JP4775390B2 - Reader / writer - Google Patents

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JP4775390B2
JP4775390B2 JP2008069848A JP2008069848A JP4775390B2 JP 4775390 B2 JP4775390 B2 JP 4775390B2 JP 2008069848 A JP2008069848 A JP 2008069848A JP 2008069848 A JP2008069848 A JP 2008069848A JP 4775390 B2 JP4775390 B2 JP 4775390B2
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JP2009225310A (en
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達也 平田
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Denso Wave Inc
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Denso Wave Inc
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本発明は、RFID用アンテナにより電波を送受信してRFIDタグとの間でデータ通信を行うRFID通信手段と、近距離無線通信用アンテナにより電波を送受信して外部機器との間でデータ通信を行う近距離無線通信手段とが同一筐体内に設けられてなるリーダライタに関する。   The present invention performs data communication between an RFID communication means that transmits and receives radio waves by an RFID antenna and performs data communication with an RFID tag, and an external device by transmitting and receiving radio waves by a short-range wireless communication antenna. The present invention relates to a reader / writer in which near field communication means is provided in the same housing.

近年より、RFID用アンテナにより電波を送受信してRFIDタグとの間でデータ通信を行うRFID回路と、近距離無線通信用アンテナにより電波を送受信して外部機器との間でデータ通信を行う無線LAN回路とが同一筐体内に設けられてなるリーダライタが供されている。ところで、この種のリーダライタにおいては、小型化を実現するためにRFID用アンテナと近距離無線通信用アンテナとが近接して配置されることにより、互いの電波が影響を及ぼし合い、各々のアンテナ性能(通信距離や安定性など)を犠牲にしてしまうという問題があった。一方、下記の特許文献1には複数の帯域内周波数を共用する多周波共用アンテナが開示されている。
特開2005−303637号公報
In recent years, an RFID circuit that performs data communication with an RFID tag by transmitting / receiving radio waves using an RFID antenna, and a wireless LAN that performs data communication with external devices by transmitting / receiving radio waves using a short-range wireless communication antenna A reader / writer in which a circuit is provided in the same housing is provided. By the way, in this kind of reader / writer, in order to realize miniaturization, the RFID antenna and the short-range wireless communication antenna are arranged close to each other, so that the radio waves influence each other, and each antenna There was a problem of sacrificing performance (communication distance, stability, etc.). On the other hand, Patent Document 1 below discloses a multi-frequency antenna that shares a plurality of in-band frequencies.
JP 2005-303637 A

しかしながら、上記した特許文献1に記載されている技術は、RFID用アンテナと近距離無線通信用アンテナとが近接して配置されることに起因する各々のアンテナ性能を犠牲にするという問題を解決するには至らない。   However, the technique described in Patent Document 1 described above solves the problem of sacrificing each antenna performance caused by the proximity of the RFID antenna and the short-range wireless communication antenna. It does not lead to.

本発明は、上記した事情に鑑みてなされたものであり、その目的は、RFID用アンテナと近距離無線通信用アンテナとが近接して配置される構成であっても、互いの電波が影響を及ぼし合うことを未然に回避することができ、各々のアンテナ性能を適切に確保することができるリーダライタを提供することにある。   The present invention has been made in view of the above-described circumstances, and the purpose thereof is that even if the RFID antenna and the short-range wireless communication antenna are arranged close to each other, the mutual radio waves are affected. It is an object of the present invention to provide a reader / writer capable of avoiding the influences and ensuring the performance of each antenna appropriately.

請求項1に記載した発明によれば、RFID用アンテナを1/2波長ダイポール型アンテナにより構成し、RFID用アンテナの帯域内周波数の最高周波数が近距離無線通信で使用される周波数範囲の最低周波数を(n(nは正数)+0.3)で除した値以下であり且つRFID用アンテナの帯域内周波数の最低周波数が近距離無線通信で使用される周波数範囲の最高周波数を(n(前記nと同値)+0.7)で除した値以上であるように当該RFID用アンテナのエレメントを形成した。   According to the first aspect of the present invention, the RFID antenna is constituted by a half-wavelength dipole antenna, and the highest frequency in the band of the RFID antenna is the lowest frequency in the frequency range used in short-range wireless communication. Is equal to or smaller than (n (n is a positive number) +0.3), and the lowest frequency of the in-band frequency of the RFID antenna is the highest frequency in the frequency range used in short-range wireless communication ((n The RFID antenna element was formed so as to be equal to or greater than the value divided by (equal to n) +0.7).

上記した構成によれば、電圧分布について、RFID用アンテナのエレメントの両端は開放端になるが、一端は振幅の腹になり、他端は振幅の節になるので、RFID用アンテナの帯域内周波数を近距離無線通信で使用される周波数範囲で共振しないか或いは僅かに共振するに留めることができる。これにより、RFID用アンテナと近距離無線通信用アンテナとが近接して配置される構成であっても、互いの電波が影響を及ぼし合うことを未然に回避することができ、各々のアンテナ性能を適切に確保することができる。   According to the above-described configuration, both ends of the RFID antenna element are open ends, but one end is an amplitude antinode and the other end is an amplitude node. May not resonate in the frequency range used in short-range wireless communication, or may remain slightly resonant. As a result, even if the RFID antenna and the short-range wireless communication antenna are arranged close to each other, it is possible to prevent each other's radio waves from affecting each other, and to improve the performance of each antenna. It can be secured appropriately.

以下、本発明の一実施形態について、図面を参照して説明する。図1は、リーダライタの構成を概略的に示している。リーダライタ1は、その筐体2が携帯型の形状をなしており、筐体2の一端側(図1では左側)にはRFID回路3(本発明でいうRFID通信手段)及び無線LAN回路4(本発明でいう近距離無線通信手段)が搭載されている。RFID回路3は、ダイポールアンテナ5(本発明でいうRFID用アンテナ)を接続しており、給電線6を介してダイポールアンテナ5に給電した状態で電波をダイポールアンテナ5により送受信し、RFIDタグ7との間でデータ通信を行う。ダイポールアンテナ5のエレメント8は、電波の波長の2分の1の全長を有する長さにエレメント長が形成されている。   Hereinafter, an embodiment of the present invention will be described with reference to the drawings. FIG. 1 schematically shows the configuration of a reader / writer. The reader / writer 1 has a casing 2 in a portable shape. An RFID circuit 3 (RFID communication means in the present invention) and a wireless LAN circuit 4 are provided on one end side (left side in FIG. 1) of the casing 2. (Short-range wireless communication means in the present invention) is mounted. The RFID circuit 3 is connected to a dipole antenna 5 (RFID antenna in the present invention), and transmits and receives radio waves by the dipole antenna 5 while being fed to the dipole antenna 5 through the feeder line 6. Data communication between the two. The element length of the element 8 of the dipole antenna 5 is formed so as to have a total length that is one half of the wavelength of the radio wave.

無線LAN回路4は、基板9上に搭載されており、その基板上に導体パターンにより形成されているパターンアンテナ10及びパターンアンテナ11(本発明でいう近距離無線通信用アンテナ)を接続しており、パターンアンテナ10及びパターンアンテナ11に給電した状態で電波をパターンアンテナ10及びパターンアンテナ11により送受信し、外部機器(図示せず)との間でデータ通信を行う。無線LAN回路4は、データ通信を行う周波数範囲として2400〜2484[MHz]の周波数範囲と5150〜5350[MHz]の周波数範囲との2つの周波数範囲を有しており、パターンアンテナ10は2400〜2484[MHz]の周波数範囲の電波を送受信し、パターンアンテナ11は5150〜5350[MHz]の周波数範囲の電波を送受信する。   The wireless LAN circuit 4 is mounted on a substrate 9, and a pattern antenna 10 and a pattern antenna 11 (an antenna for short-distance wireless communication according to the present invention) formed by a conductor pattern are connected on the substrate 9. The radio waves are transmitted / received by the pattern antenna 10 and the pattern antenna 11 while being fed to the pattern antenna 10 and the pattern antenna 11, and data communication is performed with an external device (not shown). The wireless LAN circuit 4 has two frequency ranges of 2400 to 2484 [MHz] and 5150 to 5350 [MHz] as frequency ranges for data communication, and the pattern antenna 10 has 2400 to 2400 [MHz]. The pattern antenna 11 transmits and receives radio waves in the frequency range of 5150 to 5350 [MHz].

ここで、ダイポールアンテナ5と無線LANで使用される電波の周波数範囲との関係について、図2ないし図7を参照して説明する。
RFID通信で使用する953[MHz]の周波数に適するダイポールアンテナ5の全長(エレメント長)は以下のようにして導出することができる。すなわち、953[MHz]の周波数の真空中の波長λは約315[mm]であるので、ダイポールアンテナ5が実効比誘電率εr=2の基板に形成される構成では、基板内波長λgは、λg=λ/√(εr)=約223[mm]になり、ダイポールアンテナ5の全長Lは、L=λg/2=約111[mm]と導出することができる。
Here, the relationship between the dipole antenna 5 and the frequency range of the radio wave used in the wireless LAN will be described with reference to FIGS.
The total length (element length) of the dipole antenna 5 suitable for the frequency of 953 [MHz] used in the RFID communication can be derived as follows. That is, since the wavelength λ in vacuum having a frequency of 953 [MHz] is about 315 [mm], in the configuration in which the dipole antenna 5 is formed on the substrate having an effective relative dielectric constant εr = 2, the in-substrate wavelength λg is λg = λ / √ (εr) = about 223 [mm], and the total length L of the dipole antenna 5 can be derived as L = λg / 2 = about 111 [mm].

953[MHz]の周波数の電波の電圧分布は、図2(a)に示すように、エレメントの両端が開放端で振幅の腹になるので、953[MHz]の周波数では共振する。また、953[MHz]の周波数の2倍に相当する1906[MHz]の周波数の電波の電圧分布は、図2(b)に示すように、この場合も、エレメントの両端が開放端で振幅の腹になるので、1906[MHz]の周波数でも共振する。同様に、953[MHz]の周波数の3倍に相当する2859[MHz]の周波数の電波の電圧分布は、図2(c)に示すように、この場合も、エレメントの両端が開放端で振幅の腹になるので、2859[MHz]の周波数でも共振する。   As shown in FIG. 2A, the voltage distribution of a radio wave having a frequency of 953 [MHz] resonates at a frequency of 953 [MHz] because both ends of the element are antinodes at the open ends. In addition, as shown in FIG. 2B, the voltage distribution of the radio wave having a frequency of 1906 [MHz] corresponding to twice the frequency of 953 [MHz] is similar to that shown in FIG. Since it becomes a belly, it resonates even at a frequency of 1906 [MHz]. Similarly, the voltage distribution of a radio wave having a frequency of 2859 [MHz] corresponding to three times the frequency of 953 [MHz] is, as shown in FIG. Therefore, it resonates even at a frequency of 2859 [MHz].

一方、953[MHz]の周波数の2.5倍に相当する2383[MHz]の周波数の電波の電圧分布は、図2(d)に示すように、エレメントの両端は開放端になるが、一端は振幅の腹になり、他端は振幅の節になるので、2383[MHz]の周波数では共振しないか或いは僅かに共振する程度である。また、953[MHz]の周波数の5.5倍に相当する5242[MHz]の周波数の電波の電圧分布は、図2(e)に示すように、この場合も、エレメントの両端は開放端になるが、一端は振幅の腹になり、他端は振幅の節になるので、5242[MHz]の周波数でも共振しないか或いは僅かに共振する程度である。つまり、953[MHz]の周波数の(n(nは正数)+0.5)倍の周波数では共振しないか或いは僅かに共振する程度である
次に、周波数範囲の帯域幅が広い場合と狭い場合とにおける2400〜2484[MHz]の周波数範囲に対する共振の影響について説明する。
On the other hand, the voltage distribution of a radio wave having a frequency of 2383 [MHz] corresponding to 2.5 times the frequency of 953 [MHz], as shown in FIG. Becomes an antinode of amplitude, and the other end becomes a node of amplitude, so that it does not resonate or slightly resonates at a frequency of 2383 [MHz]. In addition, as shown in FIG. 2 (e), the voltage distribution of a radio wave having a frequency of 5242 [MHz] corresponding to 5.5 times the frequency of 953 [MHz] is, as shown in FIG. However, since one end becomes an antinode of amplitude and the other end becomes a node of amplitude, it does not resonate even at a frequency of 5242 [MHz] or slightly resonates. In other words, it does not resonate or slightly resonates at a frequency (n (n is a positive number) +0.5) times the frequency of 953 [MHz]. Next, when the bandwidth of the frequency range is wide or narrow The influence of resonance on the frequency range of 2400 to 2484 [MHz] will be described.

図3に示すように、周波数範囲が900〜1000[MHz](帯域幅が100[MHz])の場合は、その周波数範囲の2倍の前後で0.2ずつの幅を持たせて1.8〜2.2倍で計算し、その周波数範囲の3倍の前後で0.2ずつ幅を持たせて2.8〜3.2倍で計算すると、
900[MHz]×1.8=1620[MHz]
1000[MHz]×2.2=2200[MHz]
900[MHz]×2.8=2520[MHz]
1000[MHz]×3.2=3200[MHz]
になり、共振の影響が大きい範囲として1620〜2200[MHz]の周波数範囲及び2520〜3200[MHz]の周波数範囲を導出することができる。
As shown in FIG. 3, when the frequency range is 900 to 1000 [MHz] (bandwidth is 100 [MHz]), a width of 0.2 is provided around twice the frequency range. When calculating with 8 to 2.2 times, with a width of 0.2 around 3 times the frequency range and calculating with 2.8 to 3.2 times,
900 [MHz] × 1.8 = 1620 [MHz]
1000 [MHz] × 2.2 = 2200 [MHz]
900 [MHz] × 2.8 = 2520 [MHz]
1000 [MHz] × 3.2 = 3200 [MHz]
Thus, the frequency range of 1620 to 2200 [MHz] and the frequency range of 2520 to 3200 [MHz] can be derived as ranges where the influence of resonance is large.

一方、その周波数範囲の2.5倍の前後で0.2ずつの幅を持たせて2.3〜2.7倍で計算すると、
900[MHz]×2.7=2430[MHz]
1000[MHz]×2.3=2300[MHz]
になり、共振の影響が小さい範囲(共振しないか或いは僅かに共振するに留めることができる範囲)として2300〜2430[MHz]の周波数範囲を導出することができる。しかしながら、このようにして導出した2300〜2430[MHz]の周波数範囲は、無線LANで使用される2400〜2484[MHz]の周波数範囲の全てをカバーしていない(全てを含まない)ので、無線LANで使用される2400〜2484[MHz]の周波数範囲のうち共振の影響が小さい範囲から外れた2430〜2484[MHz]の周波数範囲ではチャネルの特性が低下する。
On the other hand, when calculating with 2.3 to 2.7 times with a width of 0.2 around 2.5 times the frequency range,
900 [MHz] × 2.7 = 2430 [MHz]
1000 [MHz] × 2.3 = 2300 [MHz]
Thus, a frequency range of 2300 to 2430 [MHz] can be derived as a range in which the influence of resonance is small (a range in which resonance does not resonate or can be slightly resonated). However, since the frequency range of 2300 to 2430 [MHz] derived in this way does not cover all of the frequency range of 2400 to 2484 [MHz] used in the wireless LAN (not including all), it is wireless. In the frequency range of 2430 to 2484 [MHz] that is outside the range where the influence of resonance is small in the frequency range of 2400 to 2484 [MHz] used in the LAN, the channel characteristics are degraded.

これに対して、図4に示すように、周波数範囲が920〜1000[MHz](帯域幅が80[MHz])の場合は、その周波数範囲の2倍の前後で0.2ずつの幅を持たせて1.8〜2.2倍で計算し、その周波数範囲の3倍の前後で0.2ずつ幅を持たせて2.8〜3.2倍で計算すると、
920[MHz]×1.8=1565[MHz]
1000[MHz]×2.2=2200[MHz]
920[MHz]×2.8=2576[MHz]
1000[MHz]×3.2=3200[MHz]
になり、共振の影響が大きい範囲として1565〜2200[MHz]の周波数範囲及び2576〜3200[MHz]の周波数範囲を導出することができる。
On the other hand, as shown in FIG. 4, when the frequency range is 920 to 1000 [MHz] (bandwidth is 80 [MHz]), the width is increased by 0.2 around twice the frequency range. If the calculation is 1.8 to 2.2 times, and the width is increased by 0.2 around 3 times the frequency range, and the calculation is 2.8 to 3.2 times,
920 [MHz] × 1.8 = 1565 [MHz]
1000 [MHz] × 2.2 = 2200 [MHz]
920 [MHz] × 2.8 = 2576 [MHz]
1000 [MHz] × 3.2 = 3200 [MHz]
Thus, a frequency range of 1565 to 2200 [MHz] and a frequency range of 2576 to 3200 [MHz] can be derived as ranges in which the influence of resonance is large.

一方、その周波数範囲の2.5倍の前後で0.2ずつの幅を持たせて2.3〜2.7倍で計算すると、
920[MHz]×2.7=2484[MHz]
1000[MHz]×2.3=2300[MHz]
になり、共振の影響が小さい範囲として2300〜2484[MHz]の周波数範囲を導出することができる。この場合は、上記した帯域幅が100[MHz]の場合とは異なって、このようにして導出した2300〜2484[MHz]の周波数範囲は、無線LANで使用される2400〜2484[MHz]の周波数範囲の全てをカバーしている(全てを含む)ので、無線LANで使用される2400〜2484[MHz]の周波数範囲ではチャネルの特性が低下することはない。
On the other hand, when calculating with 2.3 to 2.7 times with a width of 0.2 around 2.5 times the frequency range,
920 [MHz] × 2.7 = 2484 [MHz]
1000 [MHz] × 2.3 = 2300 [MHz]
Thus, a frequency range of 2300 to 2484 [MHz] can be derived as a range where the influence of resonance is small. In this case, unlike the above-described case where the bandwidth is 100 [MHz], the frequency range of 2300 to 2484 [MHz] derived in this way is 2400 to 2484 [MHz] used in the wireless LAN. Since the entire frequency range is covered (including all), the channel characteristics do not deteriorate in the frequency range of 2400 to 2484 [MHz] used in the wireless LAN.

したがって、無線LANで使用される2400〜2484[MHz]の周波数範囲に対する共振の影響が小さいダイポールアンテナ5の帯域内周波数として、
2484[MHz]/2.7=920[MHz]
2400[MHz]/2.3=1043[MHz]
により、920〜1043[MHz]の周波数範囲を導出することができる。
Therefore, as an in-band frequency of the dipole antenna 5 having a small influence of resonance on the frequency range of 2400 to 2484 [MHz] used in the wireless LAN,
2484 [MHz] /2.7=920 [MHz]
2400 [MHz] /2.3=1043 [MHz]
Thus, a frequency range of 920 to 1043 [MHz] can be derived.

同様に、無線LANで使用される5150〜5350[MHz]の帯域内周波数に共振の影響が小さいダイポールアンテナ5の帯域内周波数として、
5150[MHz]/5.7=939[MHz]
5350[MHz]/5.3=972[MHz]
により、939〜972[MHz]の周波数範囲を導出することができる。
Similarly, as the in-band frequency of the dipole antenna 5 having a small influence of resonance on the in-band frequency of 5150 to 5350 [MHz] used in the wireless LAN,
5150 [MHz] /5.7=939 [MHz]
5350 [MHz] /5.3=972 [MHz]
Thus, a frequency range of 939 to 972 [MHz] can be derived.

すなわち、上記したリーダライタ1において、ダイポールアンテナ5を939〜972[MHz]を帯域内周波数とするように形成することにより、ダイポールアンテナ5が無線LANで使用される2400〜2484[MHz]の周波数範囲及び5150〜5350[MHz]の周波数範囲の双方に対して共振しないか或いは僅かに共振するに留めることができる。   That is, in the reader / writer 1 described above, the dipole antenna 5 is formed so that the frequency in the band is 939 to 972 [MHz], whereby the frequency of 2400 to 2484 [MHz] used in the wireless LAN. It can not resonate with respect to both the range and the frequency range of 5150 to 5350 [MHz], or can be kept slightly resonant.

ダイポールアンテナ5の帯域幅を狭く調整するにはエレメント8の幅を細くすることで実現することができる。図5は、共振帯域幅とエレメント幅との関係を示すもので、エレメント幅を5[mm]以下にすることにより、共振する帯域幅を80[MHz]以下にすることができる。また、この共振帯域幅とエレメント幅との関係は、図6に示す折返しダイポールアンテナでも同様である。   Narrowing the bandwidth of the dipole antenna 5 can be realized by reducing the width of the element 8. FIG. 5 shows the relationship between the resonance bandwidth and the element width. By setting the element width to 5 [mm] or less, the resonant bandwidth can be set to 80 [MHz] or less. The relationship between the resonance bandwidth and the element width is the same in the folded dipole antenna shown in FIG.

無線LANで使用される2400〜2484[MHz]の周波数範囲の真空中の波長λは約123±2[mm]であるので、パターンアンテナ10が実効比誘電率εr=2の基板に形成される構成では、基板内波長λgは、λg=λ/√(εr)=約87[mm]になり、この波長の共振の影響が小さい長さLaは、La=(n/2+0.25)×λgと導出することができる。   Since the wavelength λ in vacuum in the frequency range of 2400 to 2484 [MHz] used in the wireless LAN is about 123 ± 2 [mm], the pattern antenna 10 is formed on a substrate having an effective relative dielectric constant εr = 2. In the configuration, the in-substrate wavelength λg is λg = λ / √ (εr) = about 87 [mm], and the length La in which the influence of resonance at this wavelength is small is La = (n / 2 + 0.25) × λg. And can be derived.

ところで、図7(a)に示すように、マッチングを向上させるために、エレメント8に幅が不連続となる不連続部8aを形成し、エレメント8の端側を幅狭に且つ中心側を幅広に形成する場合がある。この場合、幅が不連続となる箇所が存在すると、基本の共振周波数よりも高い周波数で共振する所謂副共振が形成されることになるが、それら不連続部8a間の幅広部分の長さを上記した計算式でn=1とし、La=(1/2+0.25)×λg=約65[mm]にすることにより、副共振が形成されても、無線LANで使用される周波数範囲に対して共振の影響を小さくすることができる。   By the way, as shown in FIG. 7A, in order to improve matching, a discontinuous portion 8a having a discontinuous width is formed in the element 8, and the end side of the element 8 is narrowed and the center side is widened. May form. In this case, if there is a portion where the width is discontinuous, a so-called sub-resonance that resonates at a frequency higher than the basic resonance frequency is formed, but the length of the wide portion between the discontinuous portions 8a is reduced. By setting n = 1 in the above formula and La = (1/2 + 0.25) × λg = about 65 [mm], even if a secondary resonance is formed, the frequency range used in the wireless LAN can be reduced. Thus, the influence of resonance can be reduced.

また、図7(b)に示すように、筐体サイズなどの制約により、エレメント8に屈曲部8bを形成する場合がある。この場合も、それら屈曲部8b間の直線部分の長さを上記した計算式でn=1とし、La=(1/2+0.25)×λg=約65[mm]にすることにより、副共振が形成されても、無線LANで使用される周波数範囲に対して共振の影響を小さくすることができる。   Further, as shown in FIG. 7B, a bent portion 8b may be formed in the element 8 due to restrictions such as a housing size. Also in this case, the length of the straight line portion between the bent portions 8b is set to n = 1 in the above-described calculation formula, and La = (1/2 + 0.25) × λg = about 65 [mm], whereby the secondary resonance is achieved. Even if is formed, the influence of resonance can be reduced with respect to the frequency range used in the wireless LAN.

以上に説明したように本実施形態によれば、RFID用のダイポールアンテナ5を1/2波長ダイポール型アンテナにより構成し、ダイポールアンテナ5の帯域内周波数の最高周波数が無線LANで使用される周波数範囲の最低周波数を(n(nは正数)+0.3)で除した値以下であり且つダイポールアンテナ5の帯域内周波数の最低周波数が無線LANで使用される周波数範囲の最高周波数を(n(前記nと同値)+0.7)で除した値以上であるようにエレメント8を形成したので、電圧分布について、そのエレメント8の両端は開放端になるが、一端は振幅の腹になり、他端は振幅の節になり、ダイポールアンテナ5が無線LANで使用される周波数範囲で共振しないか或いは僅かに共振するに留めることができる。これにより、RFID用のダイポールアンテナ5と無線LAN用のパターンアンテナ10及びパターンアンテナ11とが近接して配置される構成であっても、互いの電波が影響を及ぼし合うことを未然に回避することができ、各々のアンテナ性能を適切に確保することができる。   As described above, according to the present embodiment, the RFID dipole antenna 5 is constituted by a half-wavelength dipole antenna, and the maximum frequency of the in-band frequency of the dipole antenna 5 is a frequency range used in the wireless LAN. The minimum frequency of the dipole antenna 5 is equal to or lower than the value obtained by dividing the minimum frequency of (n (n is a positive number) +0.3), and the maximum frequency in the frequency range used in the wireless LAN is (n ( Since the element 8 is formed so as to be equal to or greater than the value divided by the above (equivalent value of n) +0.7), with respect to the voltage distribution, both ends of the element 8 are open ends, but one end is an amplitude antinode, and the other The end becomes a node of amplitude, and the dipole antenna 5 can be not resonated or slightly resonated in the frequency range used in the wireless LAN. Thus, even when the RFID dipole antenna 5 and the wireless LAN pattern antenna 10 and the pattern antenna 11 are arranged close to each other, it is possible to avoid the mutual influence of the radio waves. Therefore, the performance of each antenna can be ensured appropriately.

本発明は、上記した実施形態にのみ限定されるものではなく、以下のように変形または拡張することができる。
無線LAN回路4がデータ通信を行う周波数範囲として2400〜2484[MHz]の周波数範囲と5150〜5350[MHz]の周波数範囲との2つの周波数範囲のうちいずれかを有する構成であっても良い。
エレメント8に湾曲部を形成し、その湾曲部間の直線部分の長さをLa=(1/2+0.25)×λg=約65[mm]にすることにより、副共振が形成されても、無線LANで使用される周波数範囲に対して共振の影響を小さくするように構成しても良い。
The present invention is not limited to the above-described embodiment, and can be modified or expanded as follows.
The wireless LAN circuit 4 may be configured to have one of two frequency ranges of 2400 to 2484 [MHz] and 5150 to 5350 [MHz] as a frequency range for data communication.
Even if a sub-resonance is formed by forming a curved portion in the element 8 and setting the length of the straight line portion between the curved portions to La = (1/2 + 0.25) × λg = about 65 [mm] You may comprise so that the influence of a resonance may be made small with respect to the frequency range used by wireless LAN.

本発明の一実施形態の構成を概略的に示す図The figure which shows the structure of one Embodiment of this invention roughly ダイポールアンテナにおける電波の電圧分布を示す図Diagram showing the voltage distribution of radio waves in a dipole antenna ダイポールアンテナにおける電波の電圧分布を示す図及び共振の影響を示す図The figure which shows the voltage distribution of the electric wave in the dipole antenna, and the figure which shows the influence of resonance 図3相当図3 equivalent figure 共振帯域幅とエレメント幅との関係を示す図Diagram showing the relationship between resonance bandwidth and element width 折返しダイポールアンテナにおける電波の電圧分布を示す図Diagram showing the voltage distribution of radio waves in a folded dipole antenna 図2相当図2 equivalent diagram

符号の説明Explanation of symbols

図面中、1はリーダライタ、2は筐体、3はRFID回路(RFID通信手段)、4は無線LAN回路(近距離無線通信手段)、5はダイポールアンテナ(RFID用アンテナ)、8はエレメント、8aは不連続部、8bは屈曲部、10,11はパターンアンテナ(近距離無線通信用アンテナ)である。   In the drawings, 1 is a reader / writer, 2 is a housing, 3 is an RFID circuit (RFID communication means), 4 is a wireless LAN circuit (short-range wireless communication means), 5 is a dipole antenna (RFID antenna), 8 is an element, 8a is a discontinuous portion, 8b is a bent portion, and 10 and 11 are pattern antennas (short-range wireless communication antennas).

Claims (4)

RFID用アンテナにより電波を送受信してRFIDタグとの間でデータ通信を行うRFID通信手段と、近距離無線通信用アンテナにより電波を送受信して外部機器との間でデータ通信を行う近距離無線通信手段とが同一筐体内に設けられてなるリーダライタであって、
前記RFID用アンテナを1/2波長ダイポール型アンテナにより構成し、
前記RFID用アンテナの帯域内周波数の最高周波数が前記近距離無線通信で使用される周波数範囲の最低周波数を(n(nは正数)+0.3)で除した値以下であり且つ前記RFID用アンテナの帯域内周波数の最低周波数が前記近距離無線通信で使用される周波数範囲の最高周波数を(n(前記nと同値)+0.7)で除した値以上であるように当該RFID用アンテナのエレメントを形成したことを特徴とするリーダライタ。
RFID communication means for transmitting and receiving radio waves by means of an RFID antenna and performing data communication with an RFID tag, and short-range wireless communication for performing data communications with external devices by transmitting and receiving radio waves by means of a short-range wireless communication antenna The means is a reader / writer provided in the same housing,
The RFID antenna is composed of a 1/2 wavelength dipole antenna,
The highest frequency in the band of the RFID antenna is equal to or less than the value obtained by dividing the lowest frequency in the frequency range used in the short-range wireless communication by (n (n is a positive number) +0.3), and for the RFID The RFID antenna has an in-band frequency that is equal to or higher than a value obtained by dividing the highest frequency in the frequency range used in the short-range wireless communication by (n (the same value as n) +0.7). A reader / writer characterized by forming an element.
請求項1に記載したリーダライタにおいて、
前記RFID用アンテナのエレメントに幅が不連続となる不連続部を形成し、前記RFID用アンテナのうち前記不連続部間の帯域内周波数の最高周波数が前記近距離無線通信で使用される周波数範囲の最低周波数を(n(nは正数)+0.3)で除した値以下であり且つ当該不連続部間の帯域内周波数の最低周波数が前記近距離無線通信で使用される周波数範囲の最高周波数を(n(前記nと同値)+0.7)で除した値以上であるように当該RFID用アンテナのエレメントを形成したことを特徴とするリーダライタ。
The reader / writer according to claim 1,
A frequency range in which a discontinuous portion having a discontinuous width is formed in the element of the RFID antenna, and the highest in-band frequency between the discontinuous portions of the RFID antenna is used in the short-range wireless communication. Is equal to or lower than the value obtained by dividing the lowest frequency by (n (n is a positive number) +0.3), and the lowest frequency in the band between the discontinuous portions is the highest in the frequency range used in the short-range wireless communication. An RFID antenna element is formed so that the frequency is equal to or higher than a value obtained by dividing a frequency by (n (the same value as n) +0.7).
請求項1に記載したリーダライタにおいて、
前記RFID用アンテナのエレメントに屈曲部を形成し、前記RFID用アンテナのうち前記屈曲部間の帯域内周波数の最高周波数が前記近距離無線通信で使用される周波数範囲の最低周波数を(n(nは正数)+0.3)で除した値以下であり且つ当該屈曲部間の帯域内周波数の最低周波数が前記近距離無線通信で使用される周波数範囲の最高周波数を(n(前記nと同値)+0.7)で除した値以上であるように当該RFID用アンテナのエレメントを形成したことを特徴とするリーダライタ。
The reader / writer according to claim 1,
A bent portion is formed in the element of the RFID antenna, and the highest in-band frequency between the bent portions of the RFID antenna is the lowest frequency in the frequency range used in the short-range wireless communication (n (n Is equal to or less than the value divided by +0.3), and the lowest frequency of the in-band frequency between the bent portions is the highest frequency in the frequency range used in the short-range wireless communication (n (equivalent to n) ) A reader / writer characterized in that the RFID antenna element is formed so as to be equal to or greater than the value divided by +0.7).
請求項1に記載したリーダライタにおいて、
前記RFID用アンテナのエレメントに湾曲部を形成し、前記RFID用アンテナのうち前記湾曲部間の帯域内周波数の最高周波数が前記近距離無線通信で使用される周波数範囲の最低周波数を(n(nは正数)+0.3)で除した値以下であり且つ当該湾曲部間の帯域内周波数の最低周波数が前記近距離無線通信で使用される周波数範囲の最高周波数を(n(前記nと同値)+0.7)で除した値以上であるように当該RFID用アンテナのエレメントを形成したことを特徴とするリーダライタ。
The reader / writer according to claim 1,
A bending portion is formed in the element of the RFID antenna, and the highest in-band frequency between the bending portions of the RFID antenna is set to the lowest frequency in the frequency range used in the short-range wireless communication (n (n Is equal to or less than the value divided by +0.3), and the lowest frequency of the in-band frequency between the curved portions is the highest frequency in the frequency range used in the short-range wireless communication (n (equivalent to n) ) A reader / writer characterized in that the RFID antenna element is formed so as to be equal to or greater than the value divided by +0.7).
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