first embodiment of the present invention.
- the terminal device 1 according to the present embodiment includes at least a position detection unit 10, a central processing unit 20, and a display unit 30 as its constituent elements.
- a storage unit composed of ROM, RAM, non-volatile memory, etc., an antenna and a wireless communication processing unit for wireless communication with a remotely installed terminal, and preferential connection with other terminals It has various connector parts to do. That is, FIG. 2 shows the configuration of the terminal device 1 according to the first embodiment of the present invention, but the terminal device 1 does not have to include all of the components shown here, and has a configuration in which some are omitted. It is also possible to take. Moreover, the terminal device 1 can also contain things other than the component shown here.
- the position detection unit 10 is disposed on the upper surface of the display unit 30 and includes a Y-axis line part 12, an X-axis line part 11, and an insulating layer part 13.
- a known substrate material can be used.
- PET polyethylene terephthalate
- PC polycarbonate
- the central processing unit 20 exchanges the information display signal S1 with the display unit 30.
- the central processing unit 20 performs an operation in which a position user makes a specific position on the XY display surface of the display unit 30 contact or approach the position specifying tool 2 having a pen shape on the display surface of the display unit 30 (this is referred to as “pen touch”).
- the display position detection signal S2 indicating the designated position is received from the designated position detection control unit 16 when designated by performing “operation”.
- the central processing unit 20 processes various information.
- the display unit 30 displays information based on the information display signal S1 generated by the central processing unit 20 based on image information stored in a storage unit (not shown), for example.
- the display unit 30 includes a liquid crystal display, and includes a protective layer 31 on the outermost surface with the position detection unit 10 interposed therebetween.
- the protective layer 31 is made of glass.
- the position detection unit 10 includes a designated position detection control unit 16, an XY coordinate forming unit including an X-axis line unit 11, a Y-axis line unit 12, and an insulating layer 13, a drive signal output unit 14, And a detection signal output unit 15.
- the designated position detection control unit 16 controls the overall operation of the position detection unit 10 in cooperation with the central processing unit 20. More specifically, the designated position detection control unit 16 supplies the switching signal S10 to the drive signal input unit 14 and the position detection signal output unit 16, and the first signal input switch disposed in the drive signal input unit 14 The on / off operation of the 51Y and the second signal input switch 52Y and the on / off operation of the third signal input switch 61X and the fourth signal input switch 62X are controlled. Further, the designated position detection control unit 16 receives the designated position detection signal S14 from the position detection signal output unit 15, and provides it to the central processing unit 20 as the designated position detection signal S2.
- the first and second input signal switches 51Y and 52Y connected to the Y axis line bodies Y1... YM constituting the Y axis line body 12 and the X axis line unit 11 are provided.
- the switch management table (FIG. 4) for generating the switching signal S10 is provided.
- the designated position detection control unit 16 generates the switching signal S10 based on the switch management table, and the first and second input signal switches 51Y and 52Y and the third and fourth input signal switches 61X and 62X. The on / off operation of each switch is controlled.
- X axis part 11 and Y axis part 12 The X axis part 11 and the Y axis part 12 together with the insulating layer part 13 constitute an XY coordinate forming part.
- the X-axis line portion 11 extends linearly in the Y-axis direction of the XY coordinate plane and is arranged in parallel at equal intervals in the X-axis direction.
- N (for example, 32) linear X-axis bodies X1... XN.
- each X-axis line body X1... XN is connected to the third and fourth signal input switches 61X and 62X, the other end is short-circuited to the common signal line 67, and the other ends of each X-axis line are connected to each other. Are connected to each other.
- the X-axis line bodies X1... XN form an output loop coil by selecting at least two X-axis line bodies in accordance with the control of the designated position detection control unit 16.
- the Y-axis line portion 12 extends linearly in the X-axis direction of the XY coordinate plane and is a plurality of M (for example, 20) straight lines arranged in parallel at equal intervals in the X-axis direction.
- each Y-axis linear body Y1... YM is connected to the first and second signal input switches 51Y and 52Y, the other end is short-circuited to the common signal line 57, and the other ends of each Y-axis line are connected to each other. Are connected to each other.
- the Y-axis line bodies Y1... YM form an input loop coil by selecting at least two Y-axis line bodies in accordance with the control of the designated position detection control unit 16.
- the X-axis line bodies X1... XN and the Y-axis line bodies Y1... YM constituting the XY coordinate detection section are alternately crossed so as to be orthogonal to each other with the insulating layer portion 13 interposed therebetween. . Then, by the stacked X-axis line part 11 and Y-axis line part 12, as the XY coordinate position on the display surface of the display part 30, that is, the operation display surface of the protective layer part 31, the X-axis line body X1.
- the coordinate position can be specified by the intersection of the Y-axis line bodies Y1.
- the input is made from an input loop coil formed by at least two Y-axis linear bodies selected by the drive signal input unit 14.
- the position detection signal output unit 15 is transmitted to the output loop coil formed by at least two X-axis linear bodies selected by the position detection signal output unit 15 via the position specifying tool 2. Outputs a position detection signal S14.
- the drive signal input unit 14 is provided on one end side of the plurality of Y axis line bodies constituting the Y axis line unit 12, and the drive pulse signal S4 generated by the drive signal input unit 14 is generated on one end side of the plurality of Y axis line bodies. input.
- the drive signal input unit 14 includes a first signal input switch 51Y, a second signal input switch 52Y, a common signal line 53 to which each first signal input switch 51Y is connected, and each second signal.
- the first signal input switch 51Y is connected to one end of the Y-axis line bodies Y1, Y2,... Y (M-2), Y (M-1), YM corresponding to each Y-axis line body. Then, the drive pulse signal S4 generated in the input drive pulse generation circuit 55 based on the control signal S6 through the common signal line 53 and transformed into a rectangular wave via the inverter 56 and the amplifier 58 is received, and each Y-axis linear body is received. Is supplied with a drive pulse signal S4. That is, the first signal input switch 51Y has one or a plurality of Y-axis lines Y1, Y2,... Y (M-2), Y (M-1), YM to which the drive pulse signal S4 is input. It functions as a first selection unit for selecting the Y axis line body.
- One end of the second signal input switch 52Y is a subsequent stage of the first signal input switch 51Y, and one end of the Y-axis linear bodies Y1, Y2,... Y (M-2), Y (M-1), YM. Are connected corresponding to each Y-axis linear body.
- the other end of the second signal input switch 52Y is connected to the ground via the common signal line 54. That is, the second signal input switch 52Y is provided corresponding to each Y-axis line body between one end of each corresponding Y-axis line body and the ground.
- the second signal input switch 52Y forms an input loop coil together with the Y-axis line selected by the first signal input switch 51Y by turning on the second signal input switch 52Y. 2 function as a selection unit.
- the first selection unit and the second selection unit function as a Y-axis line body selection unit for selecting at least two Y-axis line bodies that form an input loop coil from a plurality of Y-axis line bodies.
- Position detection signal output unit 15 The position detection signal output unit 15 is provided on one end side of a plurality of X-axis linear bodies constituting the X-axis line unit 11, and the designated coordinate position when the position designation tool 2 designates the XY coordinate position of the XY coordinate formation unit The designated position detection signal S14 corresponding to is output.
- the position detection output unit 15 includes a third signal input switch 61X, a fourth signal input switch 62X, a common signal line 63 to which each third signal input switch 61X is connected, and each second signal.
- a common signal line 64 to which an input switch 62X is connected, a changeover switch ST3, and an electromagnetic induction signal output circuit 66 having a differential amplifier circuit configuration are included.
- the third signal input switch 61X is connected to one end of the X-axis line bodies X1, X2,... X (N-2), X (N-1), XN corresponding to each X-axis line body. And, it is connected to the non-inverting input terminal of the electromagnetic induction signal output circuit 66 of the differential amplifier circuit configuration through the common signal line 63 and via the changeover switch ST3. That is, the third signal input switch 61X is connected to one end side of each X-axis line body and selects an X-axis line body that forms an output loop coil.
- One end of the fourth signal input switch 62X is a subsequent stage of the third signal input switch 61X, and one end of the X-axis line bodies X1, X2... X (N-2), X (N-1), XN. Are connected to each X-axis line body.
- the other end of the fourth signal input switch 62X is connected to the inverting input end of the electromagnetic induction signal output circuit 66 through the common signal line 64 together with the ground. That is, the fourth signal input switch 62X is connected to one end side of each X-axis linear body, and selects the X-axis linear body that forms an output loop coil together with the X-axis linear body selected by the third signal input switch 61X. To do.
- the third signal input switch 61X and the fourth signal input switch 62X function as an X-axis line body selection unit that selects at least two X-axis line bodies that form an output loop coil.
- FIG. 4 and 5 are conceptual diagrams showing a switch management table provided in the designated position detection control unit 16.
- the Y-axis line body Y1, Y2... Y (M-2), Y (M-1), YM constituting the Y-axis line section 11 is used as an input loop. It is used for coil formation, that is, for controlling on / off operation of the first signal input switch 51Y and the second signal input switch 52Y connected to one end of each Y-axis line body 62X.
- the designated position detection control unit 16 generates the switching signal S10 based on the table, and the drive signal input unit 14 receiving the switching signal S10 controls the signal input switches 51Y and 52Y to combine one or a plurality of Y-axis linear bodies. To form the input loop coils LY1... LYK.
- Y-axis line bodies 71 constituting the Y-axis line part 12 are shown in the vertical axis direction, and input loop coil numbers 72 (LY1 to LY1) formed by the Y-axis line bodies in the horizontal axis direction.
- LYK: LY7 is shown in the example of FIG.
- the first signal input switch 51Y arranged corresponding to one or a plurality of Y-axis linear bodies marked with “a” in the figure is turned on based on the switching signal S10 received from the designated position detection control unit 16. Operate.
- the second signal input switch 52Y arranged corresponding to one or a plurality of Y-axis linear bodies marked with “b” in the figure. To turn on.
- FIG. 6 is a diagram conceptually showing an input loop coil formed as a result of the first and second signal input switches 51Y and 52Y being turned on by the switching signal S10 generated based on the table shown in FIG. is there.
- the input loop coil number LY1 in the table of FIG. 4 “a” is added to the Y-axis line body Y1, and the first signal input switch 51Y1 corresponding to the Y-axis line body Y1 is turned on.
- “b” is attached to the Y-axis line bodies Y5 and Y6, and the second signal input switches 52Y5 and 52Y6 corresponding to the Y-axis line bodies Y5 and Y6 are turned on.
- an input loop coil LY1 including the Y-axis line body Y1 and the Y-axis line bodies Y5 and Y6 is formed.
- 22 X-axis line bodies 73 constituting the X-axis line part 11 are shown in the vertical axis direction, and output loop coil numbers 74 ( LX1... LXL) is shown.
- the third signal input switch 61X arranged corresponding to one or a plurality of X-axis linear bodies with “a” in the figure is turned on based on the switching signal S10 received from the designated position detection control unit 16. Operate.
- the fourth signal input switch 62X arranged corresponding to one or a plurality of X-axis linear bodies with “b” in the drawing. To turn on.
- FIG. 6 is a diagram conceptually showing an output loop coil formed as a result of the third and fourth signal input switches 61X and 62X being turned on by the switching signal S10 generated based on the table shown in FIG. is there.
- the output loop coil number LX1 in the table of FIG. 5 “a” is added to the X-axis line body X1, and the third signal input switch 61X1 corresponding to the X-axis line body X1 is turned on.
- “b” is added to the X-axis line bodies X5 and X6, and the fourth signal input switches 62X5 and 62X6 corresponding to the X-axis line bodies X5 and X6 are turned on.
- an X-axis line body X1 and an output loop coil LX1 constituted by the X-axis line bodies X5 and X6 are formed.
- output loop coils LX2, LX3... LXL (LY9 in the example of FIG. 5) are formed as shown in FIG.
- the on / off operation of the third and fourth signal input switches is controlled based on the switch management table shown in FIG. 5, whereby one or a plurality of output loop coils LX are controlled from a plurality of X-axis linear bodies.
- the output loop coils LX1,... Formed by sequentially switching the X-axis line bodies selected by the third and fourth signal input switches 61X, 62X based on the switch management table shown in FIG. LXL is also switched sequentially.
- the drive signal input unit 14 sequentially turns on the first and second signal input switches in the reference detection cycle, thereby sequentially driving the input loop coils LY1, LY2,.
- An induction electromagnetic field is generated in the Y-axis line portion 12 by passing a signal S4, that is, a drive input pulse current.
- the user designates the coordinate position by performing a pen touch operation on the XY coordinate plane of the XY coordinate forming unit with the pen-type position designation tool 2.
- the position specifying tool 2 has a resonance circuit including an induction coil and a resonance capacitor, and the induction coil and the resonance capacitor are generated by the electromagnetic field generated by the input loop coils LY1. causes a tuned resonance current. Then, an induction voltage is induced in the output loop coils LX1... LXL at the position where the pen touch operation is performed based on the induction electromagnetic field generated in the induction coil based on the tuning resonance current.
- the position detection signal output unit 15 outputs a detection voltage based on the induction voltage induced by the output loop coils LX1... LXL formed by the third and fourth signal input switches 61X and 62X as an electromagnetic induction signal output.
- the circuit 66 receives the signal and outputs it as a designated position detection output signal S12. Then, the output designated position detection output signal S12 is sent to the designated position detection control unit 16 as a position detection output signal S14 via the synchronous detection circuit.
- the on-operation period of the third and fourth signal input switches 61X and 62X of the position detection signal output unit 15 is the first and second signal input switches 51Y of the drive signal input unit 14, The timing is selected to make a round during each ON operation period of 52Y.
- position detection outputs can be obtained from all the output loop coils LX1... LXL during each drive period in which the drive input pulse currents flow through the input loop coils LY1.
- a wire such as a conducting wire that forms the axial body according to the present embodiment includes a predetermined DC resistance component.
- the first and second signal input switches 51Y and 52Y and the third and fourth signal input switches 61X and 62X are turned on based on the tables shown in FIGS.
- the input loop coil LY and the output loop coil LX were formed.
- the configuration of the axis body forming each loop coil for example, the width of each loop coil or between each loop coil It is possible to change the interval).
- each input loop coil is configured with three or four Y-axis lines sandwiched therebetween, but in the example shown in FIG. 7A, each input loop coil is configured. 5 or 6 Y-axis lines are sandwiched between them.
- FIG. 7B the widths W1 and W2 of the individual input loop coils formed by the Y-axis body can be changed.
- the width of the input loop coil itself is configured to sandwich three Y-axis linear bodies as in the example shown in FIG. 4, but each input loop coil LY1. ... LY5 is not formed adjacent to one another, but is configured to sandwich one Y-axis line (for example, Y-axis line Y2 between LY1 and LY2). Accordingly, as shown in FIG. 8B, the center interval P1 between the adjacent input loop coils is formed wider than the example of the input loop coil shown in FIG.
- the input loop coil LY is described as an example, but the same control can naturally be performed in the output loop coil LX.
- FIG. 9 shows three switch management tables (low-definition mode table, high-definition mode table, and normal-mode table) having different configurations of the respective axes forming the loop coil as in the examples shown in FIGS. It is a figure which shows the processing flow at the time of providing the table for Y-axis line parts 12 (namely, for input loop coils) and X-axis line part 11 (namely, for output loop coils), respectively.
- the low-definition mode table is formed with a wider space between the loop coils formed by the axial body than the normal mode table.
- the high-definition mode table is formed so that the interval between the loop coils formed by the axis body is narrower than that of the normal mode table.
- the central processing unit 20 applies any one of the table for low-definition mode, the table for high-definition mode, and the table for normal mode as the switch management table applied to the Y-axis line portion and the X-axis line portion.
- Is selected (ST101). The selection is selected by a user or an application in accordance with a user operation or based on a touch operation situation.
- the normal mode table is selected when a standby application is executed.
- the low-definition mode table is selected when an application that does not require a fine pen touch operation to the user, such as a telephone application, an image reproduction application, or an image capturing application, is executed.
- the high-definition mode table is selected when an application that requests a fine pen touch operation to the user, such as a character input application or a drawing application, is executed.
- the designated position detection control unit 16 selects either the low-definition mode table, the high-definition mode table, or the normal mode table according to the selection. These tables are set for reference (ST102 to ST104). Then, the designated position detection control unit 16 generates a switching signal S10 according to the set switch management table and sends it to the drive signal input unit 14 and the position detection signal output 15 (ST105).
- the drive signal input unit 14 that has received the switching signal S10 controls the ON operation of the first and second signal input switches 51Y and 52Y based on the switching signal S10, and is for input constituted by a Y-axis linear body.
- the loop coil LY is switched (ST106).
- the position detection signal output unit 15 that has received the switching signal S10 is configured by an X-axis linear body by controlling the ON operation of the third and fourth signal input switches 61Y and 62Y based on the switching signal S10.
- the output loop coil LX is switched (ST107).
- the position detection signal output unit 15 uses the input loop coil and the output loop coil formed in ST106 and ST107, and the coordinate position of the pen touch operation performed by the position designator 2 on the XY coordinate plane of the XY coordinate formation unit. Is detected (ST108). Then, the position detection signal output unit 15 generates a position detection output signal S14 based on the detected coordinate position and sends it to the designated position detection control unit 16 (ST109). The designated position detection control unit 16 that has received this sends the designated position detection signal S2 to the central processing unit 20 based on the received detection output signal S14, and ends this processing.
- the process is repeated at a predetermined cycle.
- three tables having different intervals between the loop coils formed by the axial line bodies are used.
- tables having different widths, numbers, etc. of the respective axis line bodies constituting the individual loop coils are prepared. It is also possible. As described above, by using a plurality of tables having different configurations of the respective axis bodies forming the loop coil, it becomes possible to temporarily increase the detection accuracy of the pen touch operation, or to change the detection speed and the detectable range.
- the first and second signal input switches 51Y and 52Y connected to the Y-axis linear body, and the third and fourth signal inputs connected to the X-axis linear body using the switch management table.
- the on operation of the switches 61Y and 62Y is controlled. However, for example, by always turning on each signal input switch and controlling the off operation of each switch based on the switching signal S10 generated based on the switch management table, each input loop coil and output loop coil Can be formed.
- FIG. 10 is a view showing a specific structure of the Y-axis line portion 12 constituting the XY coordinate forming portion according to the present embodiment.
- each Y-axis line body constituting the Y-axis line portion 12 extends linearly, and is disposed on the insulating layer portion 13 in parallel at equal intervals.
- One end of each Y-axis linear body is connected to the first and second signal input switches 51Y and 52Y via the sensor connection drawing part 76.
- the other ends of the Y-axis linear bodies are short-circuited and connected to each other via a common signal line 57.
- the outer peripheral electrode portion 75 is disposed at a position on the insulating layer portion 13 corresponding to the peripheral edge of the display portion 30.
- the outer peripheral electrode portion 75 is installed for the purpose of reducing various noise components and static electricity that are superimposed on the display portion 30 and the Y-axis body.
- the outer peripheral electrode portion 75 is used as one of the Y-axis line bodies constituting the Y-axis line portion 12. That is, one end of the outer peripheral electrode portion 75 is connected to the first and second signal input switches 51Y and 52Y via the sensor connection lead portion 76 in the same manner as the Y-axis linear body, and the outer edge of the Y-axis linear body is connected to the Y-axis linear body.
- the outer peripheral electrode portion 75 functions as the common signal line 57 and is connected to each Y-axis linear body.
- the outer edge of the Y-axis line body YM is extended in parallel with the Y-axis line body YM.
- the outer peripheral electrode portion 75 is connected to the first and second signal input switches 51Y and 52Y via the sensor connection lead portion 76.
- a part of the outer peripheral electrode portion 75 is formed as a Y-axis line body Y1, and each Y-axis line body Y2 ... Y (M-1) is arranged adjacent to the Y-axis line body in the present embodiment.
- a part of the outer peripheral electrode portion 75 is formed as a Y-axis line body YM adjacent to it.
- each axis line body is extended in a direction orthogonal to the Y-axis line body.
- FIG. 11 is a diagram schematically showing the structure of the conventional Y-axis line portion
- FIG. 12 is a diagram schematically showing the structure of the end portion of the Y-axis line body constituting the Y-axis line portion according to this embodiment.
- FIG. 11A is a diagram schematically showing an end portion of a conventional Y-axis line portion.
- FIG. 11B is a diagram schematically showing a partial cross section of the end portion of the conventional Y-axis line portion.
- each of the constituting axial line bodies 77 and 78 is connected by the lead wire 81c between the linear bodies, so that the combination of the constituting axial line bodies is fixed,
- Each loop coil is formed.
- each loop coil comprised is arrange
- the inter-wire lead 81c is disposed on the surface opposite to the surface on which each axial body of the insulating layer 79 is disposed.
- the loop coil is formed by connecting the said lead wire 81c between wire bodies, and the edge part of each axis line body via interlayer connection part 81a, 81b. Therefore, the through-hole 80 is indispensable for the insulating layer 79.
- each Y-axis linear body Y1... YM may be formed so that one end thereof is connected to the common signal lines 53 and 54 to the first and second signal input switches 51Y and 52Y. That is, as shown in FIG. 12, it becomes possible to arrange all the Y-axis linear bodies Y1... YM on one surface of the insulating layer 13. Therefore, an insulating layer having a through hole necessary for the conventional Y-axis body is not necessary. Thereby, the insulating layer 13 can use an inexpensive and flexible transparent film material such as polyethylene terephthalate (PET) or polycarbonate (PC).
- PET polyethylene terephthalate
- PC polycarbonate
- the second signal input switches 51Y and 52Y the Y-axis line body to which the drive pulse signal S4 is input, that is, the Y-axis line body forming the input loop coil is sequentially switched and selected.
- an X-axis linear body forming an output loop coil is formed by the third and fourth signal input switches 61Y and 62Y connected to one end of the plurality of X-axis linear bodies X1. It is selected by switching sequentially.
- a plurality of axial bodies forming each loop coil can be used in parallel, and the influence of the DC resistance component included in the conducting wire forming each axial body can be reduced.
- the loop coils as found in the conventional XY coordinate detection unit physically interfere with each other. It will not be configured like this. Therefore, it is not necessary to provide a special structure such as a through hole in the insulating layer 13, and the options for the insulating layer 13 can be expanded.
- Each component which comprises the terminal device 100 which concerns on 2nd embodiment of this invention is the same as the component of the terminal device 1 which concerns on 1st embodiment shown in FIG. 2, as shown in FIG.
- the switch management tables provided in the X-axis line unit 111, the Y-axis line unit 112, and the designated position detection control unit 116 constituting the XY coordinate forming unit are different. Therefore, the selection operation of the X-axis line bodies X1... XN constituting the X-axis line part 111 and the selection operation of the Y-axis line bodies Y1. A new function is given to the terminal device 100.
- each Y-axis line body Y1... YM is used for forming an input loop coil for the electromagnetic induction method, and the remaining part. Is used as a Y-axis electrode for the electrostatic capacity method.
- a part of each X-axis linear body X1... XN is used for forming an output loop coil for an electromagnetic induction system, and the remaining part is an X-axis for an electrostatic capacity system. Used as an electrode. Therefore, each axis body constituting the axis portions 111 and 112 in the present embodiment can be used as a Y-coordinate electrode or an X-coordinate electrode of the electrostatic capacity method.
- FIG. 13 is a block diagram showing the configuration of the terminal device 100 according to the second embodiment of the present invention.
- the terminal device 100 according to the present embodiment includes at least a position detection unit 110, a central processing unit 20, and a display unit 30 as its components.
- the position detection unit 110 is disposed on the upper surface of the display unit 30 and includes a Y-axis line part 112, an X-axis line part 111, and an insulating layer part 13.
- the central processing unit 20 exchanges the information display signal S1 with the display unit 30. Further, the central processing unit 20 is an operation in which the user makes a specific position on the XY display surface of the display unit 30 contact or approach the position specifying tool 2 having a pen shape on the display surface of the display unit 30 (this is referred to as “pen touch operation”).
- the display position detection signal S2 indicating the specified position is received from the specified position detection control unit 116.
- the central processing unit 20 operates the user to bring a specific position on the XY surface of the display unit 30 into contact with or close to the fingertip 3 on the display surface of the display unit 30 (this). Is designated by performing a “finger touch operation”), a display position detection signal S2 indicating the designated position is received from the designated position detection control unit 116. Details of the position detection unit 110 will be described later.
- the position detection unit 110 includes a designated position detection control unit 116, an XY coordinate forming unit including an X-axis line unit 111, a Y-axis line unit 112, and an insulating layer 13, a drive signal output unit 114, a position And a detection signal output unit 115.
- the designated position detection control unit 116 controls the entire operation of the position detection unit 100 in cooperation with the central processing unit 20. More specifically, the designated position detection control unit 116 supplies the switching signal S10 to the drive signal input unit 114 and the position detection signal output unit 115, and the first signal input switch disposed in the drive signal input unit 114. The on / off operation of the 51Y and the second signal input switch 52Y and the on / off operation of the third signal input switch 61X and the fourth signal input switch 62X are controlled. Further, the designated position detection control unit 116 receives the designated position detection signal S14 from the position detection signal output unit 115 and provides it to the central processing unit 20 as the designated position detection signal S2.
- the first and second input signal switches 51Y and 52Y connected to the Y axis line body Y1... TM constituting the Y axis line body 112 and the X axis line unit 11 are provided.
- the switch management table (FIG. 15) which produces
- the designated position detection control unit 116 generates the switching signal S10 based on the switch management table, and the first and second input signal switches 51Y and 52Y and the third and fourth input signal switches 61X and 62X. The on / off operation of each switch is controlled.
- the X axis part 111 and the Y axis part 112 constitute an XY coordinate forming part together with the insulating layer part 13.
- the X-axis line portion 111 extends linearly in the Y-axis direction of the XY coordinate plane and is arranged in parallel at equal intervals in the X-axis direction.
- N (for example, 32) linear X-axis line bodies X1, X2,... XN.
- the predetermined X-axis linear bodies X1, X2, X4, X6 As in the first embodiment, one end side is connected to the third and fourth signal input switches 61X and 62X, and the other end side is short-circuited, and is connected to the other end side of each axis body via the common signal line 67. Are connected to each other. On the other hand, one end side of the remaining axial bodies X3, X5, X7... X (N-4), X (N-2) is connected to the third and fourth signal input switches 61X, 62X. However, they are formed independently of each other without being connected to the common signal line 67 on the other end side of each axial body.
- XN are at least in accordance with the control of the designated position detection control unit 16.
- an output loop coil used in the electromagnetic induction system is formed.
- X-axis linear bodies X1... XN, X3, X5, X7... X (N-4), X (N-2) are controlled according to the control of the designated position detection control unit 16.
- Individual X-axis electrodes used in the capacitive method are formed.
- the Y-axis line part 112 extends linearly in the X-axis direction of the XY coordinate plane and is M (for example, 20) linearly arranged in parallel at equal intervals in the X-axis direction.
- the predetermined Y axis linear bodies Y1, Y2, Y4, Y6 As in the first embodiment, one end side is connected to the first and second signal input switches 51Y and 52Y, and the other end side is short-circuited, and is connected to the other end side of each axis body via the common signal line 57. Are connected to each other.
- one end side of the remaining axial bodies Y3, Y5, Y7... Y (M-4), Y (M-2) is connected to the first and second signal input switches 51X, 52X. However, they are formed independently of each other without being connected to the common signal line 57 on the other end side of each axial body.
- the Y axis linear bodies Y1... YM are at least in accordance with the control of the designated position detection control unit 16. By selecting two axis bodies, an input loop coil used in the electromagnetic induction system is formed.
- Y axis linear bodies Y1... YM, Y3, Y5, Y7... Y (M-4), Y (M-2) are controlled according to the control of the designated position detection control unit 16.
- Individual Y-axis electrodes used in the capacitance method are formed.
- the coordinate position can be specified by the intersection of XN and Y-axis linear bodies Y1, Y2,.
- the designated position tool 2 designates the XY coordinate position of the XY coordinate forming unit as in the first embodiment.
- the position detection signal output unit 115 selects the input signal input from the input loop coil formed by the at least two Y-axis lines selected by the drive signal input unit 114 via the position specifying tool 2.
- the position detection signal S14 is output from the position detection signal output unit 115 by transmitting to the output loop coil formed by the at least two X-axis linear bodies.
- the fingertip 3 is selected by the drive signal input unit 114 when the XY coordinate position of the XY coordinate forming unit is designated.
- the electrostatic field formed by the Y-axis body and the position detection signal output unit 115 is changed to an electrostatic value corresponding to the user's finger.
- the position detection signal output unit 115 detects this change in electrostatic value to generate a specified position detection signal S14, and the position detection signal output unit 115 outputs the specified position detection signal S14.
- the drive signal input unit 114 is provided on one end side of the plurality of Y axis line bodies constituting the Y axis line unit 112, and the drive pulse signal S4 generated by the drive signal input unit 114 is generated on one end side of the plurality of Y axis line bodies. Input to each Y-axis linear body.
- the drive signal input unit 114 includes a first signal input switch 51Y, a second signal input switch 52Y, a common signal line 53 to which each first signal input switch 51Y is connected, and each second signal.
- the first signal input switch 51Y is connected to one end of the Y-axis line bodies Y1... Y (M-1), YM corresponding to each Y-axis line body. Then, the drive pulse signal S4 generated in the input drive pulse generation circuit 55 based on the control signal S6 through the common signal line 53 and transformed into a rectangular wave via the inverter 56 and the amplifier 58 is received, and each Y-axis linear body is received. Is supplied with a drive pulse signal S4. That is, the first signal input switch 51Y functions as a first selection unit that selects one or a plurality of Y-axis linear bodies to which the drive pulse signal S4 is input from the Y-axis linear bodies Y1... YYM.
- YM are electromagnetic induction type input loop coils. It is used as a Y-axis body to be formed.
- Y-axis linear bodies other than those described above that is, Y-axis linear bodies Y3, Y5, Y7... Y (M-4), Y (M-2) are used as Y-axis electrodes of the capacitance method. The Therefore, each Y-axis linear body Y1, Y2, Y4, Y6...
- Each of the first signal input switches 51Y corresponding to the Y-axis linear bodies Y3, Y5, Y7... Y (M-4), Y (M-2) used as the Y-axis electrodes of the system has a predetermined cycle. Sequentially turned on.
- One end of the second signal input switch 52Y is a subsequent stage of the first signal input switch 51Y, and one end of the Y-axis linear bodies Y1, Y2,... Y (M-2), Y (M-1), YM. Are connected corresponding to each Y-axis linear body.
- the other end of the second signal input switch 52Y is connected to the ground via the common signal line 54. That is, the second signal input switch 52Y is provided corresponding to each Y-axis line body between one end of each corresponding Y-axis line body and the ground.
- the second signal input switch 52Y is connected to the Y-axis linear body selected by the first signal input switch 51Y by turning on the second signal input switch 52Y. It functions as a second selection unit that forms an input loop coil together with the Y-axis line selected by 51Y.
- YM are electromagnetic induction type input loop coils. It is used as a Y-axis body to be formed.
- Y-axis linear bodies other than those described above that is, Y-axis linear bodies Y3, Y5, Y7... Y (M-4), Y (M-2) are used as Y-axis electrodes of the capacitance method. The Therefore, the second signal input switches 52Y corresponding to the Y-axis linear bodies Y1, Y2, Y4, Y6...
- Y (M ⁇ 1), YM used as electromagnetic induction type input loop coils are sequentially sequentially in a predetermined cycle. Although the ON operation is performed, the second signal input switches 52Y corresponding to the Y-axis linear bodies Y3, Y5, Y7... Y (M-4), Y (M-2) are always off.
- each of the first and second signal input switches 51Y and 52Y corresponding to Y-axis linear bodies Y1, Y2, Y4, Y6... Y (M ⁇ 1), YM used as input loop coils is It is sequentially turned on at a predetermined cycle.
- the first signal input switches 51Y corresponding to the Y-axis linear bodies Y3, Y5, Y7... Y (M-4), Y (M-2) used as the Y-axis electrodes have a predetermined cycle.
- the second signal input switch 52Y is normally turned off although it is sequentially turned on.
- Position detection signal output unit 115 The position detection signal output unit is provided on one end side of a plurality of X axis line bodies constituting the X axis line unit 111, and is specified when the position specifying tool 2 or the fingertip 3 specifies the XY coordinate position of the XY coordinate forming unit. A position detection signal corresponding to the coordinate position is output.
- the position detection output unit 115 is similar to the position detection output unit 15 according to the first embodiment in that the third signal input switch 61X, the fourth signal input switch 62X, and each third signal input. It includes a common signal line 63 to which a switch 61X is connected, a common signal line 64 to which each second signal input switch 62X is connected, a changeover switch ST3, and an electromagnetic induction signal output circuit 66 having a differential amplifier circuit configuration. Further, the position detection output unit 115 according to the present embodiment includes changeover switches ST4 to ST7 and a capacitance signal output circuit 161.
- the third signal input switch 61X is connected to one end of the X-axis line body X1... XN corresponding to each X-axis line body. And, it is connected to the non-inverting input terminal of the electromagnetic induction signal output circuit 66 of the differential amplifier circuit configuration through the common signal line 63 and via the changeover switch ST3. That is, the third signal input switch 61X is connected to one end side of each X-axis line body and selects an X-axis line body that forms an output loop coil.
- XN are electromagnetic induction type input loop coils. Used as the X-axis line to be formed.
- X-axis linear bodies other than those described above that is, X-axis linear bodies X3, X5, X7... X (N-4), X (N-2) are used as capacitive X-axis electrodes.
- X (N-1), XN forming an electromagnetic induction type output loop coil, and a capacitive type
- the third signal input switches 61Y corresponding to the X-axis linear bodies X3, X5, X7... X (N-4), X (N-2) used as the X-axis electrodes are sequentially turned on in a predetermined cycle. Be operated.
- One end of the fourth signal input switch 62X is the latter stage of the third signal input switch 61X, and the X axis line bodies X1, X2... X (N-2), X (N-1), XN One end is connected corresponding to each X-axis line body.
- the other end of the fourth signal input switch 62X is connected to the inverting input end of the electromagnetic induction signal output circuit 66 through the common signal line 64 together with the ground. That is, the fourth signal input switch 62X is connected to one end side of each X-axis linear body, and selects the X-axis linear body that forms an output loop coil together with the X-axis linear body selected by the third signal input switch 61X. To do.
- the third signal input switch 61X and the fourth signal input switch 62X function as an X-axis line body selection unit that selects at least two X-axis line bodies that form an input loop coil.
- XN are electromagnetic induction type input loop coils. Used as the X-axis line to be formed.
- X-axis linear bodies other than those described above that is, X-axis linear bodies X3, X5, X7... X (N-4), X (N-2) are used as capacitive X-axis electrodes. The Therefore, the fourth signal input switch 62X corresponding to the X-axis line bodies X1, X2, X4, X6...
- X (N ⁇ 1), XN used as the electromagnetic induction type output loop coil is sequentially in a predetermined cycle.
- the fourth signal input switch 62X corresponding to the X-axis linear bodies X3, X5, X7... X (N-4), X (N-2) is always turned off.
- each of the third and fourth signal input switches 61X and 62X corresponding to the X-axis line bodies X1, X2, X4, X6... X (N-1), XN used as the output loop coil are both It is sequentially turned on at a predetermined cycle.
- the third signal input switches 61X corresponding to the X-axis line bodies X3, X5, X7... X (N-4), X (N-2) used as the X-axis electrodes are in a predetermined cycle.
- the fourth signal input switch 62X is normally turned off although it is sequentially turned on.
- FIG. 15 and 16 are conceptual diagrams showing a switch management table provided in the designated position detection control unit 116.
- FIG. 15 uses which Y-axis line body among the Y-axis line bodies Y1... YM constituting the Y-axis line portion 112 to form an input loop coil in the electromagnetic induction system or the electrostatic capacity system. This is for controlling the on / off operation of the first signal input switch 51Y and the second signal input switch 52Y connected to one end of each Y-axis line body 62X.
- the designated position detection control unit 116 generates the switching signal S10 based on the table, and the drive signal input unit 114 that receives the switching signal S1 controls the signal input switches 51Y and 52Y, and electromagnetically generates a combination of a plurality of Y-axis linear bodies.
- the input loop coils LY1... LYK in the induction method are formed, and the Y-axis electrode in the capacitance method is formed.
- the designated position detection control unit 116 generates the switching signal S10 based on the table, and the position detection signal output unit 115 which receives the switch signal S10 controls the signal input switches 61X and 62X, and uses a combination of a plurality of Y-axis linear bodies.
- the output induction coils LX1... LXL in the electromagnetic induction method are formed, and the X-axis electrode in the capacitance method is formed.
- 17 Y-axis line bodies constituting the Y-axis line part 112 are shown in the vertical axis direction, and input loop coil numbers (LY1 to LYK: examples of FIG. 4) formed by each Y-axis line body. LY4) is shown in FIG.
- the first signal input switch 51Y arranged corresponding to one or a plurality of Y-axis linear bodies marked with “a” in the drawing is turned on based on the switching signal S10 received from the designated position detection control unit 116.
- the second signal input switch 52Y arranged corresponding to one or a plurality of Y-axis linear bodies marked with “b” in the drawing.
- FIG. 17 is a diagram conceptually showing an input loop coil formed as a result of the first and second signal input switches 51Y and 52Y being turned on by the switching signal S10 generated based on the table shown in FIG. is there.
- the input loop coil number LY1 in the table of FIG. 15 “a” is added to the Y-axis linear bodies Y1 and Y2, and the first signal input switches 51Y1 and 51Y2 corresponding to the Y-axis linear body Y1 are turned on.
- “b” is added to the Y-axis line bodies Y6 and Y8, and the second signal input switches 52Y6 and 52Y8 corresponding to the Y-axis line bodies Y6 and Y8 are turned on.
- an input loop coil LY1 including the Y-axis line body Y1 and the Y-axis line body Y2 and the Y-axis line bodies Y6 and Y8 is formed. Thereafter, LY2, LY3, and LY4 are sequentially formed in the same manner.
- Y axis bodies Y3, Y5, Y7, Y9, Y11, Y13, and Y15 are not given any reference numerals “a” and “b”. That is, it is shown that these Y-axis linear bodies function as a capacitance-type Y-axis electrode, and a switch management table for controlling the capacitance-type Y-axis electrode prepared as necessary is provided. Referring to, the first input switch 51Y is sequentially switched sequentially. Further, the second signal input switches 52Y3, 52Y5, 52Y7, 52Y9, 52Y11, 52Y13, 52Y15 provided corresponding to the Y-axis linear body are off.
- 21 X-axis line bodies constituting the X-axis line part 11 are shown in the vertical axis direction, and an output loop coil number 74 (LX1... LXL) formed by each X-axis line body is shown. )It is shown.
- the third signal input switch 61X arranged corresponding to one or a plurality of X-axis linear bodies with “a” in the figure is turned on based on the switching signal S10 received from the designated position detection control unit 116.
- the fourth signal input switch 62X arranged corresponding to one or a plurality of X-axis lines marked with “b” in the figure. To turn on.
- FIG. 17 is a diagram conceptually showing an output loop coil formed as a result of the third and fourth signal input switches 61X and 62X being turned on by the switching signal S10 generated based on the table shown in FIG. is there.
- the output loop coil number LX1 in the table of FIG. 16 "a" is added to the X-axis line bodies X1 and X2, and the third signal input switches 61X1 and 61X2 corresponding to the X-axis line bodies X1 and X2 are turned on. Be operated.
- X-axis bodies X3, X5, X7, X9, X11, X13, X15, X17, and X19 are not labeled with “a” or “b”. That is, these X-axis linear bodies are shown to function as capacitance-type X-axis electrodes, and a switch management table for controlling the capacitance-type X-axis electrodes prepared as necessary is provided. Referring to, the third input switch 61X is sequentially switched sequentially.
- the fourth signal input switches 62X3, 62X5, 62X7, 62X9, 62X11, 62X13, 62X15, 62X17, and 62X19 provided corresponding to the X-axis linear body are off.
- the drive signal input unit 114 sequentially turns on the first and second signal input switches at the reference detection period, thereby the input loop coils LY1, LY2,.
- a driving pulse signal that is, a driving input pulse current is sequentially supplied to LYK to generate an induction electromagnetic field in the Y-axis line portion 112.
- the user designates the coordinate position by performing a pen touch operation on the XY coordinate plane of the XY coordinate forming unit with the pen-type position designation tool 2.
- the position specifying tool 2 has a resonance circuit including an induction coil and a resonance capacitor, and the induction coil and the resonance capacitor are generated by the electromagnetic field generated by the input loop coils LY1. causes a tuned resonance current. Then, an induction voltage is induced in the output loop coils LX1... LXL at the position where the pen touch operation is performed based on the induction electromagnetic field generated in the induction coil based on the tuning resonance current.
- the position detection signal output unit 115 outputs a detection voltage based on the induction voltage induced by the output loop coils LX1... LXL formed by the third and fourth signal input switches 61X and 62X as an electromagnetic induction signal output.
- the circuit 66 receives the signal and outputs it as a designated position detection output signal S12. Then, the output designated position detection output signal S12 is sent to the designated position detection control unit 116 as a position detection output signal S14 via the synchronous detection circuit.
- some of the axial bodies function as a Y-axis electrode and an X-axis electrode of the capacitance type as shown in FIG. That is, the Y-axis linear bodies Y3, Y5... Y15 functioning as the Y-axis electrodes of the capacitance method and the X-axis linear bodies X3, X5.
- An orthogonal XY coordinate system (Xn, Ym) is formed. As a result, an electrostatic field due to stray capacitance is formed around the intersection of the Y axis line and the X axis line.
- This electrostatic field is generated by two adjacent X-axis line bodies X (n ⁇ 1) and X (X (n-1) and X (n-1) and X ( n + 1) and the floating capacitance CZ formed between the two Y-axis bodies Y (m ⁇ 1) and Y (m + 1) are generated almost uniformly in the XY coordinate system.
- the signal input switches 61X3, 61X5... 61X19 of the position detection signal output unit 15 are turned on.
- a detection output is obtained, and the position of the coordinate (Xn, Xm) is output from the capacitance signal output circuit 161 as the capacitance detection signal S13 when the fingertip 3 is touched, and the position is detected via the synchronous detection circuit.
- the output signal S14 is sent to the designated position detection control unit 16.
- each axis body forming each loop coil, and each axis functioning as an X- and Y-axis electrode of a capacitance method By preparing a plurality of tables with different body configurations, it is possible to temporarily increase the detection accuracy of a pen touch operation or a finger touch operation, or to change the detection speed or the detectable range.
- FIG. 19 is a diagram showing a specific structure of the Y-axis line portion 112 constituting the XY coordinate forming portion according to this embodiment.
- each Y-axis line body Y1... YM constituting the Y-axis line portion 112 extends linearly and is disposed on the insulating layer portion 13 in parallel at equal intervals.
- YM have one end input to the first and second signals via the sensor connection lead 76. It is connected to the switches 51Y and 52Y. Also, the other ends of the Y-axis linear bodies Y1... YM are short-circuited and connected to each other via a common signal line 57.
- the remaining Y axis line bodies that is, Y axis line bodies Y3, Y5... Y (M-4), Y (M-2)
- the other end is not connected to the common signal line 57, but is an axis line body independent from each other.
- the outer peripheral electrode portion 75 can be used as a Y-axis line body, as in the first embodiment. Accordingly, in the example shown in FIG. 19, a part of the outer peripheral electrode functions as the Y-axis line body Y1 and the Y-axis line body YM, and further as the common signal line 57.
- each Y-axis line body has two long sides along the longitudinal direction 171 and two short sides connected to the first and second signal input switches 51Y and 52Y or the common signal line 57 along the short direction 172.
- each of the two long sides has a concave portion 173 formed periodically.
- each Y-axis body forms a pattern in which a plurality of diamond-shaped portions or diamond-shaped portions 174 are continuously connected.
- FIG. 20 is an enlarged view of a part of the Y-axis line part 112 constituting the XY coordinate forming part according to the present embodiment.
- the outer peripheral electrode portion 75 is used as the Y-axis line body Y1, that is, as an electromagnetic induction electrode forming a loop coil.
- a Y-axis linear body Y2 that functions as an electromagnetic induction electrode that forms a loop coil Y3 that functions as a Y-axis electrode of a capacitance type
- a Y-axis linear body Y4 that functions as an electromagnetic induction electrode that forms a loop coil Y5 functioning as a capacitive Y-axis electrode
- Y-axis line body Y6 functioning as an electromagnetic induction electrode forming a loop coil
- Y7 functioning as a Y-axis electrode of a capacitive system
- each Y-axis linear body has alternating Y-axis linear bodies that function as electromagnetic induction electrodes that form loop coils and Y-axis linear bodies that function as capacitive Y-axis electrodes. Has been placed.
- each Y-axis body has an edge portion 175 having an acute angle, a right angle, or an obtuse angle, and the edge portions 175 having different directions are alternately formed in a wave shape.
- each axis line body is extended in a direction orthogonal to the Y-axis line body.
- FIG. 21 (a) is a diagram showing each axial line pattern when an unillustrated X-axis line part 111 is superimposed on the Y-axis line part 112 shown in FIG. 19 and FIG.
- each X axis line constituting the X axis part 111 is configured to be orthogonal to each Y axis line constituting the Y axis part 112.
- the X-axis part 111 also has an X-axis line that functions as an electromagnetic induction electrode that forms a loop coil and an X-axis line that functions as a capacitive X-axis electrode, except for the outer peripheral electrode 176.
- the body is arranged alternately.
- regions 177 and the like there are regions 177 and the like in which the electrostatic capacitance electrode of the Y-axis linear body portion 112 and the electrostatic capacitance electrode of the X-axis linear body portion are adjacent to each other in the vertical direction.
- An electrostatic field due to the floating capacitance is formed around the adjacent regions 177 and the like.
- the region 177 has a shape separated into two regions 177 (a) and 177 (b), and the region 177 (a) and 177 (b) is the center.
- An electrostatic field is formed by stray capacitance.
- the shape of the region 117 and the like in which the X-axis line portion 111 and the Y-axis line portion 112 are adjacent in the vertical direction has been described as being separated into two places as shown in FIG.
- the shape is not limited to this.
- a substantially I-shaped (straight) shape may be adopted.
- each axis line functioning as an electromagnetic induction type loop coil and each axis line function functioning as each capacitance type axis electrode are alternated. It is possible to detect both the touch pen operation and the finger touch operation using these two detection methods.
- Each component which comprises the terminal device 200 which concerns on 3rd embodiment of this invention is the same as the component of the terminal device 1 which concerns on 1st embodiment shown in FIG. 2, as shown in FIG.
- the configuration of the drive signal input unit 214 and the position detection signal output unit 215 and the switch management table provided in the designated position detection control unit 216 are different. Therefore, the selection operation of the X axis line bodies X1... XN constituting the X axis line part 211 and the selection operation of the Y axis line bodies Y1. A new function is given to the terminal device 200.
- each Y-axis linear body Y1... YM is used for forming an input loop coil for the electromagnetic induction method, and the capacitance is changed according to switching. Used as a Y-axis electrode for the system.
- each X-axis line body X1... XN is used for forming an output loop coil for the electromagnetic induction method, and is also used as an X-axis electrode for the capacitance method according to switching. The Therefore, in addition to the first embodiment, it can be used as a Y-coordinate electrode or an X-coordinate electrode of the capacitive type according to switching.
- FIG. 22 is a block diagram showing a configuration of the terminal device 200 according to the third embodiment of the present invention.
- the terminal device 200 according to the present embodiment includes at least a position detection unit 210, a central processing unit 20, and a display unit 30 as its components.
- the central processing unit 20 designates a specific position on the XY display surface of the display unit 30 by performing a pen touch operation in which the position specifying tool 2 having a pen shape is brought into contact with or close to the display surface of the display unit 30.
- the display position detection signal S2 indicating the designated position is received from the designated position detection control unit 216.
- the central processing unit 20 causes the user to touch or approach the fingertip 3 at a specific position on the XY surface of the display unit 30 with the display surface of the display unit 30.
- the display position detection signal S2 indicating the specified position is specified
- the display position detection signal S2 indicating the specified position is received from the specified position detection control unit 216. Details of the position detection unit 210 will be described later.
- the position detection unit 210 includes a designated position detection control unit 216, an XY coordinate forming unit including an X-axis line unit 211, a Y-axis line unit 212, and an insulating layer 13, a drive signal output unit 214, A detection signal output unit 215.
- Specified position detection control unit 216 In the designated position detection control unit 216, the first and second input signal switches 51Y and 52Y connected to the Y-axis line body 61Y constituting the Y-axis line body 12 and the X-axis line body 62X constituting the X-axis line part 11 are included. X-axis as each axis body or electrostatic capacity method used to control the on / off operation of the third and fourth input signal switches 61X, 62X connected to the and used to form a loop coil as an electromagnetic induction method And a switch management table (FIG. 15) for generating a switching signal S10 for selecting each axis used as the Y-axis electrode.
- a switch management table FIG. 15
- the designated position detection control unit 116 generates the switching signal S10 based on the switch management table, and the first and second input signal switches 51Y and 52Y and the third and fourth input signal switches 61X and 62X. The on / off operation of each switch is controlled.
- the designated position detection control unit 216 performs position detection (electromagnetic induction mode) of the position detection unit 210 from the central processing unit 20 using an electromagnetic induction method, or performs position detection (electrostatic capacitance mode) using an electrostatic capacitance method.
- a mode selection signal S3 for selecting is received. Based on that, in the Y-axis line mode switching unit 251 provided in the drive signal input unit 214, Y-axis line mode changeover switches 251Y1... 251YM provided corresponding to the respective Y-axis line bodies, and position detection signals
- a mode selection signal S5 for controlling the X axis line mode changeover switch 262X1... 262XN provided corresponding to each X axis line body in the X axis line mode switching part 262 provided in the output unit 215 is a drive signal. The data is sent to the input unit 214 and the position detection signal output unit 215.
- the X-axis line portion 211 and the Y-axis line portion 212 are composed of N and M axis bodies, respectively, and are arranged so as to be orthogonal to each other, as in the other embodiments.
- the other end side of each X-axis line body X1... XN constituting the X-axis line body that is not connected to the third and fourth signal input switches 61X and 62X is the X-axis line mode changeover switch 262X1. ... connected to 262XN.
- the other end side of each Y axis line body Y1... YM constituting the Y axis line body that is not connected to the first and second signal input switches 51Y, 52Y is the Y axis line mode changeover switch 251Y1. 251YM.
- the position detection unit 210 is caused to function as the electromagnetic induction mode. Further, when the Y-axis line mode changeover switch connected to the other end side of the Y-axis line bodies Y1... YM is not turned on, the position detection unit 210 is caused to function as the capacitance mode.
- the drive signal input unit 214 is provided on one end side of the plurality of Y axis line bodies constituting the Y axis line unit 212, and the drive pulse signal S4 generated by the drive signal input unit 114 is generated on one end side of the plurality of Y axis line bodies. input.
- the drive signal input unit 214 includes a Y-axis line mode switching unit 251 in addition to the components and functions provided in the drive signal input unit according to the first and second embodiments.
- the Y axis line mode switching unit 251 corresponds to each Y axis line body Y1... YM to the other end side of the Y axis line body Y1... YM, that is, the first and second signal input switches 51Y and 52Y.
- Y-axis line mode changeover switch 251Y1... 251YM connected to the opposite side to the side to which is connected.
- the drive signal input unit 214 controls the ON operation of each Y axis line mode changeover switch 251Y1... 251YM constituting the Y axis line mode switching unit 251 based on the mode selection signal S5 received from the designated position detection control unit 216.
- each Y-axis line mode changeover switch 251Y1... 251YM is turned on, and the other end of each Y-axis line body Y1. Make sure the sides are connected to each other.
- the capacitance mode is designated by the mode selection signal S5
- the Y axis line mode changeover switches 251Y1... 251YM are turned off, and the other end sides of the respective axis bodies Y1. So that they are arranged independently.
- Position detection signal output unit 215 The position detection signal output unit 215 is provided on one end side of a plurality of X axis linear bodies constituting the X axis line unit 211, and is specified when the position specifying tool 2 or the fingertip 3 specifies the XY coordinate position of the XY coordinate forming unit. A position detection signal corresponding to the coordinate position is output.
- the position detection signal output unit 215 includes an X-axis mode switching unit 262 in addition to the components and functions of the position detection signal output unit according to the first and second embodiments.
- the X-axis line mode switching unit 262 corresponds to each X-axis line body X1... XN, on the other end side of the X-axis line bodies X1... XN, that is, the first and second signal input switches 61X and 62X.
- X-axis mode changeover switch 262X1... 262XN connected to the opposite side to the side to which the is connected.
- the position detection signal output unit 215 controls the ON operation of each X-axis line mode switch 252X1... 262XN that constitutes the X-axis line mode switching unit 262. To do.
- each X-axis line mode changeover switch 262X1... 262XN is turned on, and the other end of each X-axis line body X1. Make sure the sides are connected to each other.
- each X-axis mode changeover switch 262X1... 262XN is turned off, and the other ends of the axis bodies X1. So that they are arranged independently.
- the position detection unit 210 in the present embodiment can switch between the electromagnetic induction mode and the capacitance mode based on the mode selection signal S5.
- the designated position detection control unit 216 receives the mode selection signal S3 from the central processing unit 20.
- the central processing unit 20 determines which mode is selected according to the type of application being executed in the terminal device 200, and generates a mode selection signal S3 corresponding thereto. Receiving this, the designated position detection control unit 216 sends a mode selection signal S5 to the drive signal input unit 214 and the position detection signal output unit 215.
- the drive signal input unit 214 that has received the mode selection signal S5 controls the ON operation of the Y-axis line mode switch 251Y1... 251YM arranged in the Y-axis line mode switch unit 251 in the drive signal input unit 214. . Specifically, since the electromagnetic induction mode is selected by the central processing unit, the Y-axis line mode changeover switches 251Y1 to 251YM are turned on. Then, the other end side of each Y-axis line Y1 ... YM is connected via the Y-axis line mode changeover switch 251 ... 251YM.
- the designated position detection control unit 216 selects a switch management table for determining a Y-axis linear body to be used based on the mode selection signal S3 generated by the central processing unit 20.
- the switch management table prepared for the electromagnetic induction mode is selected.
- the designated position detection control unit 216 generates the switching signal S10 with reference to the switch management table. Based on the switching signal S10, the on-operation of the first and second signal input switches 51Y and 52Y arranged in the drive signal input unit 14 is controlled to control the formation of the input loop coil.
- the designated position detection control unit 216 uses the third and fourth signal input switches 61X arranged in the position detection signal output unit 215 based on the switching signal S10 generated based on the switch management table. , 62X is controlled to control the formation of the output loop coil.
- the designated position detection control unit 216 receives the mode selection signal S3 from the central processing unit 20.
- the central processing unit 20 determines which mode is selected according to the type of application being executed in the terminal device 200, and generates a mode selection signal S3 corresponding thereto. Receiving this, the designated position detection control unit 216 sends a mode selection signal S5 to the drive signal input unit 214 and the position detection signal output unit 215.
- the drive signal input unit 214 that has received the mode selection signal S5 turns off the Y axis line mode changeover switches 251Y1... 251YM disposed in the Y axis line mode changeover unit 251 in the drive signal input unit 214. Specifically, since the capacitance mode is selected by the central processing unit, the Y-axis line mode changeover switches 251Y1 to 251YM are turned off. As a result, the other end portions of the Y-axis linear bodies Y1... YM are not connected to each other, and independent axis linear bodies are formed.
- the designated position detection control unit 216 selects a switch management table for determining a Y-axis linear body used in the capacitance mode.
- the switch management table prepared for the capacitance mode is selected.
- the designated position detection control unit 216 generates the switching signal S10 with reference to the switch management table.
- the first signal input switch 51Y disposed in the drive signal input unit 14 is sequentially turned on to sequentially switch the Y-axis linear body to which the drive pulse signal (voltage) is input.
- the second signal input switch 52Y is always in an off state.
- the position detection signal output unit 215 that has received the mode selection signal S5 switches the X axis line mode switch 262X1... 262XN disposed in the X axis line mode switching unit 262 in the position detection signal output unit 215. Turn off. Specifically, since the electrostatic capacity mode is selected by the central processing unit, the X-axis line mode changeover switches 262X1 to 262XN are turned off. As a result, the other end portions of the X axis line bodies X1... XN are not connected to each other, and form independent axis line bodies.
- the designated position detection control unit 216 selects a switch management table for determining an X-axis linear body to be used in the capacitance mode.
- the switch management table prepared for the capacitance mode is selected.
- the designated position detection control unit 216 generates the switching signal S10 with reference to the switch management table.
- the third signal input switch 61X is sequentially turned on to obtain a detection output and generate a designated position detection signal S14.
- the switch management table for the capacitance mode is not particularly shown, but the timing for turning on the first and third signal input switches 51Y and 61X is different for each Y-axis line body and each X-axis line body. It is defined in association with it.
- FIG. 24 shows an example in which each axial body functions as a Y-axis electrode and an X-axis electrode in the capacitance mode.
- all the axial bodies are used as the Y-axis electrode and the X-axis electrode. Therefore, an electrostatic field due to stray capacitance is formed around the intersection of the Y-axis line and the X-axis line.
- the drive pulse signal (voltage) S4 is input to the Y axis line Y1... YM
- the voltage output for the floating capacitance value is transmitted to the X axis line.
- a detection output is obtained based on a voltage that changes when the user's fingertip 3 is in contact with or close to the XY coordinate plane, and the coordinates (Xn, Ym) in contact with or close to are specified.
- FIG. 25 is a diagram showing a specific structure of the Y-axis line portion 212 that constitutes the XY coordinate forming portion according to the present embodiment.
- each Y-axis line body Y1... YM constituting the X-axis line part 212 extends linearly and is arranged on the insulating layer part 13 in parallel with each other at equal intervals.
- One end of each of the Y-axis linear bodies Y1... YM is connected to the first and second signal input switches 51Y and 52Y via the sensor connection drawing part 76.
- the other ends are connected to Y-axis line mode changeover switches 251Y1... 251YM through sensor connection lead lines 273, respectively.
- the outer peripheral electrode portion 75 can be used as a Y-axis line body as in the other embodiments. Therefore, in the example shown in FIG. 25, some of the outer peripheral electrodes function as the Y-axis line body Y1 and the Y-axis line body YM.
- each Y-axis line body constituting the Y-axis line portion 212 is used as a capacitive Y-axis electrode according to the mode selection. Therefore, each Y-axis line body has two long sides along the longitudinal direction 271 and two short sides connected to the first and second signal input switches 51Y and 52Y or the Y-axis line mode changeover switch 251 along the short direction 272. Although the point comprised from a side is common, in this embodiment, two long sides each have the recessed part formed periodically. Thereby, each Y-axis body forms a pattern in which a plurality of diamond-shaped portions or diamond-shaped portions 174 are continuously connected.
- the position detection unit 210 As described above, also in the terminal device 200 and the position detection unit 210 according to the third embodiment of the present invention, it is possible to obtain the same effect as that obtained by the other embodiments. Furthermore, in the terminal device 200 and the position detection unit 210 according to the third embodiment, it is possible to select whether the position detection unit functions as an electromagnetic induction mode or a capacitance mode. As a result, depending on the current usage state of the terminal device 200 (the type of application being executed, etc.), the position detection unit 210 is used by appropriately selecting whether to function in the electromagnetic induction mode or the capacitance mode. It becomes possible to do.
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Abstract
Description
以下、本発明の第一の実施形態に係る端末装置として、本実施形態に係る位置指定検出装置が重畳された表示面を備える端末装置1について説明する。なお、本実施形態においては、端末装置1としてスマートフォンを例に説明するが、当然これに限定はされない。端末装置としては、例えば、タブレット型携帯端末、携帯電話機、PDA、携帯型ゲーム機、ラップトップパソコン、デスクトップパソコン、各種業務用端末(レジスター、ATM端末、切符券売機など)、手書きサイン認証用端末、電子広告用の大型ディスプレイ装置等が挙げられる。また、本実施形態においては、位置検出ユニット表示部30に位置検出ユニット10が重畳して設けられている端末装置について説明するが、当然これに限定されない。例えば、デジタイザ専用タブレットなどの、表示部30が設けられていないか、又は別途設けられた表示部に接続して利用する端末装置においても、本実施形態に係る位置検出ユニット10を適用することが可能である。
本実施形態において、位置検出ユニット10は、指定位置検出制御部16と、X軸線部11、Y軸線部12、絶縁層13から構成されるXY座標形成部と、駆動信号出力部14と、位置検出信号出力部15とを含む。
指定位置検出制御部16は、中央処理ユニット20と共同して位置検出ユニット10の動作全体を制御する。より具体的には、指定位置検出制御部16は、切替信号S10を駆動信号入力部14及び位置検出信号出力部16に供給して、駆動信号入力部14に配置された第1の信号入力スイッチ51Y及び第2の信号入力スイッチ52Yのオン・オフ動作と、第3の信号入力スイッチ61X及び第4の信号入力スイッチ62Xのオン・オフ動作を制御する。また、指定位置検出制御部16は、位置検出信号出力部15から指定位置検出信号S14を受信して、中央処理ユニット20に指定位置検出信号S2として提供する。
X軸線部11及びY軸線部12は、絶縁層部13とともにXY座標形成部を構成する。当該XY座標形成部のうち、X軸線部11は、図3に示すように、XY座標面のY軸方向に直線状に延長し、かつX軸方向に等しい間隔でたがいに平行に配設されたN本(例えば32本)の直線状のX軸線体X1・・・XNを有する。
駆動信号入力部14は、Y軸線部12を構成する複数のY軸線体の一端側に設けられ、その複数のY軸線体の一端側に、駆動信号入力部14で生成した駆動パルス信号S4を入力する。
位置検出信号出力部15は、X軸線部11を構成する複数のX軸線体の一端側に設けられ、位置指定具2がXY座標形成部のXY座標位置を指定したときに、指定した座標位置に対応する指定位置検出信号S14を出力する。
図4及び図5は、指定位置検出制御部16内に設けられたスイッチ管理テーブルを示す概念図である。図4に示すテーブルは、特に、Y軸線部11を構成するY軸線体Y1、Y2・・・Y(M-2)、Y(M-1)、YMのうちどのY軸線体を入力用ループコイル形成のために用いるか、すなわち、各Y軸線体62Xの一端に接続された第1の信号入力スイッチ51Y及び第2の信号入力スイッチ52Yのオン・オフ動作を制御するためのものである。指定位置検出制御部16は当該テーブルに基づいて切替信号S10を生成し、それを受けた駆動信号入力部14は各信号入力スイッチ51Y、52Yを制御して、1又は複数のY軸線体の組み合わせによって入力用ループコイルLY1・・・LYKを形成する。
図10は、本実施形態に係るXY座標形成部を構成するY軸線部12の具体的な構造を示す図である。図10によると、Y軸線部12を構成する各Y軸線体は、それぞれ直線状に延長し、互いに等しい間隔で平行に絶縁層部13上に配設されている。そして、各Y軸線体はその一端がセンサ接続引き出し部76を介して第1及び第2の信号入力スイッチ51Y、52Yに接続されている。また、各Y軸線体の他端は短絡され、共通信号ライン57を介して互いに接続されている。
本発明の第二の実施形態について説明する。なお、上記第一の実施形態に係る端末装置1及び位置検出ユニット10と同じ機能を果たすものについては、説明を省略する。また、上記第一の実施形態、及び以下で説明する第二の実施形態は、適宜それらの一部又は全部を組み合わせることが可能である。
本実施形態において、位置検出ユニット110は、指定位置検出制御部116と、X軸線部111、Y軸線部112、絶縁層13から構成されるXY座標形成部と、駆動信号出力部114と、位置検出信号出力部115とを含む。
指定位置検出制御部116は、中央処理ユニット20と共同して位置検出ユニット100の動作全体を制御する。より具体的には、指定位置検出制御部116は、切替信号S10を駆動信号入力部114及び位置検出信号出力部115に供給して、駆動信号入力部114に配置された第1の信号入力スイッチ51Y及び第2の信号入力スイッチ52Yのオン・オフ動作と、第3の信号入力スイッチ61X及び第4の信号入力スイッチ62Xのオン・オフ動作を制御する。また、指定位置検出制御部116は、位置検出信号出力部115から指定位置検出信号S14を受信して、中央処理ユニット20に指定位置検出信号S2として提供する。
X軸線部111及びY軸線部112は、絶縁層部13とともにXY座標形成部を構成する。当該XY座標形成部のうち、X軸線部111は、図14に示すように、XY座標面のY軸方向に直線状に延長し、かつX軸方向に等しい間隔でたがいに平行に配設されたN本(例えば32本)の直線状のX軸線体X1、X2・・・XNを有する。
駆動信号入力部114は、Y軸線部112を構成する複数のY軸線体の一端側に設けられ、その複数のY軸線体の一端側に、駆動信号入力部114で生成した駆動パルス信号S4を各Y軸線体に入力する。
位置検出信号出力部は、X軸線部111を構成する複数のX軸線体の一端側に設けられ、位置指定具2又は指先3がXY座標形成部のXY座標位置を指定したときに、指定した座標位置に対応する位置検出信号を出力する。
図15及び図16は、指定位置検出制御部116内に設けられたスイッチ管理テーブルを示す概念図である。図15に示すテーブルは、特に、Y軸線部112を構成するY軸線体Y1・・・YMのうちどのY軸線体を電磁誘導方式における入力用ループコイル形成のために用いるか又は静電容量方式のY軸電極として用いるか、すなわち、各Y軸線体62Xの一端に接続された第1の信号入力スイッチ51Y及び第2の信号入力スイッチ52Yのオン・オフ動作を制御するためのものである。指定位置検出制御部116は当該テーブルに基づいて切替信号S10を生成し、それを受けた駆動信号入力部114は各信号入力スイッチ51Y、52Yを制御して、複数のY軸線体の組み合わせによって電磁誘導方式における入力用ループコイルLY1・・・LYKを形成するとともに、静電容量方式におけるY軸電極を形成する。
図19は、本実施形態に係るXY座標形成部を構成するY軸線部112の具体的な構造を示す図である。図19によると、Y軸線部112を構成する各Y軸線体Y1・・・YMは、直線状に延長し、互いに等しい間隔で平行に絶縁層部13上に配設されている。そして、各Y軸線体Y1・・・YMのうち、Y1、Y2、Y4・・・Y(M-1)、YMはその一端がセンサ接続引き出し部76を介して第1及び第2の信号入力スイッチ51Y、52Yに接続されている。また、各Y軸線体Y1・・・YMの他端はそれぞれ短絡され、共通信号ライン57を介して互いに接続されている。
本発明の第三の実施形態について説明する。なお、上記第一及び第二の実施形態に係る端末装置及び位置検出ユニットと同じ機能を果たすものについては、説明を省略する。また、上記第一及び第二の実施形態、及び以下で説明する第三の実施形態は、適宜それらの一部又は全部を組み合わせることが可能である。
本実施形態において、位置検出ユニット210は、指定位置検出制御部216と、X軸線部211、Y軸線部212、絶縁層13から構成されるXY座標形成部と、駆動信号出力部214と、位置検出信号出力部215とを含む。
指定位置検出制御部216内には、Y軸線体12を構成するY軸線体61Yに接続された第1及び第2の入力信号スイッチ51Y、52Yと、X軸線部11を構成するX軸線体62Xに接続された第3及び第4の入力信号スイッチ61X、62Xのオン・オフ動作を制御し、電磁誘導方式としてのループコイルの形成に利用される各軸線体又は静電容量方式としてのX軸及びY軸電極として利用される各軸線体を選択するための切替信号S10を生成するスイッチ管理テーブル(図15)を備えている。そして、指定位置検出制御部116は、当該スイッチ管理テーブルに基づいて切替信号S10を生成し、第1及び第2の入力信号スイッチ51Y、52Yと、第3及び第4の入力信号スイッチ61X、62Xの各スイッチのオン・オフ動作を制御する。
X軸線部211及びY軸線部212は、他の実施形態と同様に、図23に示すとおり、それぞれN本及びM本の軸線体から構成され、互いに直交するように配置されている。一方、本実施形態においては、X軸線体を構成する各X軸線体X1・・・XNの第3及び第4の信号入力スイッチ61X、62Xに接続されていない他端側がX軸線モード切替スイッチ262X1・・・262XNに接続されている。また、同様に、Y軸線体を構成する各Y軸線体Y1・・・YMの第1及び第2の信号入力スイッチ51Y、52Yに接続されていない他端側がY軸線モード切替スイッチ251Y1・・・251YMに接続されている。
駆動信号入力部214は、Y軸線部212を構成する複数のY軸線体の一端側に設けられ、その複数のY軸線体の一端側に、駆動信号入力部114で生成した駆動パルス信号S4を入力する。
位置検出信号出力部215は、X軸線部211を構成する複数のX軸線体の一端側に設けられ、位置指定具2又は指先3がXY座標形成部のXY座標位置を指定したときに、指定した座標位置に対応する位置検出信号を出力する。
上記のとおり、本実施形態における位置検出ユニット210は、電磁誘導モードと静電容量モードの二つのモードをモード選択信号S5に基づいて切り替えて使用することが可能である。
指定位置検出制御部216は中央処理ユニット20からモード選択信号S3を受信する。なお、中央処理ユニット20は、端末装置200において実行中のアプリケーションの種類などに応じていずれのモードを選択するかを決定し、それに対応するモード選択信号S3を生成する。これを受けた指定位置検出制御部216は、駆動信号入力部214及び位置検出信号出力部215に対してモード選択信号S5を送出する。
指定位置検出制御部216は中央処理ユニット20からモード選択信号S3を受信する。なお、中央処理ユニット20は、端末装置200において実行中のアプリケーションの種類などに応じていずれのモードを選択するかを決定し、それに対応するモード選択信号S3を生成する。これを受けた指定位置検出制御部216は、駆動信号入力部214及び位置検出信号出力部215に対してモード選択信号S5を送出する。
図25は、本実施形態に係るXY座標形成部を構成するY軸線部212の具体的な構造を示す図である。図25によると、X軸線部212を構成する各Y軸線体Y1・・・YMは、直線状に延長し、互いに等しい間隔で平行に絶縁層部13上に配設されている。そして、各Y軸線体Y1・・・YMはその一端がセンサ接続引き出し部76を介して第1及び第2の信号入力スイッチ51Y、52Yに接続されている。また、他端は、センサ接続引き出し線273を介してY軸線モード切替スイッチ251Y1・・・251YMにそれぞれ接続されている。
10 位置検出ユニット
11 X軸線部
12 Y軸線部
14 駆動信号入力部
15 位置検出信号出力部
16 指定位置検出制御部
20 中央処理ユニット
30 表示部
Claims (12)
- 複数の線体でなるX軸線体及び複数の線体でなるY軸線体を互いに交差させた構成を有するXY座標形成部と、
前記複数のY軸線体の一端側に設けられ、前記複数のY軸線体の一端側に駆動入力信号を入力する駆動信号入力部と、
前記複数のX軸線体の一端側に設けられ、位置指定具が前記XY座標形成部のXY座標位置を指定したときに、前記指定した座標位置に対応する位置検出信号を出力する位置検出信号出力部と、
を含む位置検出ユニットであって、
前記複数のY軸線体は一端が前記駆動信号入力部に接続され、他端が短絡され、
前記駆動信号入力部は、前記複数のY軸線体から入力用ループコイルを形成する少なくとも二つのY軸線体を選択するY軸線体選択部を含む、
ことを特徴とする前記位置検出ユニット。 - 前記Y軸線体選択部は、前記複数のY軸線体から前記駆動入力信号が入力される少なくとも一つのY軸線体を選択する第1の選択部と、前記第1の選択部によって選択されたY軸線体を除く前記複数のY軸線体から、前記第1の選択部によって選択されたY軸線体とともに入力用ループコイルを形成する少なくとも一つのY軸線体を選択する第2の選択部とを含む、ことを特徴とする請求項1に記載の位置検出ユニット。
- 前記駆動信号入力部は、前記Y軸線選択部によって形成された入力用ループコイルを形成する少なくとも二つのY軸線体とは異なるY軸線体の組み合わせにより、前記入力用ループコイルとは異なる入力用ループコイル形成する、ことを特徴とする請求項1又は2に記載の位置検出ユニット。
- 前記複数のX軸線体は一端が前記位置検出信号出力部に接続され、他端が短絡され、
前記位置検出信号出力部は、前記複数のX軸線体から出力用ループコイルを形成する少なくとも二つのX軸線体を選択するX軸線体選択部を含む、ことを特徴とする請求項1~3のいずれか一項に記載の位置検出ユニット。 - 前記位置検出ユニットは、前記位置指定具が前記XY座標形成部のXY座標位置を指定したときに、前記入力用ループコイルから入力された入力信号を、前記位置指定具を介して前記出力用ループコイルに伝達することにより、前記位置検出信号出力部から前記位置検出信号を出力する、ことを特徴とする請求項4に記載の位置検出ユニット。
- 前記駆動信号入力部は、前記Y軸線体選択部によって選択される少なくとも二つのY軸線体を所定周期で順次切り替える、ことを特徴とする請求項1に記載の位置検出ユニット。
- 前記位置検出ユニットは、前記入力用ループコイルを形成する少なくとも二つのY軸線体を選択するための切替信号を前記駆動信号入力部に送出する指定位置検出制御部と、を含むことを特徴とする請求項1に記載の位置検出ユニット。
- 前記指定位置検出制御部は、前記入力用ループコイルを形成する少なくとも二つのY軸線体があらかじめ記憶されたテーブルに基づいて前記切替信号を生成する、ことを特徴とする請求項7に記載の位置検出ユニット。
- 前記位置検出ユニットは、前記入力用ループコイルを形成する少なくとも二つのY軸線体の組み合わせが互いに異なるテーブルを複数有する、ことを特徴とする請求項8に記載の位置検出ユニット。
- 前記位置検出ユニットは、前記入力用ループコイルに入力された入力信号を、前記位置指定具を介して出力用ループコイルに伝達することで前記位置検出信号を出力する電磁誘導方式による位置検出に加えて、前記複数のY軸線体と前記複数のX軸線体との間で生じる浮遊容量の変化に基づいて前記位置検出信号を出力する静電容量方式による位置検出が可能である、ことを特徴とする請求項4に記載の位置検出ユニット。
- 前記位置検出ユニットは、前記位置検出ユニットにおいて、前記静電容量方式による位置検出が行われる際、前記XY座標形成部を構成する前記複数のX軸線体及び前記複数のY軸線体の中から少なくとも二つのX軸線体及び少なくとも二つのY軸線体を静電容量方式のX軸電極及びY軸電極として利用する、ことを特徴とする請求項10に記載の位置検出ユニット。
- 請求項1~11のいずれか一項に記載の位置検出ユニットと、
前記位置検出ユニットから出力される位置検出信号に基づいて情報の処理を行う中央処理ユニットと、
を含む端末装置。
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EP14838891.1A EP2998842A4 (en) | 2014-07-25 | 2014-07-25 | Position detection unit |
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2014
- 2014-07-25 KR KR1020157005877A patent/KR102317380B1/ko active IP Right Grant
- 2014-07-25 WO PCT/JP2014/069668 patent/WO2016013105A1/ja active Application Filing
- 2014-07-25 JP JP2015507286A patent/JP5819565B1/ja active Active
- 2014-07-25 EP EP14838891.1A patent/EP2998842A4/en not_active Withdrawn
- 2014-07-25 CN CN201480003207.2A patent/CN105453009A/zh active Pending
- 2014-07-25 US US14/432,243 patent/US20160041677A1/en not_active Abandoned
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2015
- 2015-01-22 TW TW104102064A patent/TW201604736A/zh unknown
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2016
- 2016-09-21 HK HK16111053.3A patent/HK1222928A1/zh unknown
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JP2019509524A (ja) * | 2016-02-23 | 2019-04-04 | グァンドン ゾンファ タッチ コントロール テクノロジー カンパニー リミテッド | 可変アレイダブル機能タッチ感応器、コントロール検出システム、タッチモジュールとタッチディスプレイ装置 |
JP2021157854A (ja) * | 2016-02-23 | 2021-10-07 | グァンドン ゾンファ タッチ コントロール テクノロジー カンパニー リミテッド | 可変アレイダブル機能タッチ感応器、コントロール検出システム、タッチモジュールとタッチディスプレイ装置 |
JP2017220187A (ja) * | 2016-06-10 | 2017-12-14 | ニューコムテクノ株式会社 | 位置検出装置及び位置検出方法 |
JP2018026017A (ja) * | 2016-08-10 | 2018-02-15 | 株式会社ジャパンディスプレイ | 入力検出装置 |
Also Published As
Publication number | Publication date |
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KR20170034288A (ko) | 2017-03-28 |
JPWO2016013105A1 (ja) | 2017-04-27 |
CN105453009A (zh) | 2016-03-30 |
TW201604736A (zh) | 2016-02-01 |
JP5819565B1 (ja) | 2015-11-24 |
EP2998842A1 (en) | 2016-03-23 |
KR102317380B1 (ko) | 2021-10-26 |
EP2998842A4 (en) | 2017-05-03 |
HK1222928A1 (zh) | 2017-07-14 |
US20160041677A1 (en) | 2016-02-11 |
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