JPWO2014155552A1 - Capacitance type level adjuster - Google Patents

Capacitance type level adjuster Download PDF

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JPWO2014155552A1
JPWO2014155552A1 JP2013529499A JP2013529499A JPWO2014155552A1 JP WO2014155552 A1 JPWO2014155552 A1 JP WO2014155552A1 JP 2013529499 A JP2013529499 A JP 2013529499A JP 2013529499 A JP2013529499 A JP 2013529499A JP WO2014155552 A1 JPWO2014155552 A1 JP WO2014155552A1
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adjusting device
level adjusting
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JP5417555B1 (en
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幸則 佐々木
幸則 佐々木
優佑 田中
優佑 田中
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TOKYO KO-ON DENPA CO.,LTD.
YS ELECTRONICS CORPORATION
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    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F3/00Input arrangements for transferring data to be processed into a form capable of being handled by the computer; Output arrangements for transferring data from processing unit to output unit, e.g. interface arrangements
    • G06F3/01Input arrangements or combined input and output arrangements for interaction between user and computer
    • G06F3/03Arrangements for converting the position or the displacement of a member into a coded form
    • G06F3/033Pointing devices displaced or positioned by the user, e.g. mice, trackballs, pens or joysticks; Accessories therefor
    • G06F3/0362Pointing devices displaced or positioned by the user, e.g. mice, trackballs, pens or joysticks; Accessories therefor with detection of 1D translations or rotations of an operating part of the device, e.g. scroll wheels, sliders, knobs, rollers or belts
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F3/00Input arrangements for transferring data to be processed into a form capable of being handled by the computer; Output arrangements for transferring data from processing unit to output unit, e.g. interface arrangements
    • G06F3/01Input arrangements or combined input and output arrangements for interaction between user and computer
    • G06F3/03Arrangements for converting the position or the displacement of a member into a coded form
    • G06F3/033Pointing devices displaced or positioned by the user, e.g. mice, trackballs, pens or joysticks; Accessories therefor
    • G06F3/0354Pointing devices displaced or positioned by the user, e.g. mice, trackballs, pens or joysticks; Accessories therefor with detection of 2D relative movements between the device, or an operating part thereof, and a plane or surface, e.g. 2D mice, trackballs, pens or pucks
    • G06F3/03547Touch pads, in which fingers can move on a surface
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F3/00Input arrangements for transferring data to be processed into a form capable of being handled by the computer; Output arrangements for transferring data from processing unit to output unit, e.g. interface arrangements
    • G06F3/01Input arrangements or combined input and output arrangements for interaction between user and computer
    • G06F3/048Interaction techniques based on graphical user interfaces [GUI]
    • G06F3/0484Interaction techniques based on graphical user interfaces [GUI] for the control of specific functions or operations, e.g. selecting or manipulating an object, an image or a displayed text element, setting a parameter value or selecting a range
    • G06F3/04847Interaction techniques to control parameter settings, e.g. interaction with sliders or dials
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F3/00Input arrangements for transferring data to be processed into a form capable of being handled by the computer; Output arrangements for transferring data from processing unit to output unit, e.g. interface arrangements
    • G06F3/01Input arrangements or combined input and output arrangements for interaction between user and computer
    • G06F3/048Interaction techniques based on graphical user interfaces [GUI]
    • G06F3/0487Interaction techniques based on graphical user interfaces [GUI] using specific features provided by the input device, e.g. functions controlled by the rotation of a mouse with dual sensing arrangements, or of the nature of the input device, e.g. tap gestures based on pressure sensed by a digitiser
    • G06F3/0488Interaction techniques based on graphical user interfaces [GUI] using specific features provided by the input device, e.g. functions controlled by the rotation of a mouse with dual sensing arrangements, or of the nature of the input device, e.g. tap gestures based on pressure sensed by a digitiser using a touch-screen or digitiser, e.g. input of commands through traced gestures
    • HELECTRICITY
    • H03ELECTRONIC CIRCUITRY
    • H03KPULSE TECHNIQUE
    • H03K17/00Electronic switching or gating, i.e. not by contact-making and –breaking
    • H03K17/94Electronic switching or gating, i.e. not by contact-making and –breaking characterised by the way in which the control signals are generated
    • H03K17/96Touch switches
    • H03K17/962Capacitive touch switches
    • H03K17/9622Capacitive touch switches using a plurality of detectors, e.g. keyboard
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01DMEASURING NOT SPECIALLY ADAPTED FOR A SPECIFIC VARIABLE; ARRANGEMENTS FOR MEASURING TWO OR MORE VARIABLES NOT COVERED IN A SINGLE OTHER SUBCLASS; TARIFF METERING APPARATUS; MEASURING OR TESTING NOT OTHERWISE PROVIDED FOR
    • G01D5/00Mechanical means for transferring the output of a sensing member; Means for converting the output of a sensing member to another variable where the form or nature of the sensing member does not constrain the means for converting; Transducers not specially adapted for a specific variable
    • G01D5/12Mechanical means for transferring the output of a sensing member; Means for converting the output of a sensing member to another variable where the form or nature of the sensing member does not constrain the means for converting; Transducers not specially adapted for a specific variable using electric or magnetic means
    • G01D5/14Mechanical means for transferring the output of a sensing member; Means for converting the output of a sensing member to another variable where the form or nature of the sensing member does not constrain the means for converting; Transducers not specially adapted for a specific variable using electric or magnetic means influencing the magnitude of a current or voltage
    • G01D5/24Mechanical means for transferring the output of a sensing member; Means for converting the output of a sensing member to another variable where the form or nature of the sensing member does not constrain the means for converting; Transducers not specially adapted for a specific variable using electric or magnetic means influencing the magnitude of a current or voltage by varying capacitance
    • G01D5/241Mechanical means for transferring the output of a sensing member; Means for converting the output of a sensing member to another variable where the form or nature of the sensing member does not constrain the means for converting; Transducers not specially adapted for a specific variable using electric or magnetic means influencing the magnitude of a current or voltage by varying capacitance by relative movement of capacitor electrodes
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F3/00Input arrangements for transferring data to be processed into a form capable of being handled by the computer; Output arrangements for transferring data from processing unit to output unit, e.g. interface arrangements
    • G06F3/01Input arrangements or combined input and output arrangements for interaction between user and computer
    • G06F3/03Arrangements for converting the position or the displacement of a member into a coded form
    • G06F3/041Digitisers, e.g. for touch screens or touch pads, characterised by the transducing means
    • G06F3/044Digitisers, e.g. for touch screens or touch pads, characterised by the transducing means by capacitive means
    • HELECTRICITY
    • H03ELECTRONIC CIRCUITRY
    • H03GCONTROL OF AMPLIFICATION
    • H03G3/00Gain control in amplifiers or frequency changers
    • H03G3/02Manually-operated control
    • HELECTRICITY
    • H03ELECTRONIC CIRCUITRY
    • H03KPULSE TECHNIQUE
    • H03K2217/00Indexing scheme related to electronic switching or gating, i.e. not by contact-making or -breaking covered by H03K17/00
    • H03K2217/94Indexing scheme related to electronic switching or gating, i.e. not by contact-making or -breaking covered by H03K17/00 characterised by the way in which the control signal is generated
    • H03K2217/96Touch switches
    • H03K2217/96066Thumbwheel, potentiometer, scrollbar or slider simulation by touch switch

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  • Theoretical Computer Science (AREA)
  • Human Computer Interaction (AREA)
  • Physics & Mathematics (AREA)
  • General Physics & Mathematics (AREA)
  • Measurement Of Length, Angles, Or The Like Using Electric Or Magnetic Means (AREA)
  • Position Input By Displaying (AREA)
  • Switches That Are Operated By Magnetic Or Electric Fields (AREA)

Abstract

表面Aが同一平面B上に位置し、互いに電気的に絶縁されており、表面Aに沿って一定間隔で位置決めされた複数の導電性固定板4と、平面Bに対向する対向面Cを有する単一の導電性移動板6と、複数の導電性固定板4の表面Aに対し、導電性移動板6の対向面Cを近接させ又は付勢して複数の導電性固定板4に沿って案内するガイド16と、導電性固定板4と導電性移動板6との間に生じる静電容量に基づき導電性移動板6の位置を演算し、位置に対応する電気信号を出力する演算装置8と、を備え、さらに複数の導電性固定板4に沿って導電性移動板6を手動又は自動で操作可能であり非操作時にその位置を保持するノブ24を備える。The surface A is located on the same plane B, is electrically insulated from each other, and has a plurality of conductive fixing plates 4 positioned at regular intervals along the surface A, and an opposing surface C facing the plane B. The opposing surface C of the conductive moving plate 6 is brought close to or energized with respect to the single conductive moving plate 6 and the surface A of the plurality of conductive fixing plates 4 along the plurality of conductive fixing plates 4. An arithmetic unit 8 that calculates the position of the conductive moving plate 6 based on the guide 16 to be guided and the capacitance generated between the conductive fixed plate 4 and the conductive moving plate 6 and outputs an electrical signal corresponding to the position. And a knob 24 that can be manually or automatically operated along the plurality of conductive fixed plates 4 and holds the position when not operated.

Description

本発明は、音量や光量等の出力レベルを調節する静電容量式レベル調節装置に関する。   The present invention relates to a capacitance level adjusting device that adjusts an output level such as a volume and a light amount.

レベル調節装置として、フェーダ装置が従来から使用されている。フェーダ装置は、人が手動でスライドを直線的に移動させることで音量や光量等を変化させる装置である。
このようなレベル調節装置としては、例えば特許文献1〜3が知られている。
A fader device has been conventionally used as a level adjusting device. A fader device is a device that changes volume, light quantity, and the like by a person manually moving a slide linearly.
For example, Patent Documents 1 to 3 are known as such level adjusting devices.

特許文献1には、可動子が、2本の印刷抵抗に接触して導通させつつ、この2本の印刷抵抗上を摺動するスライドボリュームが開示されている。   Patent Document 1 discloses a slide volume in which a mover slides on two printing resistors while bringing the mover into contact with the two printing resistors.

特許文献2の直線変位センサは、ホールICに非接触状態で棒状永久磁石を移動させ、ホールICから出力される電圧を計測することにより、棒状永久磁石の移動距離を計測するものである。   The linear displacement sensor of Patent Document 2 measures the moving distance of a bar-shaped permanent magnet by moving the bar-shaped permanent magnet in a non-contact state with the Hall IC and measuring the voltage output from the Hall IC.

特許文献3のレベル調節装置は、タッチパネル上に、操作部材と操作部材上を移動する操作子とがGUI表示されており、指でタッチパネルを操作して操作子を移動することにより、音量等の出力を調節するものである。   In the level adjustment device of Patent Document 3, an operation member and an operation member that moves on the operation member are displayed on the touch panel as a GUI, and the volume of the operation device is adjusted by moving the operation member by operating the touch panel with a finger. The output is adjusted.

特開平8−97015号公報JP-A-8-97015 特開2006−300631号公報Japanese Patent Laid-Open No. 2006-300631 国際公開第2008/126130号International Publication No. 2008/126130

特許文献1のスライドボリュームは、可動子を、常に印刷抵抗に接触させたまま摺動させる必要がある。そのため可動子の接触部分が摩耗又は劣化する問題があった。   In the slide volume of Patent Document 1, it is necessary to slide the mover while always in contact with the printing resistance. Therefore, there is a problem that the contact portion of the mover is worn or deteriorated.

また特許文献2は、ホールICから得られる出力電圧の変化を棒状永久磁石の移動距離に比例させることが難しいため、棒状永久磁石の磁気変化から棒状永久磁石の位置を正確に検出することは難しかった。また磁気変化は温度変化や湿度変化等の影響を受けやすいため、それらの変動により誤差が生じるおそれがあった。
その上、特許文献2の直線変位センサは、アナログ処理なので、出力の安定性が悪いという問題点があった。
In Patent Document 2, it is difficult to make the change in the output voltage obtained from the Hall IC proportional to the moving distance of the rod-shaped permanent magnet, so it is difficult to accurately detect the position of the rod-shaped permanent magnet from the magnetic change of the rod-shaped permanent magnet. It was. In addition, since the magnetic change is easily affected by temperature change, humidity change, etc., there is a possibility that an error may occur due to such change.
In addition, since the linear displacement sensor of Patent Document 2 is analog processing, there is a problem that output stability is poor.

またタッチパネルから離した指を元の位置に戻すことは、ほぼ不可能である。そのため特許文献3のレベル調節装置では、タッチパネル上で、指を離した位置から再び操作子の操作を始めることは困難であり、操作性が良くなかった。   Also, it is almost impossible to return the finger released from the touch panel to the original position. Therefore, in the level adjustment device of Patent Document 3, it is difficult to start the operation of the operator again from the position where the finger is released on the touch panel, and the operability is not good.

本発明は上述した問題点を解決するために創案されたものである。すなわち本発明の目的は、摩耗や劣化が少なく、長期間安定して機能を維持でき、温度変化や湿度変化等の影響を受けにくく安定しており、操作性が良い静電容量式レベル調節装置を提供することにある。   The present invention has been developed to solve the above-described problems. That is, an object of the present invention is a capacitance type level control device that has little wear and deterioration, can maintain its function stably for a long period of time, and is stable and hardly affected by temperature change, humidity change, etc. Is to provide.

本発明によれば、表面が同一平面上に位置し、互いに電気的に絶縁されており、前記表面に沿って一定間隔で位置決めされた複数の導電性固定板と、
前記平面に対向する対向面を有する単一の導電性移動板と、
複数の導電性固定板の前記表面に対し、導電性移動板の前記対向面を近接させ又は付勢して複数の導電性固定板に沿って案内するガイドと、
前記導電性固定板と導電性移動板との間に生じる静電容量に基づき導電性移動板の位置を演算し、該位置に対応する電気信号を出力する演算装置と、を備え、
さらに複数の導電性固定板に沿って導電性移動板を手動又は自動で操作可能であり非操作時にその位置を保持するノブを備える、ことを特徴とする静電容量式レベル調節装置が提供される。
According to the present invention, a plurality of conductive fixing plates whose surfaces are located on the same plane and are electrically insulated from each other, and positioned at regular intervals along the surface;
A single conductive displacement plate having an opposing surface opposite the plane;
A guide that guides along the plurality of conductive fixing plates by bringing the facing surface of the conductive moving plate close to or energizing the surface of the plurality of conductive fixing plates,
An arithmetic device that calculates a position of the conductive moving plate based on a capacitance generated between the conductive fixed plate and the conductive moving plate, and outputs an electrical signal corresponding to the position;
Further, there is provided a capacitance type level adjusting device characterized by comprising a knob capable of manually or automatically operating the conductive moving plate along a plurality of conductive fixed plates and holding the position when not operated. The

また前記ガイドは、導電性移動板を前記複数の導電性固定板に沿って直線状に案内する直線ガイドであり、
直線ガイドは、前記表面に対し平行であり互いに一定の間隔を隔てた1対の平行棒と、
該平行棒が貫通する1対の貫通孔を有し、1対の平行棒に沿って直線状に案内される非導電性の可動部材と、を有し、可動部材の導電性固定板に対向する側に導電性移動板が固定されており、
さらに、前記ノブが操作されないときに、ノブの移動を防止する位置保持機構を有する。
The guide is a linear guide for guiding the conductive moving plate along the plurality of conductive fixed plates in a straight line.
The linear guide is a pair of parallel bars parallel to the surface and spaced apart from each other;
A non-conductive movable member that has a pair of through-holes through which the parallel bar passes and is guided linearly along the pair of parallel bars, and that faces the conductive fixed plate of the movable member The conductive moving plate is fixed to
Furthermore, a position holding mechanism for preventing the knob from moving when the knob is not operated is provided.

また前記ガイドは、導電性移動板を前記複数の導電性固定板に沿って直線状に案内する直線ガイドであり、
直線ガイドは、前記表面に対し平行に延びる平板と、
該平板が貫通する貫通孔を有し、平板に沿って直線状に案内される非導電性の可動部材と、を有し、可動部材の導電性固定板に対向する側に導電性移動板が固定されており、
さらに、前記ノブが操作されないときに、ノブの移動を防止する位置保持機構を有する。
The guide is a linear guide for guiding the conductive moving plate along the plurality of conductive fixed plates in a straight line.
The linear guide is a flat plate extending parallel to the surface;
A non-conductive movable member that has a through-hole through which the flat plate passes and is guided linearly along the flat plate, and the conductive moving plate is disposed on the side of the movable member facing the conductive fixed plate. Fixed,
Furthermore, a position holding mechanism for preventing the knob from moving when the knob is not operated is provided.

また前記ガイドは、導電性移動板を前記複数の導電性固定板に沿って円弧状に案内する円弧ガイドであり、
複数の導電性固定板は、前記平面に垂直に延びる軸心を中心とする円弧状に位置決めされ、周方向に円弧を形成する扇形形状であり、
円弧ガイドは、前記軸心を中心に回転可能な回転軸と、該回転軸に固定された回転円板とを有し、回転円板の導電性固定板に対向する側に導電性移動板が固定されており、
さらに、前記ノブが操作されないときに、ノブの移動を防止する位置保持機構を有する。
The guide is an arc guide for guiding the conductive moving plate in an arc along the plurality of conductive fixed plates,
The plurality of conductive fixing plates are positioned in an arc shape centering on an axis extending perpendicular to the plane, and have a fan shape that forms an arc in the circumferential direction,
The arc guide has a rotating shaft rotatable about the axis and a rotating disc fixed to the rotating shaft, and a conductive moving plate is provided on the side of the rotating disc facing the conductive fixing plate. Fixed,
Furthermore, a position holding mechanism for preventing the knob from moving when the knob is not operated is provided.

また複数の導電性固定板は、平板状の基板表面に設けられており、隣接する導電性固定板の間に一定間隔の非導電部を有する。   The plurality of conductive fixing plates are provided on the surface of the flat substrate, and have non-conductive portions at regular intervals between adjacent conductive fixing plates.

また前記導電性移動板の移動方向の長さは、前記導電性固定板の1つと、これに隣接する2つの非導電部を合わせた長さより長く設定されている。   The length of the conductive moving plate in the moving direction is set to be longer than the total length of one of the conductive fixed plates and two non-conductive portions adjacent to the conductive fixed plate.

また前記演算装置は、複数の導電性固定板の静電容量をそれぞれ検出し、
検出された複数の静電容量のうち最大値を示す導電性固定板と、これに隣接する2つの導電性固定板の静電容量である隣接値から導電性移動板の位置を演算する。
Further, the arithmetic device detects the capacitance of each of the plurality of conductive fixing plates,
The position of the conductive movable plate is calculated from the conductive fixed plate showing the maximum value among the detected plurality of electrostatic capacitances and the adjacent value which is the electrostatic capacitance of two conductive fixed plates adjacent to the conductive fixed plate.

また前記演算により、前記最大値と2つの隣接値の重心位置を導電性移動板の位置とする。   In addition, by the calculation, the position of the center of gravity of the maximum value and two adjacent values is set as the position of the conductive moving plate.

また前記演算装置は、基板上に設けられており、
前記基板は、さらに複数の導電性固定板と演算装置とを電気的に連結する配線回路を有する。
The arithmetic unit is provided on a substrate,
The substrate further includes a wiring circuit that electrically connects the plurality of conductive fixing plates and the arithmetic unit.

また導電性固定板の前記表面と導電性移動板の前記対向面との間に一定間隔の隙間を有する。   In addition, there is a gap at a constant interval between the surface of the conductive fixed plate and the facing surface of the conductive movable plate.

また導電性固定板の前記表面を覆う非導電性の被膜層と、
導電性固定板の前記表面に導電性移動板の前記対向面を一定面圧で付勢する付勢部材を備え、
導電性移動板は、前記対向面を被膜層に接触させて摺動する。
A non-conductive coating layer covering the surface of the conductive fixing plate;
An urging member for urging the opposing surface of the conductive moving plate at a constant surface pressure on the surface of the conductive fixed plate;
The conductive moving plate slides with the facing surface in contact with the coating layer.

また前記位置保持機構は、前記貫通孔の内面と平行棒との間に挿入された弾性部材、樹脂加工部品、もしくは金属板である。   The position holding mechanism is an elastic member, a resin processed part, or a metal plate inserted between the inner surface of the through hole and the parallel bar.

また前記位置保持機構は、回転軸の外周面に接する弾性部材、樹脂加工部品、もしくは金属板である。   The position holding mechanism is an elastic member, a resin processed part, or a metal plate that is in contact with the outer peripheral surface of the rotating shaft.

上述した本発明の静電容量式レベル調節装置によれば、ガイドが、複数の導電性固定板の前記表面に対し、導電性移動板の前記対向面を近接させ又は付勢して複数の導電性固定板に沿って案内し、演算装置が、導電性固定板と導電性移動板との間に生じる静電容量に基づき導電性移動板の位置を演算し、該位置に対応する電気信号を出力するので、導電性移動板や導電性固定板の摩耗や劣化が少ない。そのため、静電容量式レベル調節装置の機能を長期間安定して維持できる。   According to the capacitance level adjusting device of the present invention described above, the guide moves the opposed surfaces of the conductive movable plate close to or energizes the surfaces of the plurality of conductive fixed plates, thereby providing a plurality of conductive layers. And the arithmetic unit calculates the position of the conductive moving plate based on the capacitance generated between the conductive fixed plate and the conductive moving plate, and outputs an electric signal corresponding to the position. Since it outputs, there is little abrasion and deterioration of a conductive movement board or a conductive fixed board. Therefore, the function of the capacitance type level adjusting device can be stably maintained for a long time.

また本発明の静電容量式レベル調節装置は、導電性固定板と導電性移動板との間に生じる静電容量に基づき導電性移動板の位置を検出するので、温度変化や湿度変化等の影響を受けにくく安定している。   In addition, the capacitance type level adjusting device of the present invention detects the position of the conductive moving plate based on the capacitance generated between the conductive fixed plate and the conductive moving plate. Unaffected and stable.

さらに本発明の静電容量式レベル調節装置は、複数の導電性固定板に沿って導電性移動板を手動又は自動で操作可能であり非操作時にその位置を保持するノブを備えるので、ユーザーが手動操作時にノブから指を離して操作を中断しても、もしくは自動操作時にノブを自動的に制御するための指示ボタンやマウスから指を離して操作を中断しても、指を離したときと同じ位置から再度操作を始動可能であり、操作性が良い。   Furthermore, the capacitance type level adjusting device of the present invention includes a knob that can manually or automatically operate the conductive moving plate along a plurality of conductive fixed plates and holds the position when not operated. Even if you release your finger from the knob during manual operation, or when you release your finger even if you release your finger from the instruction button or mouse to automatically control the knob during automatic operation The operation can be started again from the same position as in Fig. 2, and the operability is good.

本発明の第1実施形態の静電容量式レベル調節装置の上から見た外観説明図である。BRIEF DESCRIPTION OF THE DRAWINGS It is external appearance explanatory drawing seen from the electrostatic capacitance type level adjustment apparatus of 1st Embodiment of this invention. 本発明の第1実施形態の静電容量式レベル調節装置の横から見た外観説明図である。BRIEF DESCRIPTION OF THE DRAWINGS It is external appearance explanatory drawing seen from the side of the electrostatic capacitance type level adjustment apparatus of 1st Embodiment of this invention. 図1AのA−A矢視図である。It is an AA arrow line view of FIG. 1A. 図1BのB−B矢視図である。It is a BB arrow line view of FIG. 1B. 図1BのC−C矢視図である。It is CC arrow line view of FIG. 1B. 本発明の基板の回路図である。It is a circuit diagram of the board | substrate of this invention. 本発明の静電容量式レベル調節装置の断面模式図である。It is a cross-sectional schematic diagram of the electrostatic capacitance type level adjustment apparatus of this invention. 導電性固定板から検出される静電容量を表すグラフである。It is a graph showing the electrostatic capacitance detected from a conductive fixing plate. 本発明の第2実施形態の静電容量式レベル調節装置の説明図である。It is explanatory drawing of the electrostatic capacitance type level adjustment apparatus of 2nd Embodiment of this invention. 本発明の第3実施形態の静電容量式レベル調節装置の外観説明図である。It is external appearance explanatory drawing of the electrostatic capacitance type level adjustment apparatus of 3rd Embodiment of this invention. 図6AのD−D矢視図である。It is DD arrow line view of FIG. 6A. 図6BのE−E矢視図である。It is the EE arrow line view of FIG. 6B. 図6BのF−F矢視図である。It is the FF arrow line view of FIG. 6B. 本発明の第4実施形態の静電容量式レベル調節装置の外観説明図である。It is external appearance explanatory drawing of the electrostatic capacitance type level adjustment apparatus of 4th Embodiment of this invention. 本発明の第4実施形態の静電容量式レベル調節装置の基板の説明図である。It is explanatory drawing of the board | substrate of the electrostatic capacitance type level adjustment apparatus of 4th Embodiment of this invention.

以下、本発明の実施形態を図面に基づいて説明する。なお、各図において共通する部分には同一の符号を付し、重複した説明を省略する。   Hereinafter, embodiments of the present invention will be described with reference to the drawings. In addition, the same code | symbol is attached | subjected to the common part in each figure, and the overlapping description is abbreviate | omitted.

[第1実施形態]
図1Aは、本発明の第1実施形態の静電容量式レベル調節装置2の上から見た外観説明図である。図1Bは、本発明の第1実施形態の静電容量式レベル調節装置2の横から見た外観説明図である。
また図2Aは図1AのA−A矢視図、図2Bは図1BのB−B矢視図、図2Cは図1BのC−C矢視図である。
[First Embodiment]
FIG. 1A is an external explanatory diagram viewed from above the capacitance type level adjusting device 2 according to the first embodiment of the present invention. FIG. 1B is an external explanatory diagram viewed from the side of the capacitance type level adjusting device 2 according to the first embodiment of the present invention.
2A is an AA arrow view of FIG. 1A, FIG. 2B is a BB arrow view of FIG. 1B, and FIG. 2C is a CC arrow view of FIG. 1B.

図1に示すように、本発明の静電容量式レベル調節装置2(以下、レベル調節装置2)は、基板10と、基板10の上に被せる本体30とを備える。   As shown in FIG. 1, the capacitance level adjusting device 2 (hereinafter, level adjusting device 2) of the present invention includes a substrate 10 and a main body 30 that covers the substrate 10.

図2Aと図2Bに示すように、本発明のレベル調節装置2の第1実施形態の本体30は、底面に開口部30bを有する箱型のケースであり、単一の導電性移動板6、ガイド16、及びノブ24を備える。また本実施形態の本体30の上面には、図1Aと図2Bに示すようにノブ24を摺動可能とするためのスリット30aが設けられている。   As shown in FIGS. 2A and 2B, the main body 30 of the first embodiment of the level adjusting device 2 of the present invention is a box-shaped case having an opening 30b on the bottom surface, and a single conductive moving plate 6, A guide 16 and a knob 24 are provided. Further, a slit 30a for allowing the knob 24 to slide is provided on the upper surface of the main body 30 of the present embodiment, as shown in FIGS. 1A and 2B.

スリット30aからは、ノブ24の一部が本体30から飛び出ており、ユーザーはスリット30aに沿ってノブ24を手動で摺動できる。そしてユーザーがノブ24を手動で摺動させると、ノブ24の移動量に応じて音量や光量等の出力レベルが変化する。
なお、本体30のスリット30aは、ガイド16に平行に設けられている。
A part of the knob 24 protrudes from the main body 30 from the slit 30a, and the user can manually slide the knob 24 along the slit 30a. When the user slides the knob 24 manually, the output level such as the volume and the amount of light changes according to the amount of movement of the knob 24.
The slit 30 a of the main body 30 is provided in parallel to the guide 16.

本発明のレベル調節装置2の基板10は、図2Cに示すように、基板10の上面Eに複数の導電性固定板4を備え、演算装置8を基板10の上面Eもしくは裏面に備える。そして基板10は、図1Bに示すように、上面Eを本体30に向けて、開口部30bに嵌められる。   As shown in FIG. 2C, the substrate 10 of the level adjusting device 2 of the present invention includes a plurality of conductive fixing plates 4 on the upper surface E of the substrate 10, and an arithmetic device 8 on the upper surface E or the back surface of the substrate 10. Then, as shown in FIG. 1B, the substrate 10 is fitted into the opening 30 b with the upper surface E facing the main body 30.

図2Cに示すように基板10には、導電性固定板4が、複数存在し、表面Aが同一平面B上に位置し、互いに電気的に絶縁されており、表面Aに沿って一定間隔で位置決めされている。さらに導電性固定板4は、隣接する導電性固定板4との間に一定間隔の非導電部12を有する。
複数の導電性固定板4は、平板状の基板10の上面Eの表面に設けられていることが好ましい。しかし、導電性固定板4は、基板10ではなく、その他の部材に設けられてもよい。
As shown in FIG. 2C, the substrate 10 includes a plurality of conductive fixing plates 4, the surfaces A are located on the same plane B, are electrically insulated from each other, and are spaced along the surface A at regular intervals. It is positioned. Furthermore, the conductive fixing plate 4 has non-conductive portions 12 with a constant interval between the adjacent conductive fixing plates 4.
The plurality of conductive fixing plates 4 are preferably provided on the surface of the upper surface E of the flat substrate 10. However, the conductive fixing plate 4 may be provided not on the substrate 10 but on other members.

また導電性固定板4の表面Aや側面は、非導電性の薄い被膜層13で覆われていることが好ましい(図4Aを参照)。被膜層13は、樹脂、フィルム、もしくはプラスチックからなる。しかし、本実施形態の基板10には、被膜層13がなくてもよい。   Moreover, it is preferable that the surface A and the side surface of the conductive fixing plate 4 are covered with a non-conductive thin coating layer 13 (see FIG. 4A). The coating layer 13 is made of resin, film, or plastic. However, the substrate 10 of this embodiment may not have the coating layer 13.

図3は、本発明の基板10の回路図である。
導電性固定板4は、大きさの等しい複数の導電性の板である。導電性固定板4は、例えば銅板等の矩形の金属板が好ましいが、導電性があればその他の素材でもよく、また、その他の形状でもよい。
FIG. 3 is a circuit diagram of the substrate 10 of the present invention.
The conductive fixing plate 4 is a plurality of conductive plates having the same size. The conductive fixing plate 4 is preferably a rectangular metal plate such as a copper plate, for example. However, other conductive materials or other shapes may be used as long as they are conductive.

また、本発明のレベル調節装置2は、後述するように、導電性移動板6の位置を、演算装置8で重心位置Pを演算で求めることにより検出するので、移動方向の導電性固定板4の長さは、演算装置8の分解能の幅より大きくてよい。   Further, as will be described later, the level adjusting device 2 of the present invention detects the position of the conductive moving plate 6 by calculating the center of gravity position P by the calculation device 8, so that the conductive fixing plate 4 in the moving direction is detected. May be larger than the resolution width of the arithmetic unit 8.

非導電部12は、隣接する導電性固定板4の間に存在する一定間隔の非導電性の部位である。複数の非導電部12は、導電性移動板6の移動方向の長さが同じである。非導電部12は、単に導電性固定板4が存在しない空間でもよい。もしくは非導電部12は、隣接する導電性固定板4に挟まれたゴムなどの非導電性の素材から構成してもよい。   The non-conductive portion 12 is a non-conductive portion having a constant interval that exists between the adjacent conductive fixing plates 4. The plurality of non-conductive portions 12 have the same length in the moving direction of the conductive moving plate 6. The non-conductive portion 12 may simply be a space where the conductive fixing plate 4 does not exist. Alternatively, the nonconductive portion 12 may be made of a nonconductive material such as rubber sandwiched between adjacent conductive fixing plates 4.

演算装置8は、基板10上(基板10の上面Eもしくは裏面)に設けられ、複数の導電性固定板4の静電容量をそれぞれ検出する。もしくは基板10の裏面に演算装置8が設けられていてもよい。そして演算装置8は、導電性固定板4と導電性移動板6との間に生じる静電容量に基づき導電性移動板6の位置を演算し、該位置に対応する電気信号を出力する。
なお、演算装置8は、基板10上以外の場所に設けてもよい。
The arithmetic device 8 is provided on the substrate 10 (the upper surface E or the back surface of the substrate 10), and detects the capacitances of the plurality of conductive fixing plates 4 respectively. Alternatively, the arithmetic device 8 may be provided on the back surface of the substrate 10. Then, the arithmetic unit 8 calculates the position of the conductive moving plate 6 based on the capacitance generated between the conductive fixed plate 4 and the conductive moving plate 6 and outputs an electrical signal corresponding to the position.
Note that the arithmetic device 8 may be provided at a place other than on the substrate 10.

さらに基板10は、複数の導電性固定板4のそれぞれと演算装置8とを電気的に連結する配線回路14を有する。   Further, the substrate 10 includes a wiring circuit 14 that electrically connects each of the plurality of conductive fixing plates 4 and the arithmetic device 8.

すなわち配線回路14は、一端が演算装置8に、他端が1つの導電性固定板4に、それぞれ電気的に連結する。そしてそれぞれの配線回路14は、互いに電気的に絶縁されている。
それにより演算装置8が、各導電性固定板4に生じる静電容量を、それぞれ別々に検出できる。
That is, one end of the wiring circuit 14 is electrically connected to the arithmetic unit 8 and the other end is electrically connected to one conductive fixing plate 4. Each wiring circuit 14 is electrically insulated from each other.
Thereby, the arithmetic unit 8 can separately detect the capacitance generated in each conductive fixing plate 4.

ガイド16は、図2に示すように、複数の導電性固定板4の表面Aに対し、導電性移動板6の対向面Cを近接させ又は付勢して複数の導電性固定板4に沿って案内する。   As shown in FIG. 2, the guide 16 moves along the plurality of conductive fixing plates 4 by bringing the facing surface C of the conductive moving plate 6 close to or energizing the surface A of the plurality of conductive fixing plates 4. I will guide you.

第1実施形態のレベル調節装置2は、図2Aに示すように、導電性固定板4の表面Aと導電性移動板6の対向面Cとの間に一定間隔の隙間Dを有して、対向面Cが表面Aに近接する。隙間Dの幅は、1mm以内であることが好ましい。   As shown in FIG. 2A, the level adjusting device 2 of the first embodiment has a gap D of a constant interval between the surface A of the conductive fixing plate 4 and the opposing surface C of the conductive moving plate 6, The facing surface C is close to the surface A. The width of the gap D is preferably within 1 mm.

それにより、本発明の第1実施形態のレベル調節装置2は、導電性移動板6の対向面Cと導電性固定板4の表面Aとを接触させずに、導電性移動板6をガイド16に沿って摺動できるため、導電性固定板4や導電性移動板6が摩耗したり劣化したりすることがない。そのため、長期間にわたりレベル調節装置2の機能を安定して維持できる。   Accordingly, the level adjusting device 2 according to the first embodiment of the present invention guides the conductive moving plate 6 to the guide 16 without bringing the opposing surface C of the conductive moving plate 6 into contact with the surface A of the conductive fixed plate 4. Therefore, the conductive fixed plate 4 and the conductive movable plate 6 are not worn or deteriorated. Therefore, the function of the level adjusting device 2 can be stably maintained over a long period.

本発明の第1実施形態のガイド16は、導電性移動板6を複数の導電性固定板4に沿って直線状に案内する直線ガイド16aである。直線ガイド16aは、表面Aに対して一定の間隔を隔て、表面Aに対し平行であり互いに一定の間隔を隔てた1対の平行棒18a,18bと、1対の平行棒18a,18bに沿って直線状に案内される非導電性の可動部材19と、を有する。   The guide 16 according to the first embodiment of the present invention is a linear guide 16 a that guides the conductive moving plate 6 linearly along the plurality of conductive fixed plates 4. The straight guide 16a is linearly spaced along a pair of parallel bars 18a and 18b and a pair of parallel bars 18a and 18b that are parallel to the surface A and spaced apart from each other by a constant distance from the surface A. And a non-conductive movable member 19 guided in a shape.

平行棒18a,18bは、両端が本体30に固定されていることが好ましい。   Both ends of the parallel bars 18a and 18b are preferably fixed to the main body 30.

可動部材19は、平行棒18a,18bが貫通する1対の貫通孔20a,20b(図示せず)を有し、可動部材19の導電性固定板4に対向する側に導電性移動板6が固定されている。   The movable member 19 has a pair of through holes 20a and 20b (not shown) through which the parallel bars 18a and 18b pass, and the conductive movable plate 6 is fixed to the side of the movable member 19 facing the conductive fixed plate 4. Has been.

また本発明のレベル調節装置2のガイド16は、ノブ24が操作されないときに、ノブ24の移動を防止する位置保持機構26を有する。
本実施形態の可動部材19は、位置保持機構26を、貫通孔20a,20bの内面と平行棒18a,18bとの間に有する。第1実施形態の位置保持機構26は、貫通孔20a,20bの内面と平行棒18a,18bとの間に挿入された弾性部材、樹脂加工部品、もしくは金属板であることが好ましい。
なお、第1実施形態の位置保持機構26は、これらに限らず、必要に応じたその他の機構でもよい。
Further, the guide 16 of the level adjusting device 2 of the present invention has a position holding mechanism 26 that prevents the knob 24 from moving when the knob 24 is not operated.
The movable member 19 of the present embodiment has a position holding mechanism 26 between the inner surfaces of the through holes 20a and 20b and the parallel bars 18a and 18b. The position holding mechanism 26 of the first embodiment is preferably an elastic member, a resin processed component, or a metal plate inserted between the inner surfaces of the through holes 20a and 20b and the parallel bars 18a and 18b.
Note that the position holding mechanism 26 of the first embodiment is not limited to these, and may be other mechanisms as necessary.

また本実施形態の直線ガイド16aは、表面Aに対し平行に延び、導電性移動板6を複数の導電性固定板4に沿って直線状に案内できるのであれば、平行棒18a,18bの代わりに、平板やその他の構成を有してもよい。すなわち、表面に対し平行に延びる平板と、平板が貫通する貫通孔を有し、平板に沿って直線状に案内される非導電性の可動部材と、を有していてもよい。   Further, the linear guide 16a of the present embodiment extends in parallel with the surface A, and can guide the conductive moving plate 6 linearly along the plurality of conductive fixed plates 4, instead of the parallel bars 18a and 18b. It may have a flat plate or other structure. That is, you may have the flat plate extended in parallel with the surface, and the nonelectroconductive movable member which has a through-hole which a flat plate penetrates, and is guided linearly along a flat plate.

本発明の第1実施形態のレベル調節装置2は、位置保持機構26を備えることにより、たとえユーザーがノブ24から手を離したとしても、可動部材19の位置を保つことができる。   The level adjusting device 2 according to the first embodiment of the present invention includes the position holding mechanism 26, so that the position of the movable member 19 can be maintained even if the user releases his hand from the knob 24.

ノブ24は、複数の導電性固定板4に沿って導電性移動板6を手動で操作可能であり非操作時にその位置を保持するつまみや可動子である。   The knob 24 is a knob or a mover that can manually operate the conductive moving plate 6 along the plurality of conductive fixed plates 4 and holds the position when not operated.

なお、ノブ24は、複数の導電性固定板4に沿って導電性移動板6を自動操作可能であり非操作時にその位置を保持するつまみや可動子であってもよい。
この場合、ユーザーが指示ボタンやマウスを操作することにより与えた指示に従い、周知のアクチュエータと制御装置とでノブ24の動きを自動的に制御することが好ましい。
The knob 24 may be a knob or a movable element that can automatically operate the conductive moving plate 6 along the plurality of conductive fixed plates 4 and holds the position when not operated.
In this case, it is preferable to automatically control the movement of the knob 24 by a known actuator and control device in accordance with an instruction given by the user operating the instruction button or the mouse.

このように本発明のレベル調節装置2は、非操作時にその位置を保持するノブ24を有するので、ユーザーがノブ24から指を離して操作を中断しても、指を離したときと同じ位置から再度操作を始動でき、操作性が良い。   As described above, the level adjusting device 2 of the present invention has the knob 24 that holds the position when not operated, so that even if the user releases the finger from the knob 24 and interrupts the operation, the same position as when the user releases the finger. Operation can be started again from the beginning, and operability is good.

導電性移動板6は、単一で使用され、平面Bに対向する対向面Cを有する。
導電性移動板6の移動方向の長さは、導電性固定板4の1つと、これに隣接する2つの非導電部12を合わせた長さより長く設定されている。導電性移動板6の移動方向の長さは、この長さより長ければ、2つ以上の導電性固定板4と1つの非導電部12とを合わせた移動方向の長さより長くてもよい。また導電性移動板6が、3つ以上の導電性固定板4を物理的に覆っていてもよい。
The conductive moving plate 6 is used as a single unit and has a facing surface C that faces the plane B.
The length of the conductive moving plate 6 in the moving direction is set to be longer than the total length of one of the conductive fixed plates 4 and the two non-conductive portions 12 adjacent thereto. The length in the moving direction of the conductive moving plate 6 may be longer than the length in the moving direction in which two or more conductive fixing plates 4 and one non-conductive portion 12 are combined as long as the length is longer than this length. Further, the conductive moving plate 6 may physically cover the three or more conductive fixed plates 4.

したがって演算装置8は、3つの導電性固定板4の静電容量に基づき、後述する静電容量の重心位置Pを求めてよく、また4つ以上又は2つの導電性固定板4から検出される静電容量に基づいて、重心位置Pを求めてもよい。   Accordingly, the arithmetic unit 8 may obtain a later-described electrostatic gravity center position P based on the electrostatic capacitances of the three conductive fixing plates 4 and is detected from four or more or two conductive fixing plates 4. The center of gravity position P may be obtained based on the capacitance.

また導電性移動板6は、鍍金をした真鍮が好ましいが、導電性のある金属であれば、その他の素材でもよい。加えて導電性移動板6は、矩形が好ましいが、その他の形状でもよい。
なお、本発明のレベル調節装置2は、演算で求めた重心位置Pを導電性移動板6の位置として検出するので、導電性移動板6の移動方向の長さは、演算装置8の分解能の幅より大きくてよい。
The conductive moving plate 6 is preferably plated brass, but may be other materials as long as it is a conductive metal. In addition, the conductive moving plate 6 is preferably rectangular, but may have other shapes.
Since the level adjusting device 2 of the present invention detects the center of gravity position P obtained by calculation as the position of the conductive moving plate 6, the length of the conductive moving plate 6 in the moving direction is equal to the resolution of the calculating device 8. It may be larger than the width.

次に本発明の第1実施形態のレベル調節装置2を使用し、本発明の機構を説明する。
図4Aは本発明のレベル調節装置2の断面模式図であり、図4Bは導電性固定板4a〜4eから検出される静電容量を表すグラフである。
なお、図4Aの導電性固定板4は、左から導電性固定板4a,4b,4c,4d,4eとする。また図4Bは、x軸を導電性固定板4の位置の座標値Xとし、y軸を静電容量とする。
Next, the mechanism of the present invention will be described using the level adjusting device 2 of the first embodiment of the present invention.
4A is a schematic cross-sectional view of the level adjusting device 2 of the present invention, and FIG. 4B is a graph showing the capacitance detected from the conductive fixing plates 4a to 4e.
The conductive fixing plate 4 in FIG. 4A is assumed to be conductive fixing plates 4a, 4b, 4c, 4d, and 4e from the left. In FIG. 4B, the x-axis is the coordinate value X of the position of the conductive fixing plate 4, and the y-axis is the capacitance.

図4Aで示すように、導電性移動板6はガイド16(図2Aを参照)に誘導され、複数の導電性固定板4a〜4eに沿って移動する。各導電性固定板4にはそれぞれ一本ずつ配線回路14(図3を参照)が設けられており、各配線回路14が互いに電気的に絶縁した状態で、演算装置8(図3を参照)に連結されている。   As shown in FIG. 4A, the conductive moving plate 6 is guided by the guide 16 (see FIG. 2A) and moves along the plurality of conductive fixing plates 4a to 4e. Each conductive fixing plate 4 is provided with one wiring circuit 14 (see FIG. 3), and the arithmetic device 8 (see FIG. 3) in a state where the wiring circuits 14 are electrically insulated from each other. It is connected to.

演算装置8は、複数の導電性固定板4a〜4eの静電容量をそれぞれ検出する。そして演算装置8は、検出された複数の静電容量のうち最大値Yを示す導電性固定板4cと、これに隣接する2つの導電性固定板4b,4dの静電容量である隣接値Z1,Z2から導電性移動板6の位置を演算する。
そして前記演算により、最大値Yと2つの隣接値Z1,Z2の重心位置Pを導電性移動板6の位置とする。
The arithmetic device 8 detects the capacitance of each of the plurality of conductive fixing plates 4a to 4e. The arithmetic unit 8 then includes an adjacent value Z1 that is the electrostatic capacitance of the conductive fixing plate 4c showing the maximum value Y among the detected plurality of electrostatic capacitances and the two conductive fixing plates 4b and 4d adjacent thereto. , Z2, the position of the conductive movable plate 6 is calculated.
And by the said calculation, the gravity center position P of the maximum value Y and two adjacent values Z1, Z2 is made into the position of the electroconductive moving plate 6. FIG.

例えば図4の場合、各導電性固定板4a,4b,4c,4d,4eの位置の座標値Xa,Xb,Xc,Xd,Xeは、演算装置8に記憶されている。なお、座標値Xa,Xb,Xc,Xd,Xeは、予め定められた定点Oからの移動方向の距離である。   For example, in the case of FIG. 4, the coordinate values Xa, Xb, Xc, Xd, and Xe of the positions of the respective conductive fixing plates 4a, 4b, 4c, 4d, and 4e are stored in the arithmetic unit 8. The coordinate values Xa, Xb, Xc, Xd, and Xe are distances in the movement direction from a predetermined fixed point O.

導電性移動板6の移動方向の長さは、導電性固定板4の1つと、これに隣接する2つの非導電部12を合わせた長さより長いため、レベル調節装置2の演算装置8が検出し得る静電容量の最大値Yは、導電性移動板6が全てを覆っている導電性固定板4から生じる静電容量である。
しかし、導電性移動板6が導電性固定板4cの60%と導電性固定板4dの40%を覆う場合のように、導電性移動板6が全てを覆う導電性固定板4が無いときの最大値Yは、導電性移動板6が全てを覆う導電性固定板4から生じる静電容量より小さい。この場合は、導電性固定板4cから検出する静電容量を最大値Yとする。
Since the length of the conductive moving plate 6 in the moving direction is longer than the combined length of one of the conductive fixed plates 4 and the two non-conductive portions 12 adjacent thereto, the arithmetic unit 8 of the level adjusting device 2 detects it. The maximum value Y of the electrostatic capacity that can be generated is the electrostatic capacity that is generated from the conductive fixed plate 4 that is covered by the conductive moving plate 6.
However, as in the case where the conductive moving plate 6 covers 60% of the conductive fixed plate 4c and 40% of the conductive fixed plate 4d, there is no conductive fixed plate 4 with which the conductive moving plate 6 covers all. The maximum value Y is smaller than the capacitance generated from the conductive fixed plate 4 that covers the entire conductive moving plate 6. In this case, the capacitance detected from the conductive fixing plate 4c is set to the maximum value Y.

例えば、導電性移動板6が導電性固定板4bの40%、導電性固定板4cの100%、導電性固定板4dの60%を覆っている図4Aの場合を説明する。   For example, the case of FIG. 4A in which the conductive moving plate 6 covers 40% of the conductive fixed plate 4b, 100% of the conductive fixed plate 4c, and 60% of the conductive fixed plate 4d will be described.

まず導電性固定板4a,4eは、導電性移動板6に覆われていないため、静電容量がほとんど検出されない。すなわち、導電性固定板4a,4eから検出される静電容量は予め定めた閾値Fより小さい。
なお、閾値Fとは、導電性移動板6に覆われない導電性固定板4から検出し得る静電容量の最大値である。
First, since the conductive fixed plates 4a and 4e are not covered with the conductive moving plate 6, the capacitance is hardly detected. That is, the capacitance detected from the conductive fixing plates 4a and 4e is smaller than a predetermined threshold value F.
The threshold value F is the maximum value of the capacitance that can be detected from the conductive fixed plate 4 that is not covered by the conductive moving plate 6.

反対に図4Aの導電性固定板4cは、導電性移動板6に全て覆われている。そのため導電性固定板4cから検出される静電容量は最大値Yであり、検出され得る静電容量の100%となる。
同様に、導電性固定板4bから検出される静電容量は、最大値Yの40%となり、導電性固定板4dから検出される静電容量は、最大値Yの60%となる。
On the other hand, the conductive fixing plate 4c in FIG. 4A is entirely covered with the conductive moving plate 6. Therefore, the capacitance detected from the conductive fixing plate 4c is the maximum value Y, which is 100% of the detectable capacitance.
Similarly, the capacitance detected from the conductive fixing plate 4b is 40% of the maximum value Y, and the capacitance detected from the conductive fixing plate 4d is 60% of the maximum value Y.

このように、導電性移動板6が導電性固定板4を覆う量が大きくなるほど、静電容量が増加する。   Thus, the capacitance increases as the amount of the conductive moving plate 6 covering the conductive fixed plate 4 increases.

次に、演算装置8の演算について説明する。
(1)まず演算装置8は、予め定めた閾値Fより大きい静電容量を抽出値として抽出する。
例えば図4Bでは、導電性固定板4b,4c,4dの静電容量が抽出される。
Next, the calculation of the calculation device 8 will be described.
(1) First, the arithmetic unit 8 extracts a capacitance larger than a predetermined threshold F as an extraction value.
For example, in FIG. 4B, the electrostatic capacitances of the conductive fixing plates 4b, 4c, and 4d are extracted.

(2)次いで演算装置8は、抽出値が抽出された導電性固定板4のうち、最大値Yを示す導電性固定板4cに隣接する2つの導電性固定板4b,4dの静電容量を隣接値Z1,Z2とし、最大値Yと隣接値Z1,Z2と、それらを検出した導電性固定板4b,4c,4dの位置の座標値Xb,Xc,Xdで、最大値Yと隣接値Z1,Z2との重心位置Pを演算する。 (2) Next, the arithmetic unit 8 calculates the capacitances of the two conductive fixing plates 4b and 4d adjacent to the conductive fixing plate 4c showing the maximum value Y among the conductive fixing plates 4 from which the extracted values are extracted. The adjacent values Z1 and Z2 are the maximum value Y, the adjacent values Z1 and Z2, and the coordinate values Xb, Xc and Xd of the positions of the conductive fixing plates 4b, 4c and 4d where they are detected. , Z2 and the center of gravity position P are calculated.

なお、図4Aの場合、最大値Yを検出する導電性固定板4cの位置の座標値はXc、隣接値Z1を検出する導電性固定板4bの位置の座標値はXb、隣接値Z2を検出する導電性固定板4dの位置の座標値はXdである。
重心位置Pは、次の式1で表される。
In the case of FIG. 4A, the coordinate value of the position of the conductive fixing plate 4c that detects the maximum value Y is Xc, the coordinate value of the position of the conductive fixing plate 4b that detects the adjacent value Z1 is Xb, and the adjacent value Z2 is detected. The coordinate value of the position of the conductive fixing plate 4d is Xd.
The barycentric position P is expressed by the following formula 1.


P=(Z1×Xb+Y×Xc+Z2×Xd)/(Z1+Y+Z2)

そしてこの演算により得た重心位置Pを導電性移動板6の位置とする。

P = (Z1 * Xb + Y * Xc + Z2 * Xd) / (Z1 + Y + Z2)

The center of gravity position P obtained by this calculation is set as the position of the conductive movable plate 6.

なお、ここでは、3つの導電性固定板4を導電性移動板6が覆う場合を例示して説明しているが、導電性移動板6が2つの導電性固定板4しか覆わず、隣接値Z1またはZ2が得られない場合には、隣接値Z1またはZ2に0を入力して演算してもよい。   Here, the case where the conductive movable plate 6 covers the three conductive fixed plates 4 is described as an example. However, the conductive movable plate 6 covers only the two conductive fixed plates 4, and the adjacent value. If Z1 or Z2 cannot be obtained, the calculation may be performed by inputting 0 to the adjacent value Z1 or Z2.

また導電性移動板6の移動方向の長さが2枚の導電性固定板4の移動方向の長さよりも長い場合は、最大値Yが複数あるとして演算する。
すなわち、例えば3枚の導電性固定板4の移動方向の長さより導電性移動板6の移動方向の長さの方が長い場合には、最大値Yが複数(最大値Y1,Y2,Y3)得られる。
If the length of the conductive moving plate 6 in the moving direction is longer than the length of the two conductive fixed plates 4 in the moving direction, it is calculated that there are a plurality of maximum values Y.
That is, for example, when the length of the conductive moving plate 6 in the moving direction is longer than the length of the three conductive fixing plates 4 in the moving direction, there are a plurality of maximum values Y (maximum values Y1, Y2, Y3). can get.

例として、最大値Y1が導電性固定板4b、最大値Y2が導電性固定板4c、最大値Y3が導電性固定板4dから検出されるとした場合を、図4Aを使用し、説明する。
この場合、複数の最大値Y1,Y2,Y3が検出される導電性固定板4b,4c,4dのうち、両端に位置する導電性固定板4b,4dにそれぞれ隣接し、かつ最大値Yを検出しない導電性固定板4a,4eの静電容量を隣接値Z1,Z2とする。そして、複数の最大値Y1,Y2,Y3と、隣接値Z1,Z2と、それらを検出した導電性固定板4a,4b,4c,4d,4eの位置の座標値Xa,Xb,Xc,Xd,Xeで、最大値Y1,Y2,Y3と隣接値Z1,Z2との重心位置Pを演算する。
As an example, a case where the maximum value Y1 is detected from the conductive fixing plate 4b, the maximum value Y2 is detected from the conductive fixing plate 4c, and the maximum value Y3 is detected from the conductive fixing plate 4d will be described with reference to FIG. 4A.
In this case, among the conductive fixing plates 4b, 4c and 4d from which a plurality of maximum values Y1, Y2 and Y3 are detected, the conductive fixing plates 4b and 4d located at both ends are adjacent to each other and the maximum value Y is detected. The electrostatic capacities of the conductive fixing plates 4a and 4e that are not used are adjacent values Z1 and Z2. Then, a plurality of maximum values Y1, Y2, Y3, adjacent values Z1, Z2, and coordinate values Xa, Xb, Xc, Xd, of the positions of the conductive fixing plates 4a, 4b, 4c, 4d, 4e where they are detected. The center of gravity position P between the maximum values Y1, Y2, Y3 and the adjacent values Z1, Z2 is calculated by Xe.

このように本発明のレベル調節装置2は、重心位置Pを演算で求め、重心位置Pを導電性移動板6の位置とすることにより、導電性固定板4と導電性移動板6の移動方向の長さが演算装置8の分解能の幅より大きくても、導電性移動板6の位置を正確に検出できる。   As described above, the level adjusting device 2 according to the present invention obtains the center of gravity position P by calculation, and uses the center of gravity position P as the position of the conductive movable plate 6 to move the conductive fixed plate 4 and the conductive movable plate 6 in the moving direction. The position of the conductive movable plate 6 can be accurately detected even if the length of the is larger than the resolution width of the arithmetic unit 8.

すなわち、例えば、本発明のレベル調節装置2ではないレベル調節装置がこの演算を行わないとした場合、導電性固定板と導電性移動板との移動方向の長さを演算装置の分解能の幅より小さく設定しなければ、そのレベル調節装置の性能を高められない。
つまり、演算を行わない場合、演算装置は、各導電性固定板から検出された静電容量を閾値Fと比較し、抽出値が抽出された導電性固定板上に導電性移動板が存在すると判断する。しかし、抽出値が抽出された導電性固定板上のどの位置に導電性移動板が位置するのかについては、検出できない。そのため、この場合、レベル調節装置の性能を高めるためには、導電性固定板と導電性移動板との移動方向の長さを演算装置の分解能の幅より小さく設定しなければならない。
That is, for example, when a level adjustment device that is not the level adjustment device 2 of the present invention does not perform this calculation, the length of the movement direction of the conductive fixed plate and the conductive movement plate is determined by the resolution width of the calculation device. If it is not set small, the performance of the level adjusting device cannot be improved.
That is, in the case where the calculation is not performed, the calculation device compares the capacitance detected from each conductive fixed plate with the threshold value F, and the conductive moving plate exists on the conductive fixed plate from which the extracted value is extracted. to decide. However, it cannot be detected at which position on the conductive fixed plate from which the extracted value is extracted the conductive moving plate is located. Therefore, in this case, in order to improve the performance of the level adjusting device, the length in the moving direction between the conductive fixed plate and the conductive moving plate must be set smaller than the resolution width of the arithmetic device.

それに対し本発明のレベル調節装置2は、導電性移動板6の位置を、演算装置8で重心位置Pを演算で求めることにより検出するので、導電性固定板4や導電性移動板6の移動方向の長さを、演算装置8の分解能の幅より小さく設定しなくても、レベル調節装置2の性能を十分に高くできる。そして分解能の幅より小さい導電性固定板4や導電性移動板6を使用する場合に比べ、レベル調節装置2を製造しやすく設計でき、製造コストを抑えることができる。その上、本発明のレベル調節装置2は、導電性固定板4や導電性移動板6が大きい分、基板10や可動部材19への接着面積を大きく設計でき、壊れにくい。   On the other hand, since the level adjusting device 2 of the present invention detects the position of the conductive moving plate 6 by calculating the center of gravity position P by the calculation device 8, the movement of the conductive fixed plate 4 and the conductive moving plate 6 is detected. Even if the length in the direction is not set smaller than the resolution width of the arithmetic device 8, the performance of the level adjusting device 2 can be sufficiently increased. And compared with the case where the electroconductive fixed plate 4 and the electroconductive moving plate 6 which are smaller than the resolution | decomposability width are used, the level adjustment apparatus 2 can be designed easily, and manufacturing cost can be suppressed. In addition, the level adjusting device 2 of the present invention can be designed to have a large adhesion area to the substrate 10 and the movable member 19 because the conductive fixed plate 4 and the conductive movable plate 6 are large, and is not easily broken.

また本発明のレベル調節装置2は、導電性移動板6の位置の検出に静電容量を使用するため、温度変化や湿度変化等の影響を受けにくく安定している。   In addition, since the level adjusting device 2 of the present invention uses a capacitance for detecting the position of the conductive moving plate 6, the level adjusting device 2 is stable and hardly affected by changes in temperature and humidity.

[第2実施形態]
次に、本発明の第2実施形態のレベル調節装置2を説明する。
図5は、本発明の第2実施形態のレベル調節装置2の説明図である。
[Second Embodiment]
Next, the level adjustment apparatus 2 of 2nd Embodiment of this invention is demonstrated.
FIG. 5 is an explanatory diagram of the level adjusting device 2 according to the second embodiment of the present invention.

第2実施形態のレベル調節装置2は、導電性固定板4の表面Aを覆う非導電性の被膜層13(図4Aを参照)と、導電性固定板4の表面Aに導電性移動板6の対向面Cを一定面圧で付勢する付勢部材28とを備える。   The level adjusting device 2 of the second embodiment includes a non-conductive coating layer 13 (see FIG. 4A) that covers the surface A of the conductive fixed plate 4, and a conductive moving plate 6 on the surface A of the conductive fixed plate 4. And an urging member 28 that urges the opposite surface C with a constant surface pressure.

第2実施形態の被膜層13は、導電性固定板4の表面Aや側面を覆う樹脂、フィルム、ゴム、もしくはプラスチックからなる非導電性の薄い層である。第2実施形態のレベル調節装置2は、被膜層13を備えることにより、導電性固定板4を互いに電気的に絶縁でき、かつ導電性移動板6が導電性固定板4に付勢されても、導電性固定板4と導電性移動板6とを電気的に絶縁に保つことができる。   The coating layer 13 of the second embodiment is a non-conductive thin layer made of resin, film, rubber, or plastic that covers the surface A and side surfaces of the conductive fixing plate 4. The level adjusting device 2 according to the second embodiment includes the coating layer 13 so that the conductive fixing plates 4 can be electrically insulated from each other, and the conductive moving plate 6 is biased by the conductive fixing plate 4. The conductive fixing plate 4 and the conductive moving plate 6 can be kept electrically insulated.

また第2実施形態のレベル調節装置2は付勢部材28を備えることにより、導電性移動板6が常に一定の面圧で導電性固定板4に付勢された状態で、直線ガイド16aに沿って移動できる。
この場合、導電性移動板6は、対向面Cを被膜層13に接触させて摺動する。すなわち、被膜層13の上面と対向面Cとの隙間は0となる。
Further, the level adjusting device 2 of the second embodiment includes the urging member 28 so that the conductive moving plate 6 is always urged to the conductive fixing plate 4 with a constant surface pressure along the linear guide 16a. Can move.
In this case, the conductive moving plate 6 slides with the facing surface C in contact with the coating layer 13. That is, the gap between the upper surface of the coating layer 13 and the facing surface C is zero.

付勢部材28は、可動部材19と導電性移動板6との間に設けられた薄板状のゴムであることが好ましい。もしくは付勢部材28は、基板10の下方に設けられ、下から基板10を押し上げるゴムやばねでもよい。   The urging member 28 is preferably a thin rubber plate provided between the movable member 19 and the conductive movable plate 6. Alternatively, the urging member 28 may be a rubber or a spring that is provided below the substrate 10 and pushes up the substrate 10 from below.

第2実施形態のレベル調節装置2は、付勢部材28を有することにより対向面Cが表面Aにかける面圧を一定にできるため、音量や光量等の出力レベルを安定して一定に保つことができる。
またユーザーの指からノブ24にかかる力を、付勢部材28が一部吸収した上で表面Aに伝達するので、付勢部材28がない場合よりも表面Aにかかる面圧を小さくできる。それにより、導電性移動板6が導電性固定板4に接触した状態で導電性移動板6を摺動しても、付勢部材28がない場合より摩擦や劣化を少なくでき、レベル調節装置2の機能を長期間維持できる。
Since the level adjusting device 2 of the second embodiment has the urging member 28, the surface pressure applied to the surface A by the facing surface C can be made constant, so that the output level such as volume and light quantity can be kept stable and constant. Can do.
Further, the force applied to the knob 24 from the user's finger is transmitted to the surface A after being partially absorbed by the urging member 28, so that the surface pressure applied to the surface A can be made smaller than when the urging member 28 is not provided. As a result, even if the conductive moving plate 6 is slid in a state where the conductive moving plate 6 is in contact with the conductive fixed plate 4, friction and deterioration can be reduced as compared with the case where the biasing member 28 is not provided. The function of can be maintained for a long time.

その他の第2実施形態のレベル調節装置2の構成と効果は、第1実施形態のレベル調節装置2と同様である。   Other configurations and effects of the level adjusting device 2 of the second embodiment are the same as those of the level adjusting device 2 of the first embodiment.

[第3実施形態]
次に、本発明の第3実施形態のレベル調節装置2を説明する。
図6Aは本発明の第3実施形態のレベル調節装置2の外観説明図であり、図6Bは図6AのD−D矢視図である。
図7Aは図6BのE−E矢視図であり、図7Bは図6BのF−F矢視図である。
[Third Embodiment]
Next, the level adjustment apparatus 2 of 3rd Embodiment of this invention is demonstrated.
FIG. 6A is an external explanatory view of the level adjusting device 2 according to the third embodiment of the present invention, and FIG. 6B is a view taken along the line DD in FIG. 6A.
7A is an EE arrow view of FIG. 6B, and FIG. 7B is an FF arrow view of FIG. 6B.

第3実施形態のレベル調節装置2のガイド16は、導電性移動板6を複数の導電性固定板4に沿って円弧状に案内する円弧ガイド16bである。
図6Bと図7Aに示すように、円弧ガイド16bは、平面Bに垂直に延びる軸心を中心に回転可能な回転軸32と、回転軸32に固定された回転円板34とを有し、回転円板34の導電性固定板4に対向する側に導電性移動板6が固定されている。
The guide 16 of the level adjusting device 2 according to the third embodiment is an arc guide 16 b that guides the conductive moving plate 6 along the plurality of conductive fixed plates 4 in an arc shape.
As shown in FIGS. 6B and 7A, the arc guide 16b includes a rotation shaft 32 that can rotate around an axis extending perpendicular to the plane B, and a rotation disk 34 fixed to the rotation shaft 32. The conductive moving plate 6 is fixed to the side of the rotating disk 34 facing the conductive fixed plate 4.

回転軸32は、基板10に垂直な軸であり、基板10が固定された状態で、回転円板34及び導電性移動板6と一体に回転する。回転軸32は、先端部にノブ24が設けられている。   The rotating shaft 32 is an axis perpendicular to the substrate 10 and rotates integrally with the rotating disk 34 and the conductive moving plate 6 in a state where the substrate 10 is fixed. The rotary shaft 32 is provided with a knob 24 at the tip.

回転円板34は、絶縁体の円形の板であり、好ましくはベーク板やエポキシ板で構成されていることが好ましい。   The rotating disk 34 is an insulating circular plate, and is preferably composed of a bake plate or an epoxy plate.

なお、第1実施形態と同様に、導電性固定板4の表面Aと導電性移動板6の対向面Cとの間に一定間隔の隙間Dを有することが好ましい。   As in the first embodiment, it is preferable to have a gap D of a constant interval between the surface A of the conductive fixed plate 4 and the facing surface C of the conductive moving plate 6.

もしくは、第2実施形態と同様に、導電性固定板4の表面Aを覆う非導電性の被膜層13と、導電性固定板4の表面Aに導電性移動板6の対向面Cを一定面圧で付勢する付勢部材28とを備えていてもよい。付勢部材28は、回転円板34と導電性移動板6との間に設けられたゴムやばね等の弾性体であることが好ましい。   Alternatively, as in the second embodiment, the non-conductive coating layer 13 covering the surface A of the conductive fixing plate 4 and the surface C of the conductive fixing plate 4 facing the surface C of the conductive moving plate 6 with a fixed surface. An urging member 28 that urges with pressure may be provided. The urging member 28 is preferably an elastic body such as a rubber or a spring provided between the rotating disk 34 and the conductive moving plate 6.

また第3実施形態の位置保持機構26は、回転軸32の外周面に接する弾性部材、樹脂加工部品、もしくは金属板であることが好ましいが、その他の機構でもよい。   The position holding mechanism 26 of the third embodiment is preferably an elastic member, a resin processed part, or a metal plate that is in contact with the outer peripheral surface of the rotating shaft 32, but may be other mechanisms.

図7Bに示すように、第3実施形態の複数の導電性固定板4は、平面Bに垂直に延びる軸心を中心とする円弧状に位置決めされ、周方向に円弧を形成する扇形形状である。   As shown in FIG. 7B, the plurality of conductive fixing plates 4 of the third embodiment are positioned in an arc shape centering on an axis extending perpendicular to the plane B, and have a sector shape that forms an arc in the circumferential direction. .

また第3実施形態の非導電部12は、軸心を中心とする円弧状に位置決めされている。第3実施形態の非導電部12は、周方向に円弧を形成する扇形形状であることが好ましい。もしくは第3実施形態の非導電部12は、互いに隣り合う導電性固定板4に隣接する2辺が平行でもよい。   In addition, the non-conductive portion 12 of the third embodiment is positioned in an arc shape centered on the axis. The non-conductive portion 12 of the third embodiment is preferably a sector shape that forms an arc in the circumferential direction. Alternatively, in the non-conductive portion 12 of the third embodiment, two sides adjacent to the conductive fixing plates 4 adjacent to each other may be parallel.

第3実施形態の導電性移動板6は、回転軸32を中心とする扇形形状であることが好ましい。しかしこれに限らず、第3実施形態の導電性移動板6は、矩形や円形でもよい。   The conductive moving plate 6 of the third embodiment preferably has a sector shape centered on the rotating shaft 32. However, the present invention is not limited to this, and the conductive moving plate 6 of the third embodiment may be rectangular or circular.

本実施形態のレベル調節装置2は、円弧ガイド16bにより、円弧状に位置決めされた導電性固定板4の表面A上を導電性移動板6が回転する構成であるため、複数回ノブ24を回転させることにより、音量や光量等の出力レベルを0から無限大まで調節できる。   Since the level adjusting device 2 of the present embodiment is configured such that the conductive moving plate 6 rotates on the surface A of the conductive fixing plate 4 positioned in an arc shape by the arc guide 16b, the knob 24 is rotated a plurality of times. By adjusting the output level, it is possible to adjust the output level such as volume and light quantity from 0 to infinity.

その他の第3実施形態のレベル調節装置2の構成と効果は、第1実施形態又は第2実施形態のレベル調節装置2と同様である。   Other configurations and effects of the level adjusting device 2 of the third embodiment are the same as those of the level adjusting device 2 of the first embodiment or the second embodiment.

[第4実施形態]
次に、本発明の第4実施形態のレベル調節装置2を説明する。
図8Aは本発明の第4実施形態のレベル調節装置2の外観説明図、図8Bは本発明の第4実施形態のレベル調節装置2の基板10の説明図である。
[Fourth Embodiment]
Next, the level adjusting device 2 according to the fourth embodiment of the present invention will be described.
FIG. 8A is an external explanatory view of the level adjusting device 2 of the fourth embodiment of the present invention, and FIG. 8B is an explanatory view of the substrate 10 of the level adjusting device 2 of the fourth embodiment of the present invention.

第4実施形態のレベル調節装置2は、1枚の基板10に、複数の導電性固定板4を形成している。導電性固定板4は、図8Aと図8Bに示すように、第1実施形態のようなフェーダ型と、第3実施形態のようなダイヤル型を組み合わせてもよい。このように形成することにより、予め基板10に複数の導電性固定板4を形成し、必要に応じて必要な箇所のみに、スリット30aやガイド16を本体30に設け、基板10に演算装置8を設けることで、ユーザーの好みに応じて導電性固定板4の種類と数を変更できる。
なお、演算装置8は、各導電性固定板4に1つずつ必要である。
In the level adjusting device 2 of the fourth embodiment, a plurality of conductive fixing plates 4 are formed on one substrate 10. As shown in FIGS. 8A and 8B, the conductive fixing plate 4 may be a combination of a fader type as in the first embodiment and a dial type as in the third embodiment. By forming in this way, a plurality of conductive fixing plates 4 are formed in advance on the substrate 10, and slits 30 a and guides 16 are provided in the main body 30 only at necessary portions as necessary, and the arithmetic device 8 is provided on the substrate 10. By providing, the type and number of the conductive fixing plates 4 can be changed according to the user's preference.
One arithmetic unit 8 is required for each conductive fixing plate 4.

本実施形態のレベル調節装置2は、1枚の基板10に複数の導電性固定板4を形成することにより、ユーザーの注文に応じて一枚ずつ基板を制作する場合に比べ、レベル調節装置2の製造コストを低く抑えることができる。   The level adjusting device 2 according to the present embodiment forms a plurality of conductive fixing plates 4 on a single substrate 10, so that the level adjusting device 2 can be compared with a case where substrates are produced one by one according to a user's order. The manufacturing cost can be kept low.

その他の第4実施形態のレベル調節装置2の構成と効果は、第1実施形態又は第2実施形態のレベル調節装置2と同様である。   Other configurations and effects of the level adjusting device 2 of the fourth embodiment are the same as those of the level adjusting device 2 of the first embodiment or the second embodiment.

上述した本発明の静電容量式レベル調節装置2によれば、ガイド16が、複数の導電性固定板4の表面Aに対し、導電性移動板6の対向面Cを近接させ又は付勢して複数の導電性固定板4に沿って案内し、演算装置8が、導電性固定板4と導電性移動板6との間に生じる静電容量に基づき導電性移動板6の位置を演算し、該位置に対応する電気信号を出力するので、導電性移動板6や導電性固定板4の摩耗や劣化が少ない。そのため、静電容量式レベル調節装置2の機能を長期間安定して維持できる。   According to the capacitance level adjusting device 2 of the present invention described above, the guide 16 brings the facing surface C of the conductive moving plate 6 close to or biases the surface A of the plurality of conductive fixing plates 4. Are guided along the plurality of conductive fixed plates 4, and the calculation device 8 calculates the position of the conductive movable plate 6 based on the capacitance generated between the conductive fixed plate 4 and the conductive movable plate 6. Since the electric signal corresponding to the position is output, the conductive moving plate 6 and the conductive fixed plate 4 are less worn and deteriorated. Therefore, the function of the capacitance type level adjusting device 2 can be stably maintained for a long time.

また本発明の静電容量式レベル調節装置2は、導電性固定板4と導電性移動板6との間に生じる静電容量に基づき導電性移動板6の位置を検出するので、温度変化や湿度変化等の影響を受けにくく安定している。   Moreover, since the capacitance type level adjusting device 2 of the present invention detects the position of the conductive moving plate 6 based on the capacitance generated between the conductive fixed plate 4 and the conductive moving plate 6, Stable and resistant to changes in humidity.

さらに本発明の静電容量式レベル調節装置2は、複数の導電性固定板4に沿って導電性移動板6を手動又は自動で操作可能であり非操作時にその位置を保持するノブ24を備えるので、ユーザーが手動操作時にノブ24から指を離して操作を中断しても、もしくは自動操作時にノブ24を自動的に制御するための指示ボタンやマウスから指を離して操作を中断しても、指を離したときと同じ位置から再度操作を始動可能であり、操作性が良い。   Furthermore, the capacitance type level adjusting device 2 of the present invention includes a knob 24 that can manually or automatically operate the conductive moving plate 6 along the plurality of conductive fixed plates 4 and holds the position when not operated. Therefore, even if the user releases the finger from the knob 24 during manual operation and interrupts the operation, or when the user releases the instruction button for automatically controlling the knob 24 or the mouse during automatic operation, the operation is interrupted. The operation can be started again from the same position as when the finger is released, and the operability is good.

なお本発明は上述した実施の形態に限定されず、本発明の要旨を逸脱しない範囲で種々変更を加え得ることは勿論である。   Note that the present invention is not limited to the above-described embodiment, and it is needless to say that various modifications can be made without departing from the gist of the present invention.

2 静電容量式レベル調節装置、4 導電性固定板、
6 導電性移動板、8 演算装置、
10 基板、12 非導電部、
13 被膜層、
14 配線回路、16 ガイド、
16a 直線ガイド、16b 円弧ガイド、
18a,18b 平行棒、19 可動部材、
20a,20b 貫通孔、24 ノブ、
26 位置保持機構、28 付勢部材、
30 本体、30a スリット、
30b 開口部、
32 回転軸、34 回転円板、
A 表面、B 平面、
C 対向面、D 隙間、
E 上面、F 閾値、
O 定点、X 位置の座標値、
Y 最大値、
Z1,Z2 隣接値、
P 重心位置
2 Capacitance type level control device, 4 conductive fixing plate,
6 conductive moving plate, 8 arithmetic unit,
10 substrate, 12 non-conductive part,
13 coating layer,
14 Wiring circuit, 16 guides,
16a linear guide, 16b arc guide,
18a, 18b parallel bars, 19 movable members,
20a, 20b through hole, 24 knob,
26 position holding mechanism, 28 biasing member,
30 body, 30a slit,
30b opening,
32 rotating shaft, 34 rotating disc,
A surface, B plane,
C facing surface, D gap,
E top surface, F threshold,
O Fixed point, coordinate value of X position,
Y maximum value,
Z1, Z2 adjacent values,
P Center of gravity position

本発明によれば、表面が同一平面上に位置し、互いに電気的に絶縁されており、前記表面に沿って一定間隔で位置決めされた平板状の複数の導電性固定板と、
前記平面に対向する対向面を有する単一の導電性移動板と、
複数の導電性固定板の前記表面に対し、導電性移動板の前記対向面を近接させ又は付勢して複数の導電性固定板に沿って案内するガイドと、
前記導電性固定板と導電性移動板との間に生じる静電容量に基づき導電性移動板の位置を演算し、該位置に対応する電気信号を出力する演算装置と、を備え、
さらに複数の導電性固定板に沿って導電性移動板を手動又は自動で操作可能であり非操作時にその位置を保持するノブを備え
前記演算装置は、複数の導電性固定板の静電容量をそれぞれ検出し、
隣接する複数の導電性固定板から検出される複数の静電容量の値の重心位置を演算し、該重心位置を導電性移動板の位置とする、ことを特徴とする静電容量式レベル調節装置が提供される。
According to the present invention, a plurality of plate-like conductive fixing plates whose surfaces are located on the same plane and are electrically insulated from each other, and positioned at regular intervals along the surface;
A single conductive displacement plate having an opposing surface opposite the plane;
A guide that guides along the plurality of conductive fixing plates by bringing the facing surface of the conductive moving plate close to or energizing the surface of the plurality of conductive fixing plates,
An arithmetic device that calculates a position of the conductive moving plate based on a capacitance generated between the conductive fixed plate and the conductive moving plate, and outputs an electrical signal corresponding to the position;
Furthermore, a conductive movable plate can be operated manually or automatically along a plurality of conductive fixed plates, and has a knob that holds its position when not operated .
The arithmetic device detects the capacitance of each of the plurality of conductive fixing plates,
Capacitance type level adjustment characterized by calculating the position of the center of gravity of a plurality of capacitance values detected from a plurality of adjacent conductive fixed plates and using the position of the center of gravity as the position of the conductive moving plate An apparatus is provided.

また前記重心位置は、検出された複数の静電容量のうち最大値を示す導電性固定板の該最大値と、これに隣接する2つの導電性固定板の静電容量である隣接値から導電性移動板の位置として求められる
From The said position of the center of gravity, and the maximum value of the conductive fixing plate indicating the maximum value among the plurality of capacitance detected adjacent value to be the two capacitances of the conductive fixing plate adjacent thereto It is determined as the position of the conductive moving plate.

また前記最大値の静電容量をY、2つの前記隣接値をZ1とZ2、最大値Yを検出する導電性固定板の位置の座標値をXc、隣接値Z1を検出する導電性固定板の位置の座標値をXb、隣接値Z2を検出する導電性固定板の位置の座標値をXd、前記重心位置をPとするときに、
前記重心位置Pは、
P=(Z1×Xb+Y×Xc+Z2×Xd)/(Z1+Y+Z2)
により求められる
The maximum electrostatic capacitance is Y, the two adjacent values are Z1 and Z2, the coordinate value of the position of the conductive fixing plate that detects the maximum value Y is Xc, and the conductive fixing plate that detects the adjacent value Z1. When the coordinate value of the position is Xb, the coordinate value of the position of the conductive fixing plate that detects the adjacent value Z2 is Xd, and the gravity center position is P,
The center of gravity position P is
P = (Z1 * Xb + Y * Xc + Z2 * Xd) / (Z1 + Y + Z2)
Is required .

本発明によれば、表面が同一平面上に位置し、互いに電気的に絶縁されており、前記表面に沿って一定間隔で位置決めされた平板状の複数の導電性固定板と、
前記平面に対向する対向面を有する単一の導電性移動板と、
複数の導電性固定板の前記表面に対し、導電性移動板の前記対向面を近接させ又は付勢して複数の導電性固定板に沿って案内するガイドと、
前記導電性固定板と導電性移動板との間に生じる静電容量に基づき導電性移動板の位置を演算し、該位置に対応する電気信号を出力する演算装置と、を備え、
さらに複数の導電性固定板に沿って導電性移動板を手動又は自動で操作可能であり非操作時にその位置を保持するノブを備え、
前記演算装置は、複数の導電性固定板の静電容量をそれぞれ検出し、
複数の導電性固定板は、平板状の基板表面に設けられており、隣接する導電性固定板の間に一定間隔の非導電部を有し、
前記導電性固定板の移動方向の長さは、前記演算装置の分解能の幅より大きく設定され、
前記導電性移動板の移動方向の長さは、前記導電性固定板の1つと、これに隣接する2つの非導電部を合わせた長さより長く、かつ前記分解能の幅より長く設定されており、
隣接する複数の導電性固定板から検出される複数の静電容量の値の重心位置を演算し、該重心位置を導電性移動板の位置とし、
前記重心位置は、検出された複数の静電容量のうち最大値を示す導電性固定板の該最大値と、これに隣接する2つの導電性固定板の静電容量である隣接値とから導電性移動板の位置として求められ、
前記最大値の静電容量をY、2つの前記隣接値をZ1とZ2、最大値Yを検出する導電性固定板の位置の座標値をXc、隣接値Z1を検出する導電性固定板の位置の座標値をXb、隣接値Z2を検出する導電性固定板の位置の座標値をXd、前記重心位置をPとするときに、
前記重心位置Pは、
P=(Z1×Xb+Y×Xc+Z2×Xd)/(Z1+Y+Z2)
により求められる、ことを特徴とする静電容量式レベル調節装置が提供される。
According to the present invention, a plurality of plate-like conductive fixing plates whose surfaces are located on the same plane and are electrically insulated from each other, and positioned at regular intervals along the surface;
A single conductive displacement plate having an opposing surface opposite the plane;
A guide that guides along the plurality of conductive fixing plates by bringing the facing surface of the conductive moving plate close to or energizing the surface of the plurality of conductive fixing plates,
An arithmetic device that calculates a position of the conductive moving plate based on a capacitance generated between the conductive fixed plate and the conductive moving plate, and outputs an electrical signal corresponding to the position;
Furthermore, a conductive movable plate can be operated manually or automatically along a plurality of conductive fixed plates, and has a knob that holds its position when not operated.
The arithmetic device detects the capacitance of each of the plurality of conductive fixing plates,
The plurality of conductive fixing plates are provided on the plate-like substrate surface, and have non-conductive portions at regular intervals between adjacent conductive fixing plates,
The length of the conductive fixing plate in the moving direction is set larger than the resolution width of the arithmetic unit,
The length of the conductive moving plate in the moving direction is set to be longer than the combined length of one of the conductive fixed plates and two non-conductive portions adjacent thereto, and longer than the resolution width,
Calculate the position of the center of gravity of a plurality of capacitance values detected from a plurality of adjacent conductive fixed plates, the position of the center of gravity as the position of the conductive moving plate ,
The position of the center of gravity is conductive from the maximum value of the conductive fixing plate showing the maximum value among a plurality of detected capacitances and the adjacent value which is the capacitance of two conductive fixing plates adjacent thereto. Is required as the position of the sex transfer plate,
The maximum electrostatic capacitance is Y, the two adjacent values are Z1 and Z2, the coordinate value of the position of the conductive fixing plate for detecting the maximum value Y is Xc, and the position of the conductive fixing plate for detecting the adjacent value Z1. When the coordinate value of Xb is Xd, the coordinate value of the position of the conductive fixing plate that detects the adjacent value Z2 is Xd, and the gravity center position is P,
The center of gravity position P is
P = (Z1 * Xb + Y * Xc + Z2 * Xd) / (Z1 + Y + Z2)
The electrostatic capacity type level adjusting device is characterized in that it is required by the above.

Claims (13)

表面が同一平面上に位置し、互いに電気的に絶縁されており、前記表面に沿って一定間隔で位置決めされた複数の導電性固定板と、
前記平面に対向する対向面を有する単一の導電性移動板と、
複数の導電性固定板の前記表面に対し、導電性移動板の前記対向面を近接させ又は付勢して複数の導電性固定板に沿って案内するガイドと、
前記導電性固定板と導電性移動板との間に生じる静電容量に基づき導電性移動板の位置を演算し、該位置に対応する電気信号を出力する演算装置と、を備え、
さらに複数の導電性固定板に沿って導電性移動板を手動又は自動で操作可能であり非操作時にその位置を保持するノブを備える、ことを特徴とする静電容量式レベル調節装置。
A plurality of conductive fixing plates whose surfaces are coplanar and electrically insulated from each other and positioned at regular intervals along the surface;
A single conductive displacement plate having an opposing surface opposite the plane;
A guide that guides along the plurality of conductive fixing plates by bringing the facing surface of the conductive moving plate close to or energizing the surface of the plurality of conductive fixing plates,
An arithmetic device that calculates a position of the conductive moving plate based on a capacitance generated between the conductive fixed plate and the conductive moving plate, and outputs an electrical signal corresponding to the position;
Furthermore, the electrostatic capacity type level adjustment apparatus characterized by including the knob which can operate a conductive movement board manually or automatically along a plurality of conductive fixed boards, and holds the position at the time of non-operation.
前記ガイドは、導電性移動板を前記複数の導電性固定板に沿って直線状に案内する直線ガイドであり、
直線ガイドは、前記表面に対し平行であり互いに一定の間隔を隔てた1対の平行棒と、
該平行棒が貫通する1対の貫通孔を有し、1対の平行棒に沿って直線状に案内される非導電性の可動部材と、を有し、可動部材の導電性固定板に対向する側に導電性移動板が固定されており、
さらに、前記ノブが操作されないときに、ノブの移動を防止する位置保持機構を有する、ことを特徴とする請求項1に記載の静電容量式レベル調節装置。
The guide is a linear guide that guides the conductive moving plate linearly along the plurality of conductive fixed plates,
The linear guide is a pair of parallel bars parallel to the surface and spaced apart from each other;
A non-conductive movable member that has a pair of through-holes through which the parallel bar passes and is guided linearly along the pair of parallel bars, and that faces the conductive fixed plate of the movable member The conductive moving plate is fixed to
2. The capacitance type level adjusting device according to claim 1, further comprising a position holding mechanism for preventing movement of the knob when the knob is not operated.
前記ガイドは、導電性移動板を前記複数の導電性固定板に沿って直線状に案内する直線ガイドであり、
直線ガイドは、前記表面に対し平行に延びる平板と、
該平板が貫通する貫通孔を有し、平板に沿って直線状に案内される非導電性の可動部材と、を有し、可動部材の導電性固定板に対向する側に導電性移動板が固定されており、
さらに、前記ノブが操作されないときに、ノブの移動を防止する位置保持機構を有する、ことを特徴とする請求項1に記載の静電容量式レベル調節装置。
The guide is a linear guide that guides the conductive moving plate linearly along the plurality of conductive fixed plates,
The linear guide is a flat plate extending parallel to the surface;
A non-conductive movable member that has a through-hole through which the flat plate passes and is guided linearly along the flat plate, and the conductive moving plate is disposed on the side of the movable member facing the conductive fixed plate. Fixed,
2. The capacitance type level adjusting device according to claim 1, further comprising a position holding mechanism for preventing movement of the knob when the knob is not operated.
前記ガイドは、導電性移動板を前記複数の導電性固定板に沿って円弧状に案内する円弧ガイドであり、
複数の導電性固定板は、前記平面に垂直に延びる軸心を中心とする円弧状に位置決めされ、周方向に円弧を形成する扇形形状であり、
円弧ガイドは、前記軸心を中心に回転可能な回転軸と、該回転軸に固定された回転円板とを有し、回転円板の導電性固定板に対向する側に導電性移動板が固定されており、
さらに、前記ノブが操作されないときに、ノブの移動を防止する位置保持機構を有する、ことを特徴とする請求項1に記載の静電容量式レベル調節装置。
The guide is an arc guide that guides the conductive moving plate in an arc along the plurality of conductive fixed plates;
The plurality of conductive fixing plates are positioned in an arc shape centering on an axis extending perpendicular to the plane, and have a fan shape that forms an arc in the circumferential direction,
The arc guide has a rotating shaft rotatable about the axis and a rotating disc fixed to the rotating shaft, and a conductive moving plate is provided on the side of the rotating disc facing the conductive fixing plate. Fixed,
2. The capacitance type level adjusting device according to claim 1, further comprising a position holding mechanism for preventing movement of the knob when the knob is not operated.
複数の導電性固定板は、平板状の基板表面に設けられており、隣接する導電性固定板の間に一定間隔の非導電部を有する、ことを特徴とする請求項1に記載の静電容量式レベル調節装置。   2. The electrostatic capacitance type according to claim 1, wherein the plurality of conductive fixing plates are provided on a plate-like substrate surface, and have non-conductive portions at regular intervals between adjacent conductive fixing plates. Level adjustment device. 前記導電性移動板の移動方向の長さは、前記導電性固定板の1つと、これに隣接する2つの非導電部を合わせた長さより長く設定されている、ことを特徴とする請求項5に記載の静電容量式レベル調節装置。   6. The length in the moving direction of the conductive moving plate is set to be longer than the combined length of one of the conductive fixed plates and two non-conductive portions adjacent to the conductive fixed plate. Capacitance type level adjusting device as described in 1. 前記演算装置は、複数の導電性固定板の静電容量をそれぞれ検出し、
検出された複数の静電容量のうち最大値を示す導電性固定板と、これに隣接する2つの導電性固定板の静電容量である隣接値から導電性移動板の位置を演算する、ことを特徴とする請求項6に記載の静電容量式レベル調節装置。
The arithmetic device detects the capacitance of each of the plurality of conductive fixing plates,
Calculating the position of the conductive movable plate from the conductive fixed plate showing the maximum value among the detected plurality of electrostatic capacitances and the adjacent value which is the electrostatic capacitance of the two conductive fixed plates adjacent to the conductive fixed plate; The electrostatic capacity type level adjusting device according to claim 6.
前記演算により、前記最大値と2つの隣接値の重心位置を導電性移動板の位置とする、ことを特徴とする請求項7に記載の静電容量式レベル調節装置。   The electrostatic capacity type level adjusting device according to claim 7, wherein the position of the center of gravity of the maximum value and two adjacent values is set as a position of a conductive moving plate by the calculation. 前記演算装置は、基板上に設けられており、
前記基板は、さらに複数の導電性固定板と演算装置とを電気的に連結する配線回路を有する、ことを特徴とする請求項7に記載の静電容量式レベル調節装置。
The arithmetic device is provided on a substrate,
8. The capacitance type level adjusting device according to claim 7, wherein the substrate further includes a wiring circuit that electrically connects the plurality of conductive fixing plates and the arithmetic unit.
導電性固定板の前記表面と導電性移動板の前記対向面との間に一定間隔の隙間を有する、ことを特徴とする請求項1に記載の静電容量式レベル調節装置。   The electrostatic capacity type level adjusting device according to claim 1, wherein a gap having a constant interval is provided between the surface of the conductive fixed plate and the facing surface of the conductive movable plate. 導電性固定板の前記表面を覆う非導電性の被膜層と、
導電性固定板の前記表面に導電性移動板の前記対向面を一定面圧で付勢する付勢部材を備え、
導電性移動板は、前記対向面を被膜層に接触させて摺動する、ことを特徴とする請求項1に記載の静電容量式レベル調節装置。
A non-conductive coating layer covering the surface of the conductive fixing plate;
An urging member for urging the opposing surface of the conductive moving plate at a constant surface pressure on the surface of the conductive fixed plate;
The capacitance type level adjusting device according to claim 1, wherein the conductive moving plate slides with the facing surface in contact with the coating layer.
前記位置保持機構は、前記貫通孔の内面と平行棒との間に挿入された弾性部材、樹脂加工部品、もしくは金属板である、ことを特徴とする請求項2に記載の静電容量式レベル調節装置。   3. The capacitance type level adjustment according to claim 2, wherein the position holding mechanism is an elastic member, a resin processed part, or a metal plate inserted between the inner surface of the through hole and a parallel bar. apparatus. 前記位置保持機構は、回転軸の外周面に接する弾性部材、樹脂加工部品、もしくは金属板である、ことを特徴とする請求項4に記載の静電容量式レベル調節装置。   5. The capacitance type level adjusting device according to claim 4, wherein the position holding mechanism is an elastic member, a resin processed part, or a metal plate that is in contact with the outer peripheral surface of the rotating shaft.
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