JP2012044591A - Integrated antenna using hollowed-out non-contact ic card antenna - Google Patents

Integrated antenna using hollowed-out non-contact ic card antenna Download PDF

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JP2012044591A
JP2012044591A JP2010186162A JP2010186162A JP2012044591A JP 2012044591 A JP2012044591 A JP 2012044591A JP 2010186162 A JP2010186162 A JP 2010186162A JP 2010186162 A JP2010186162 A JP 2010186162A JP 2012044591 A JP2012044591 A JP 2012044591A
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antenna
electric field
card
contact
field communication
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JP5547582B2 (en
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Kunitaka Arimura
國孝 有村
Mine Naito
峰 内藤
Yasuyuki Kimura
康行 木村
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Nippon Conlux Co Ltd
Smart Co Ltd Japan
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Nippon Conlux Co Ltd
Smart Co Ltd Japan
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Abstract

PROBLEM TO BE SOLVED: To provide an integrated antenna using a hollowed-out non-contact IC card antenna which has an electric field communication antenna and a non-contact IC card antenna allocated in a same position and ensures excellent communication environment without obstructing communication each other.SOLUTION: An integrated antenna comprises an electric field communication antenna 5 and a non-contact IC card antenna 2. The electric field communication antenna 5 has a stacked structure obtained by stacking a metal surface electrode 7b, a dielectric 6, and a metal surface electrode 7a in the order. The non-contact IC card antenna 2 has a cyclic structure obtained by laminating an antenna part 2a formed annularly, a board 2b and a magnetic material 2c formed annularly along the shape of the antenna part 2a. The magnetic material 2c of the non-contact IC card antenna 2 is mounted on the top face of the metal surface electrode 7a of the electric field communication antenna 5 so that the metal surface can be seen.

Description

本発明は、電界通信用アンテナと非接触ICカード用アンテナ或いはRFID用アンテナを、同一面に配置する統合アンテナに関する。   The present invention relates to an integrated antenna in which an electric field communication antenna and a contactless IC card antenna or RFID antenna are arranged on the same plane.

今日では、自動販売機や売店のレジで使用される非接触ICカード(以下、ICカードと記す)やRFIDタグを用いた電子マネーによる決済システムが一般的となっている。   Today, payment systems using electronic money using non-contact IC cards (hereinafter referred to as IC cards) and RFID tags that are used at vending machines and cash registers of shops are becoming common.

例えば、図3(a)に示す自動販売機などに備えられたアンテナ回路41と基板42と磁性体43が積層された非接触ICカード用アンテナ40に対して、ICカードをかざすことで自動販売機とICカードとの間で通信を行う技術が提案されている(例えば、特許文献1を参照)。   For example, the vending machine shown in FIG. 3A or the like is automatically sold by holding the IC card over the antenna circuit 41, the substrate 42 and the noncontact IC card antenna 40 in which the magnetic body 43 is laminated. There has been proposed a technology for performing communication between a machine and an IC card (see, for example, Patent Document 1).

また、人体を通信路とする電界通信を利用した自動販売機の電子決済システムが提案されている(例えば、特許文献2を参照)。   Further, an electronic payment system for vending machines using electric field communication using a human body as a communication path has been proposed (for example, see Patent Document 2).

この電子決済システムでは、電子マネーを記憶した電界通信用装置を所持した顧客が、図3(b)に示す自動販売機等に搭載された電界通信用装置の、金属電極51a、51bとの間に誘電体52を挟み込んだ構造の電界通信用アンテナ50に手をかざすことで、顧客が所持する電界通信用装置と自動販売機の電界通信用アンテナ50との間で静電結合によって通信が行われ、記憶された電子マネーから決済が行われる。   In this electronic settlement system, a customer who possesses an electric field communication device storing electronic money is connected between the metal electrodes 51a and 51b of the electric field communication device mounted in the vending machine shown in FIG. By holding the hand over the electric field communication antenna 50 having a structure in which the dielectric 52 is sandwiched between the electric field communication apparatus and the electric field communication antenna 50 of the vending machine, communication is performed by electrostatic coupling. The payment is made from the stored electronic money.

一般に市販されているICカードやRFIDタグは、非接触ICカード用アンテナ40との間のデータ通信に13.56MHz帯の周波数が使用され、ICカードやRFIDタグの互換性を確保する近接型通信用インターフェースとして利用されている。非接触ICカード用アンテナ40は、搬送周波数13.56MHzとデータ信号が含まれる13.56MHz±340KHzの副搬送波の周波数帯をカバーできるようにおおよその共振特性(Q係数)が設定されている。   In general, commercially available IC cards and RFID tags use a 13.56 MHz frequency band for data communication with the non-contact IC card antenna 40, and proximity communication that ensures compatibility of IC cards and RFID tags. It is used as an interface. The non-contact IC card antenna 40 has an approximate resonance characteristic (Q coefficient) so as to cover a subcarrier frequency band of 13.56 MHz ± 340 KHz including a carrier frequency of 13.56 MHz and a data signal.

現在、顧客の利便性を考慮して、従来の非接触ICカード用アンテナと電界通信用アンテナの両方を装備した統合アンテナの普及が始まろうとしている。   Currently, in consideration of customer convenience, the spread of integrated antennas equipped with both conventional contactless IC card antennas and electric field communication antennas is about to begin.

特開2004−30393号公報JP 2004-30393 A 特開2004−145873号公報JP 2004-145873 A

しかし、ICカードの通信と電界通信の両方を利用するためには、自動販売機等に特性の異なる従来の非接触ICカード用アンテナと電界通信用アンテナを搭載する必要がある。   However, in order to use both IC card communication and electric field communication, it is necessary to mount a conventional non-contact IC card antenna and electric field communication antenna having different characteristics in a vending machine or the like.

非接触ICカード用アンテナと電界通信用アンテナを配置する際、特性を最大限に発揮させるため別々の位置に配置すると、アンテナの設置面が広くなるという問題がある。   When the non-contact IC card antenna and the electric field communication antenna are arranged, if they are arranged at different positions in order to maximize the characteristics, there is a problem that the installation surface of the antenna becomes wide.

また、非接触ICカード用アンテナと電界通信用アンテナを別々の位置に配置すると、顧客がどちらを利用して良いか戸惑う可能性があり、顧客の利便性を損なわないためには、従来の非接触ICカード用アンテナと電界通信用アンテナとを同一位置に配置する必要がある。   In addition, if the non-contact IC card antenna and the electric field communication antenna are arranged at different positions, there is a possibility that the customer may be confused about which one to use, and in order not to impair the convenience of the customer, It is necessary to arrange the contact IC card antenna and the electric field communication antenna at the same position.

非接触ICカード用アンテナと電界通信用アンテナを同一位置に配置した場合、単に非接触ICカード用アンテナの上、或いは下に電界通信用アンテナを重ね合わせ、または非接触ICカード用アンテナを電界通信用アンテナの誘電体(絶縁体)と共に両電極で挟むと、非接触用ICカード用アンテナから発生する磁界が、電界通信用アンテナの金属面電極により遮断されてしまい、非接触ICカード用アンテナとICカードやRFIDタグとの通信を阻害するという問題がある。   When the non-contact IC card antenna and the electric field communication antenna are disposed at the same position, the electric field communication antenna is simply superimposed on or below the non-contact IC card antenna, or the non-contact IC card antenna is electric field communication. When sandwiched between both electrodes together with the dielectric (insulator) of the antenna for the antenna, the magnetic field generated from the antenna for the contactless IC card is blocked by the metal surface electrode of the antenna for electric field communication, and the antenna for the contactless IC card There is a problem of hindering communication with an IC card or an RFID tag.

また、図4に示すように、単純に従来の非接触ICカード用アンテナ40の下に電界通信用アンテナ50を配置した場合は、非接触ICカード用アンテナ40を構成する積層構造が、アンテナ回路41と電界通信用アンテナ50金属面電極51aとの間に基板42と磁性体43を挟み込む構造のコンデンサを形成する。このコンデンサの阻害容量C1が直列に入ることにより、電界通信用アンテナ50に異種層コンデンサが形成され電界通信用アンテナ50の通信の障壁になるという問題がある。   As shown in FIG. 4, when the electric field communication antenna 50 is simply disposed under the conventional non-contact IC card antenna 40, the laminated structure constituting the non-contact IC card antenna 40 is an antenna circuit. A capacitor having a structure in which a substrate 42 and a magnetic body 43 are sandwiched between 41 and an electric field communication antenna 50 metal surface electrode 51a is formed. When the inhibition capacitance C1 of this capacitor enters in series, there is a problem that a heterogeneous layer capacitor is formed in the electric field communication antenna 50 and becomes a communication barrier of the electric field communication antenna 50.

一般に市販されている13.56MHzを利用した既存のICカードやRFIDタグは、図4に示す非接触ICカード用アンテナ40と電界通信用アンテナ50を単純に同一位置に配置した場合、電界通信用アンテナ50の金属面電極51aの影響で非接触ICカード用アンテナ40のインピーダンスが変動し、近接する金属面の影響で搬送周波数13.56MHzのピーク周波数値にズレが生じてしまう現象が知られている。そのためQ特性の高いICカードやRFIDタグでは、共振周波数が変動し電界も弱くなることで、電力供給が低下し必要な起電力が得られず、データ通信ができなくなる課題がある。   In general, an existing IC card or RFID tag using 13.56 MHz that is commercially available is used for electric field communication when the non-contact IC card antenna 40 and the electric field communication antenna 50 shown in FIG. 4 are simply arranged at the same position. It is known that the impedance of the non-contact IC card antenna 40 fluctuates due to the influence of the metal surface electrode 51a of the antenna 50, and the peak frequency value of the carrier frequency 13.56 MHz shifts due to the influence of the adjacent metal surface. Yes. Therefore, an IC card or an RFID tag with high Q characteristics has a problem that the resonance frequency fluctuates and the electric field becomes weak, so that power supply is reduced and a necessary electromotive force cannot be obtained, and data communication cannot be performed.

本発明は、以上の課題に着目して成されたもので、電界通信用アンテナと非接触ICカード用アンテナとを同一位置に配置し、且つ相互の通信を阻害することなく良好な通信環境を確保した中抜き非接触ICカードアンテナによる統合アンテナを提供することを目的とする。   The present invention has been made paying attention to the above-described problems. The electric field communication antenna and the non-contact IC card antenna are arranged at the same position, and a good communication environment is obtained without hindering mutual communication. An object of the present invention is to provide an integrated antenna using a secured non-contact IC card antenna.

本発明は上述の目的を達成するため、以下(1)、(2)の構成を備えるものである。   In order to achieve the above-mentioned object, the present invention has the following configurations (1) and (2).

(1)電界通信用アンテナと非接触ICカード用アンテナからなる統合アンテナであって、前記電界通信用アンテナは、金属面電極と誘電体と金属面電極との順に重ねた積層構造を有し、前記非接触ICカード用アンテナは、環状に形成されたアンテナ部と該アンテナ部の形状に沿って環状に形成された基板と該基板に沿った環状の磁性体とが積層された環状構造を有し、前記電界通信用アンテナの前記金属面電極の上面に、金属面が見えるように前記非接触ICカード用アンテナの前記磁性体が載置されることを特徴とする中抜き非接触ICカード用アンテナによる統合アンテナ。   (1) An integrated antenna including an electric field communication antenna and a non-contact IC card antenna, wherein the electric field communication antenna has a laminated structure in which a metal surface electrode, a dielectric, and a metal surface electrode are stacked in order. The non-contact IC card antenna has an annular structure in which an antenna portion formed in an annular shape, a substrate formed in an annular shape along the shape of the antenna portion, and an annular magnetic body along the substrate are stacked. And the magnetic body of the non-contact IC card antenna is placed on an upper surface of the metal surface electrode of the electric field communication antenna so that the metal surface can be seen. Integrated antenna by antenna.

(2)電界通信用アンテナと非接触ICカード用アンテナからなる統合アンテナであって、前記電界通信用アンテナは、金属面電極と誘電体と金属面電極との順に重ねた積層構造を有し、前記非接触ICカード用アンテナは、環状に形成されたアンテナ部と該アンテナ部の形状に沿って環状に形成された基板と該基板に沿った環状の磁性体とが積層された環状構造を有し、前記電界通信用アンテナの両側の前記金属面電極に、金属面が見えるように前記非接触ICカード用アンテナの前記磁性体が対向して載置されることを特徴とする中抜き非接触ICカード用アンテナによる統合アンテナ。   (2) An integrated antenna including an electric field communication antenna and a non-contact IC card antenna, wherein the electric field communication antenna has a laminated structure in which a metal surface electrode, a dielectric, and a metal surface electrode are stacked in this order. The non-contact IC card antenna has an annular structure in which an antenna portion formed in an annular shape, a substrate formed in an annular shape along the shape of the antenna portion, and an annular magnetic body along the substrate are stacked. The magnetic material of the non-contact IC card antenna is placed opposite to the metal surface electrodes on both sides of the electric field communication antenna so that the metal surface can be seen. Integrated antenna with IC card antenna.

本発明によれば、非接触ICカード用アンテナと電界通信用アンテナを同一位置に配置することで、顧客の利便性を損なわず、且つ其々のアンテナが相互の通信を阻害することなく良好な通信環境を確保した中抜き非接触ICカードアンテナによる統合アンテナを提供することができる。   According to the present invention, the non-contact IC card antenna and the electric field communication antenna are arranged at the same position, so that the customer's convenience is not impaired and each antenna is good without interfering with the mutual communication. An integrated antenna using a hollow contactless IC card antenna that ensures a communication environment can be provided.

(a)枠形非接触ICカード用アンテナを使用した本発明に係る中抜き非接触ICカード用アンテナによる統合アンテナの構成図、(b)円形非接触ICカードアンテナを使用した本発明に係る中抜き非接触ICカード用アンテナによる統合アンテナの構成図、(c)A−A拡大断面図(A) Configuration diagram of an integrated antenna using a hollow non-contact IC card antenna according to the present invention using a frame-shaped non-contact IC card antenna, (b) Medium according to the present invention using a circular non-contact IC card antenna Configuration diagram of an integrated antenna with a non-contact IC card antenna, (c) AA enlarged sectional view (a)従来の電界通信用アンテナに非接触ICカード用アンテナを載置した場合の回路構成を示す図、(b)本発明に係る中抜き非接触ICカード用アンテナによる統合アンテナの回路構成を示す図(A) The figure which shows the circuit structure at the time of mounting the antenna for non-contact IC cards in the conventional antenna for electric field communication, (b) The circuit structure of the integrated antenna by the antenna for hollow non-contact IC cards concerning this invention Illustration (a)従来の非接触ICカード用アンテナの構成図、(b)従来の電界通信用アンテナの構成図(A) Configuration diagram of a conventional contactless IC card antenna, (b) Configuration diagram of a conventional electric field communication antenna 従来の電界通信用アンテナの金属面上部に従来の非接触ICカード用アンテナを載置した構成を示す斜視図The perspective view which shows the structure which mounted the conventional antenna for non-contact IC cards on the metal surface upper part of the conventional electric field communication antenna

以下、本発明を実施するための形態を、図面に基づいて詳しく説明する。   Hereinafter, embodiments for carrying out the present invention will be described in detail with reference to the drawings.

図1は中抜き非接触ICカードアンテナによる統合アンテナ(以下、統合アンテナと記す)の構成図で、1aは枠形非接触ICカードアンテナ2を使用した枠形統合アンテナであり、1bは円形非接触ICカードアンテナ8を使用した円形統合アンテナである。   FIG. 1 is a configuration diagram of an integrated antenna (hereinafter referred to as an integrated antenna) using a hollow non-contact IC card antenna. 1a is a frame-type integrated antenna using a frame-type non-contact IC card antenna 2, and 1b is a circular non-contact antenna. It is a circular integrated antenna using a contact IC card antenna 8.

図1(a)に示す枠形統合アンテナ1aは、枠形非接触ICカードアンテナ2の枠形アンテナ部2a、基板2b、磁性体2cが、電界通信用アンテナ5の両面の金属面電極7a,7bの内、金属面電極7a上に積層され、枠形非接触ICカードアンテナ2の中心部が、アンテナの形成幅に沿って環状に切り取られ中空ホールHが形成された統合アンテナである。金属面電極7aの金属面上に載置された磁性体2cは、枠形非接触ICカードアンテナ2で発生する磁界Mの磁路を確保するため比透磁率が100以上のものを使用する。   A frame-shaped integrated antenna 1a shown in FIG. 1A includes a frame-shaped antenna portion 2a, a substrate 2b, and a magnetic body 2c of a frame-shaped non-contact IC card antenna 2, and metal surface electrodes 7a on both sides of an electric field communication antenna 5. 7b is an integrated antenna which is laminated on the metal surface electrode 7a and in which the central part of the frame-shaped non-contact IC card antenna 2 is cut out in an annular shape along the antenna formation width to form a hollow hole H. As the magnetic body 2c placed on the metal surface of the metal surface electrode 7a, one having a relative permeability of 100 or more is used in order to secure a magnetic path of the magnetic field M generated by the frame-type non-contact IC card antenna 2.

図1(b)に示す円形統合アンテナ1bは、円形非接触ICカードアンテナ8の円形のアンテナ部8a、基板8b、磁性体8cが、電界通信用アンテナ5の金属面電極7a上に積層され、アンテナの形成幅をさけて中心部がくり抜かれて中空ホールHが形成された環状の統合アンテナである。   In the circular integrated antenna 1b shown in FIG. 1B, a circular antenna portion 8a, a substrate 8b, and a magnetic body 8c of a circular non-contact IC card antenna 8 are laminated on the metal surface electrode 7a of the electric field communication antenna 5. This is an annular integrated antenna in which a hollow hole H is formed by hollowing out the central portion to avoid the formation width of the antenna.

図1(c)に示す枠形統合アンテナ1aのA−A断面図で、本実施例の統合アンテナの機能について説明すると、電界通信用アンテナ5の金属面電極7a上に形成された枠形非接触ICカードアンテナ2は、枠形アンテナ部2aの形成幅に沿って周辺と中心部の基板2bと磁性体2cが切り取られ中空ホールHが形成されており、中空ホールHと枠形アンテナ部2aの周辺との部分に、電界通信用アンテナ5の金属面電極7aを広い範囲で露出させる構造とすることが可能である。   The function of the integrated antenna according to the present embodiment will be described with reference to the AA cross-sectional view of the frame-shaped integrated antenna 1a shown in FIG. 1C. The frame-shaped integrated antenna formed on the metal surface electrode 7a of the electric field communication antenna 5 will be described. The contact IC card antenna 2 has a hollow hole H formed by cutting the peripheral and central substrate 2b and the magnetic body 2c along the formation width of the frame-shaped antenna part 2a, and the hollow hole H and the frame-shaped antenna part 2a. It is possible to have a structure in which the metal surface electrode 7a of the electric field communication antenna 5 is exposed in a wide range in the portion around the periphery.

電界通信用装置を所有する顧客が統合アンテナに手をかざした際、枠形非接触ICカードアンテナ2により、金属面電極7aの金属面が絶縁されることで発生する通信阻害を回避し、電界通信用アンテナ5の通信に必要な電界Eの強さが得られることで良好な通信感度を確保することができる。   When the customer who owns the device for electric field communication holds his hand over the integrated antenna, the frame-shaped non-contact IC card antenna 2 avoids communication obstruction caused by the metal surface of the metal surface electrode 7a being insulated. By obtaining the strength of the electric field E necessary for communication with the communication antenna 5, it is possible to ensure good communication sensitivity.

アンテナ回路として図4で示した従来の統合アンテナでは、顧客が統合アンテナに手をかざした際に、従来の非接触ICカード用アンテナ40の載置面積S1が、アンテナ回路41と電極51との間に、基板41と磁性体43の誘電体を挟み込む構造で形成されたコンデンサにより直列に加わる障害容量C1が発生し、電界通信用アンテナ50の通信を阻害するという問題がある。   In the conventional integrated antenna shown in FIG. 4 as the antenna circuit, when the customer holds his / her hand over the integrated antenna, the mounting area S1 of the conventional non-contact IC card antenna 40 is equal to the antenna circuit 41 and the electrode 51. In the meantime, a fault capacitor C1 applied in series is generated by a capacitor formed by sandwiching the dielectric of the substrate 41 and the magnetic body 43, and there is a problem that the communication of the electric field communication antenna 50 is hindered.

即ち、従来の電界通信用アンテナ50と非接触ICカード用アンテナ40の接続が、図2(a)に示すように従来の非接触ICカード用アンテナ40が形成するコンデンサによって発生する障害容量C1と、電界通信用アンテナ50のコンデンサC2とが直列接続された回路となるため、顧客が手をかざした際に電界通信用アンテナ50のコンデンサC2は、インピーダンスが変化して電界通信に必要な電界強度が変動する。   That is, the connection between the conventional electric field communication antenna 50 and the non-contact IC card antenna 40 is caused by the fault capacitance C1 generated by the capacitor formed by the conventional non-contact IC card antenna 40 as shown in FIG. Since the capacitor C2 of the electric field communication antenna 50 is connected in series, the capacitor C2 of the electric field communication antenna 50 changes its impedance when the customer holds his / her hand, and the electric field strength required for electric field communication. Fluctuates.

また、平行板コンデンサの静電容量Cは、電界アンテナの面積Sに誘電体の誘電率εをかけて電極間の距離Lで割った値C=εS/Lで求められるため、露出する金属面電極の表面積Sが重要となる。従って、通信に必要な電界Eの強さは、従来の非接触ICカード用アンテナ40の載置領域S1が広くなると、障害領域が増えて電界通信用アンテナ50の通信を阻害することになり、必要な電界強度が確保できないため電界通信用アンテナ50の感度が低下する。   Further, the capacitance C of the parallel plate capacitor is obtained by a value C = εS / L obtained by multiplying the area S of the electric field antenna by the dielectric constant ε of the dielectric and the distance L between the electrodes. The surface area S of the electrode is important. Therefore, the strength of the electric field E necessary for communication is such that when the mounting area S1 of the conventional non-contact IC card antenna 40 becomes wide, the obstacle area increases and obstructs the communication of the electric field communication antenna 50. Since the required electric field strength cannot be ensured, the sensitivity of the electric field communication antenna 50 decreases.

しかし、本実施例の統合アンテナでは、非接触ICカード用アンテナ2の環状構造により、枠状のアンテナ部2aの形成幅の領域のみとなり電界通信用アンテナ5の金属面電極7aの露出領域である人体が直接触れる面積を大幅に拡大し、枠状のアンテナ部2aの形成幅を可能な限り細く形成することで、非接触ICカードアンテナ2により発生する障害容量C1が無視できるようになるため(C4>>C1)、合成インピーダンスの変化による電界強度の変動は軽微であり、また金属面電極7aの金属面上に占める領域も小さくなり電界通信用アンテナ5の感度に影響を与えない。   However, in the integrated antenna of the present embodiment, due to the annular structure of the non-contact IC card antenna 2, only the region where the frame-like antenna portion 2 a is formed is an exposed region of the metal surface electrode 7 a of the electric field communication antenna 5. Since the area directly touched by the human body is greatly enlarged and the formation width of the frame-like antenna portion 2a is made as narrow as possible, the fault capacitance C1 generated by the non-contact IC card antenna 2 can be ignored ( C4 >> C1), the fluctuation of the electric field intensity due to the change of the synthetic impedance is slight, and the area occupied on the metal surface of the metal surface electrode 7a is reduced, and the sensitivity of the electric field communication antenna 5 is not affected.

従って本実施例の統合アンテナでは、磁界Mを利用した非接触ICカード用アンテナ2のコンデンサC3と、電界Eを利用した電界通信用アンテナ5のコンデンサC4との回路接続は、図2(b)に示すように、其々が独立した回路構成とすることができる。電界通信用アンテナ5のコンデンサC4には、電界通信用装置を所有する顧客が手をかざした際、電界通信用アンテナ5の金属面電極7が、広い範囲で露出した構造により通信に必要な電界Eが十分確保されるため、電界通信に影響を与えることがない。   Therefore, in the integrated antenna of this embodiment, the circuit connection between the capacitor C3 of the non-contact IC card antenna 2 using the magnetic field M and the capacitor C4 of the electric field communication antenna 5 using the electric field E is shown in FIG. As shown in FIG. 2, each of them can have an independent circuit configuration. The capacitor C4 of the electric field communication antenna 5 has a structure in which the metal surface electrode 7 of the electric field communication antenna 5 is exposed in a wide range when the customer who owns the electric field communication device holds his hand, and the electric field necessary for communication Since E is sufficiently secured, electric field communication is not affected.

次に中抜き非接触ICカード用アンテナの機能は、例えば枠形非接触ICカード用アンテナ2の場合、電界通信用アンテナ5の金属面電極7の上面に載置される構造により、ICカードを接近させた際に電界通信用アンテナ5による影響を受けない構造にする必要がある。   Next, the function of the hollow contactless IC card antenna is such that, for example, in the case of the frame-shaped contactless IC card antenna 2, the IC card is mounted on the upper surface of the metal surface electrode 7 of the electric field communication antenna 5. It is necessary to make the structure unaffected by the electric field communication antenna 5 when approaching.

しかし、枠形非接触ICカード用アンテナ2を電界通信用アンテナ5の金属面電極7a上に載置すると、金属面の影像効果で渦電流が発生し逆相の磁界が発生し、枠形非接触ICカード用アンテナ2の磁界Mを打ち消して遮蔽する問題がある。   However, when the frame-shaped non-contact IC card antenna 2 is placed on the metal surface electrode 7a of the electric field communication antenna 5, an eddy current is generated due to the image effect of the metal surface, and a reverse-phase magnetic field is generated. There is a problem in that the magnetic field M of the contact IC card antenna 2 is canceled and shielded.

本実施例では、基板2b上にパタン形成された枠形アンテナ部2aにICカードをかざした際、図1(c)に示す枠形非接触ICカード用アンテナ2の基板に貼り付けられた透磁率が数10〜数100の磁性体2cを積層することで、枠形アンテナ部2aで発生する磁界の磁路を確保し、金属面電極7aに磁界を遮蔽されることなく安定した磁界を発生させて、金属面電極7aの影響を抑える構造とし、ICカードの電磁誘導による起電力を十分に確保して良好なデータ通信を可能にする。   In this embodiment, when the IC card is held over the frame-shaped antenna portion 2a formed on the substrate 2b, the transparent non-contact IC card antenna 2 shown in FIG. By laminating magnetic bodies 2c having magnetic tensities of several tens to several hundreds, a magnetic path of a magnetic field generated in the frame antenna portion 2a is secured, and a stable magnetic field is generated without shielding the magnetic field on the metal surface electrode 7a Thus, a structure that suppresses the influence of the metal surface electrode 7a is provided, and sufficient electromotive force due to electromagnetic induction of the IC card is sufficiently ensured to enable good data communication.

尚、枠形アンテナ部2aに積層される磁性体2cの種類には、様々な厚さや透磁率を備えた多種類のシート状の磁性材が市販されているため、用途に応じて選定することが可能であり、本実施例を制限するものではない。   In addition, since many kinds of sheet-like magnetic materials having various thicknesses and magnetic permeability are commercially available, the type of the magnetic body 2c laminated on the frame-shaped antenna portion 2a should be selected according to the application. However, the present embodiment is not limited.

また、図4に示す近接する金属面電極7aの影響により非接触ICカード用アンテナ2のインピーダンスが変動し、周波数にズレが生じる周波数シフトが発生する問題について、特にQ特性の高いICカードやRFIDタグでは、共振周波数のズレにより電磁誘導による起電力が得られない。或いは起電力が得られても、有効電力が大きく減少するためICカードやRFIDタグと、非接触ICカード用アンテナ2との接近間隔が狭い範囲に限定され、或いはデータ通信の周波数帯が外れることでデータ通信にエラーが生じてしまう場合がある。   Further, with respect to the problem that the impedance of the non-contact IC card antenna 2 fluctuates due to the influence of the adjacent metal surface electrode 7a shown in FIG. In the tag, the electromotive force due to electromagnetic induction cannot be obtained due to the deviation of the resonance frequency. Alternatively, even if an electromotive force is obtained, the effective power is greatly reduced, so that the approach distance between the IC card or RFID tag and the non-contact IC card antenna 2 is limited to a narrow range, or the frequency band of data communication is out of range. May cause an error in data communication.

この金属面の影響による周波数シフトの現象を回避するため、枠形非接触ICカード用アンテナ2の整合回路のインピーダンスを、予め金属面電極7aの影響を考慮した値に設定し、枠形アンテナ部2aのQ特性の値を抑えて通信に必要な帯域幅を広くした特性を持たせることができる。その結果、電界強度を低下させることなく、有効な電力を供給できる共振周波数帯域幅が広く取られたQ特性を持つ枠形非接触ICカード用アンテナ2を形成することで、電界通信用アンテナ5の金属面電極7aの影響である周波数シフトに対応した統合アンテナを提供することができる。   In order to avoid the phenomenon of frequency shift due to the influence of the metal surface, the impedance of the matching circuit of the frame-shaped non-contact IC card antenna 2 is set in advance to a value that takes into account the influence of the metal surface electrode 7a. It is possible to provide a characteristic in which the bandwidth required for communication is widened by suppressing the Q characteristic value of 2a. As a result, by forming the frame-shaped non-contact IC card antenna 2 having a Q characteristic having a wide resonance frequency bandwidth capable of supplying effective power without reducing the electric field strength, the electric field communication antenna 5 The integrated antenna corresponding to the frequency shift which is the influence of the metal surface electrode 7a can be provided.

更に、電界通信用アンテナ5の金属面電極7aの影像効果で発生する渦電流を防止するため、金属面電極7aを中央で分割して2枚の水平板で構成し、2枚の水平板を導線で接続して、枠形非接触ICカード用アンテナ2を2枚の水平板の金属面電極7aをまたぐように載置することで、渦電流の発生を防止する構成の統合アンテナを提供することができる。   Furthermore, in order to prevent an eddy current generated by the image effect of the metal surface electrode 7a of the electric field communication antenna 5, the metal surface electrode 7a is divided into two horizontal plates at the center, and the two horizontal plates are formed. Provided is an integrated antenna that is configured to prevent generation of eddy currents by connecting the frame-shaped non-contact IC card antenna 2 so as to straddle the metal surface electrodes 7a of the two horizontal plates, connected by conducting wires. be able to.

また、非接触ICカード用アンテナのアンテナ整合回路のインピーダンスを、予め金属面電極7aの影響を考慮した値に設定し、枠形アンテナ部2aのQ特性の値を抑えて帯域幅を広くして、ICカードやRFIDタグの誘導起電力を低下させることなく、有効な電力を供給できる共振周波数帯域幅のQ特性を備えた枠形非接触ICカード用アンテナ2を形成することで、電界通信用アンテナ5の金属面電極7aの影響である周波数シフトに対応した統合アンテナを提供することができる。   In addition, the impedance of the antenna matching circuit of the non-contact IC card antenna is set to a value in consideration of the influence of the metal surface electrode 7a in advance, and the bandwidth is widened by suppressing the Q characteristic value of the frame-shaped antenna portion 2a. By forming the frame-shaped non-contact IC card antenna 2 having the Q characteristic of the resonance frequency bandwidth capable of supplying effective power without lowering the induced electromotive force of the IC card or the RFID tag, for electric field communication The integrated antenna corresponding to the frequency shift which is the influence of the metal surface electrode 7a of the antenna 5 can be provided.

本実施例の統合アンテナは、自動販売機等に搭載することを目的として、電界通信用アンテナの金属面電極の片面に中抜き非接触ICカードアンテナが形成された構成で説明したが、セキュリティ施設の認証装置にも使用可能であり、オートロック機構の付いたガラス扉等に本実施例の統合アンテナを扉の開閉用に設置する際は、扉の形成された認証装置用の穴に電界通信用アンテナ5の両側の金属面7a,7bに中抜き非接触ICカード用アンテナが形成された統合アンテナを取り付けることで、扉の両側から認証装置にアクセスすることができる。   The integrated antenna of this embodiment has been described with a configuration in which a hollow non-contact IC card antenna is formed on one side of a metal surface electrode of an electric field communication antenna for the purpose of mounting in a vending machine or the like. When installing the integrated antenna of this embodiment on a glass door with an auto-lock mechanism for opening and closing the door, electric field communication is performed in the hole for the authentication device on which the door is formed. The authentication device can be accessed from both sides of the door by attaching integrated antennas having hollow non-contact IC card antennas formed on the metal surfaces 7a and 7b on both sides of the antenna 5 for use.

或いはガラス扉の構造を利用して、ガラスを電界通信用アンテナの誘電体に利用し、ガラス扉の両面に中抜き非接触ICカードアンテナと電界通信用アンテナが形成された統合アンテナを設置することも可能である。   Or use glass door structure, use glass as dielectric for electric field communication antenna and install integrated antenna with hollow contactless IC card antenna and electric field communication antenna on both sides of glass door Is also possible.

また、本実施例の統合アンテナは、電界通信用アンテナと中抜き非接触ICカードアンテナを、樹脂上に蒸着処理することでアンテナパターンと金属面電極をフィルム状に形成し、それらを積層して一体化した統合アンテナを作成することで、曲面にも設置可能な薄く柔軟なシート材によるラミネート構造の統合アンテナとすることも可能である。   In addition, the integrated antenna of this example is formed by forming an antenna pattern and a metal surface electrode into a film by depositing an electric field communication antenna and a hollow contactless IC card antenna on a resin, and laminating them. By creating an integrated integrated antenna, it is possible to make an integrated antenna with a laminated structure of a thin and flexible sheet material that can be installed on a curved surface.

1a 枠形統合アンテナ
1b 円形統合アンテナ
2 枠形非接触ICカードアンテナ
2a 枠形アンテナ部
2b 基板
2c 磁性体
5 電界通信用アンテナ
6 誘電体
7 金属面電極
8 円形非接触ICカードアンテナ
8a 円形アンテナ部
8b 基板
8c 磁性体
40 非接触ICカード用アンテナ
41 アンテナ部
42 基板
43 磁性体
50 電界通信用アンテナ
51 電極
52 誘電体
C1 阻害容量
E 電界
M 磁界
H 中空ホール
DESCRIPTION OF SYMBOLS 1a Frame-shaped integrated antenna 1b Circular integrated antenna 2 Frame-shaped non-contact IC card antenna 2a Frame-shaped antenna part 2b Substrate 2c Magnetic body 5 Electric field communication antenna 6 Dielectric 7 Metal surface electrode 8 Circular non-contact IC card antenna 8a Circular antenna part 8b Substrate 8c Magnetic body 40 Non-contact IC card antenna 41 Antenna portion 42 Substrate 43 Magnetic body 50 Electric field communication antenna 51 Electrode 52 Dielectric C1 Inhibition capacitance E Electric field M Magnetic field H Hollow hole

Claims (2)

電界通信用アンテナと非接触ICカード用アンテナからなる統合アンテナであって、
前記電界通信用アンテナは、金属面電極と、誘電体と、金属面電極との順に重ねた積層構造を有し、
前記非接触ICカード用アンテナは、環状に形成されたアンテナ部と、該アンテナ部の形状に沿って環状に形成された基板と、該基板に沿った環状の磁性体とが積層された環状構造を有し、
前記電界通信用アンテナの前記金属面電極の上面に、金属面が見えるように前記非接触ICカード用アンテナの前記磁性体が載置されることを特徴とする中抜き非接触ICカード用アンテナによる統合アンテナ。
An integrated antenna comprising an electric field communication antenna and a non-contact IC card antenna,
The electric field communication antenna has a laminated structure in which a metal surface electrode, a dielectric, and a metal surface electrode are stacked in order,
The non-contact IC card antenna has an annular structure in which an antenna portion formed in an annular shape, a substrate formed in an annular shape along the shape of the antenna portion, and an annular magnetic body along the substrate are stacked Have
According to the hollow contactless IC card antenna, wherein the magnetic body of the contactless IC card antenna is placed on an upper surface of the metal surface electrode of the electric field communication antenna so that the metal surface can be seen. Integrated antenna.
電界通信用アンテナと非接触ICカード用アンテナからなる統合アンテナであって、
前記電界通信用アンテナは、金属面電極と、誘電体と、金属面電極との順に重ねた積層構造を有し、
前記非接触ICカード用アンテナは、環状に形成されたアンテナ部と、該アンテナ部の形状に沿って環状に形成された基板と、該基板に沿った環状の磁性体とが積層された環状構造を有し、
前記電界通信用アンテナの両側の前記金属面電極に、金属面が見えるように前記非接触ICカード用アンテナの前記磁性体が対向して載置されることを特徴とする中抜き非接触ICカード用アンテナによる統合アンテナ。
An integrated antenna comprising an electric field communication antenna and a non-contact IC card antenna,
The electric field communication antenna has a laminated structure in which a metal surface electrode, a dielectric, and a metal surface electrode are stacked in order,
The non-contact IC card antenna has an annular structure in which an antenna portion formed in an annular shape, a substrate formed in an annular shape along the shape of the antenna portion, and an annular magnetic body along the substrate are stacked Have
The hollow non-contact IC card, wherein the magnetic body of the non-contact IC card antenna is placed facing the metal surface electrodes on both sides of the electric field communication antenna so that the metal surface can be seen. Integrated antenna with antenna for use.
JP2010186162A 2010-08-23 2010-08-23 Integrated antenna with hollow contactless IC card antenna Expired - Fee Related JP5547582B2 (en)

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JP2005051329A (en) * 2003-07-29 2005-02-24 Furukawa Electric Co Ltd:The Two-frequency shared flat patch antenna and multi-frequency shared flat patch antenna
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