This application is based on Japanese Patent Application No. 2011-63093 filed on Mar. 22, 2011, the disclosure of which is incorporated herein by reference.
The present disclosure relates to a multi-band antenna that transmits and receives radio waves having different frequencies.
A technique that transmits and receives radio waves having different frequencies through a single antenna has been known as a trap load technique. In the trap load technique, for example, in a case of transmitting and receiving two radio waves having different frequencies such as a high frequency and a low frequency, an LC parallel resonant circuit (trap) that resonates at the high frequency is connected to a quarter of the wavelength of the high frequency so as to resonate the antenna at the high frequency. Because the electric current does not flow at the part where the trap is connected, the radio wave having the frequency corresponding to the quarter of the wavelength, that is, the radio wave having the high frequency is transmitted and received.
With regard to the radio wave having the low frequency, considering that the loaded trap serves as a reactance, the total length of the antenna is adjusted so that the antenna is resonated at the low frequency. As such, the radio wave having the low frequency is transmitted and received.
In this way, the radio waves having different frequencies can be transmitted and received by the single antenna. Such a multi-band antenna is, for example, described in JP11-55022A corresponding to U.S. Pat. No. 6,163,300.
To transmit and receive radio waves having different frequencies through a single antenna using the trap load technique, the antenna needs to be constructed by cascading multiple traps having different resonance frequencies. In such a case, therefore, the frequencies of the radio waves to be transmitted and received are limited to the values of the resonance frequencies of the traps cascaded. That is, the frequencies of the radio waves to be transmitted and received are likely to be discrete.
It is an object of the present disclosure to provide a multi-band antenna that transmits and receives radio waves having different frequencies.
According to an aspect, a multi-band antenna includes two conductive wirings being substantially parallel to each other as a basic structure and unit circuits cascaded along the conductive wirings. Each of the unit circuits includes a communication unit, a first capacitor and a second inductor. The communication unit connects between the two conductive wirings through a first inductor and a second capacitor connected in series with the first inductor. The first capacitor and the second inductor are inserted in at least one of the conductive wirings. The second inductor is connected in parallel with the first capacitor.
In such a structure, resonance points are given at least two frequencies. That is, radio waves having different frequencies can be transmitted and received by a single antenna. Also, the size of the antenna can be reduced.
In such a structure, for example, a third inductor is necessarily disposed in series with the two conductive wirings, and a third capacitor is necessarily disposed in parallel with the two conductive wirings. The first capacitor is disposed in series with the third inductor, and the first inductor is disposed in parallel with the third capacitor. The second inductor is disposed in parallel with the third inductor and the first capacitor disposed in series with the third inductor. The second capacitor is disposed in series to the first inductor. In such a case, with respect to a higher frequency, operations of the first capacitor and the first inductor are dominant. With respect to a lower frequency, the first capacitor is approximated to an open state, and the first inductor is approximated to a short-circuit state. As such, effects of the second inductor and the second capacitor increase, and operations of the second inductor and the second capacitor are dominant.
For example, the first inductor, the first capacitor, the second inductor, the second capacitor, the third inductor disposed in series with the conductive wirings, and the third capacitor disposed between the conductive wirings satisfy a relationship expressed by a following expression 1:
in which LL is the value of the first inductor, CL is the value of the first capacitor, LM is the value of the second inductor, CM is the value of the second capacitor, LR is the value of the third inductor, and CR is the value of the third capacitor.
In such a case, the resonance points, that is, each inductor and each capacitor are limited numerically. Therefore, the values of the inductor and the capacitor are easily determined.
According to a second aspect, a multi-band antenna includes two conductive wirings being substantially parallel to each other as a basic structure and unit circuits cascaded along the conductive wirings. Each of the unit circuit includes a communication unit that connects between the conductive wirings through a first inductor, and a first capacitor inserted in at least one of the conductive wirings. The first inductor, the first capacitor, a third capacitor disposed between the conductive wirings, and a third inductor disposed on at least one of the conductive wirings satisfy a relationship expressed by a following expression 2:
in which LL is the value of the first inductor, CL is the value of the first capacitor, CR is the value of the third capacitor, and LR is the value of the third inductor.
In such a structure, radio waves having different frequencies can be transmitted and received by a single antenna. Also, the size of the antenna can be reduced.
The above and other objects, features and advantages of the present disclosure will become more apparent from the following detailed description made with reference to the accompanying drawings, in which like parts are designated by like reference numbers and in which:
A first embodiment will be described with reference to
(Structure of Multi-Band Antenna 1)
Referring to
A first end of the metal wiring 10 is a feeding point 14, and is connected to multiple transmitting and receiving devices (transceivers) 72, 74 etc. through a band filter 70. A second end of the metal wiring 10 is an open end.
A first end of the metal wiring 12, which is on the same side as the first end of the metal wiring 10, is connected to a GND plate 60 so as to avoid a transmission signal reflecting.
The multi-band antenna 1 having the above-described structure enables to transmit and receive radio waves in association with the multiple transmitting and receiving devices 72, 74 etc.
As shown in
The communication unit 30 has a circuit structure that connects the two metal wiring 10 and the metal wiring 12 to each other through a first inductor 40 having an inductance (LL) and a second capacitor 52 (CM) connected in series with the first inductor 40 (LL).
In the present embodiment, two first capacitors 50 (CL) are inserted in the metal wiring 10. Also, two second inductors 42 (LM) are inserted in the metal wiring 10. The first capacitors 50 (CL) are located on opposite sides of a connecting point to the communication unit 30. Each of the second inductor 42 (LM) is connected in parallel with the corresponding first capacitor 50 (CL).
As shown in
Also, the first capacitor 50 (CL) is provided by a conductor pattern formed on the front surface of the printed board 80. Likewise, the second capacitor 52 (CM) is provided by a conductor pattern formed on the front surface of the printed board 80. The conductor patterns of the first capacitor 50 (CL) and the second capacitor 52 (CM) have a comb-teeth shape, for example. The two metal wirings 10, 12 are provided by conductor patterns such as copper foil formed on the printed board 80, for example.
(Relationship Between Inductor and Capacitor)
In the multi-band antenna 1 having the above-described structure, inductances are necessarily generated in series with the metal wirings 10, 12. Such inductances are referred to as third inductors 44 (LR), as schematically shown in
Likewise, a capacitance is generated between the two metal wirings 10, 12. Such a capacitance is referred to as a third capacitor 54 (CR), as schematically shown in
A dispersion curve of the multi-band antenna 1 in which the first through third inductors 40, 42, 44 and the first through third capacitors 50, 52, 54 are distributed in the above-described manner is expressed by the following expression 3:
in which L′R, C′2, L′L, α, and β are defined as follows:
As shown in
That is, in
In
In order to make the multi-band antenna 1 in a multi-band configuration, that is, to transmit and receive radio waves with different frequencies, the frequencies ωse1, ωsh1, ωse2, ωsh2 shown in
sh2≦
Further, the first through third inductors 40, 42, 44, the first through third capacitors 50, 52, 54 and the frequency relationship expressed by the expression 4 have relationships expressed by the following expressions 5(a) through 5(d):
Accordingly, the multi-band antenna 1 needs to satisfy the following expression 1 so as to have the multi-band configuration:
Referring to
As shown in
Further, as shown in
As described above, two resonance frequencies of the multi-band antenna 1 can be continuously changed by changing the inductance LM of the second inductor 42 and the capacitance CM of the second capacitor 52.
(Features of the Multi-Band Antenna 1)
Hereinabove, the multi-band configuration of the multi-band antenna 1 has been quantitatively described with reference to the numerical expressions. Hereinafter, the multi-band configuration of the multi-band antenna 1 will be qualitatively described based on
As shown in
As shown in
As described above, the frequency points can be obtained in the high-frequency side and the low-frequency side. In other words, the radio waves having two frequencies can be transmitted and received.
In general, a structure where the third inductors 44 (LR) are disposed in series with the two metal wirings 10, 12 and the third capacitor 54 (CR) is disposed in parallel with the two metal wirings 10, 12 is referred to as a right-handed material. A structure in which units each having the first capacitor 50 (CL) connected in series with the third inductor 44 (LR) of the right-handed material and the first inductor 50 (LL) connected in parallel with the third capacitor 54 (CR) are cascaded is referred to as a meta-material or a left-handed material.
In the case where the first inductor 40 (LL), the first capacitor 50 (CL), the second inductor 42 (LM), the second capacitor 52 (CM), the third inductor 44 (LR) disposed in series with the two metal wirings 10, 12, and the third capacitor 54 (CR) disposed between the two metal wirings 10, 12 satisfy the relationship of the expression 1, the resonance points, that is, each inductor and each capacitor for obtaining desirable frequencies are numerically limited. Therefore, the values of each inductor and each capacitor are easily determined.
The two metal wirings 10, 12 are provided by conductor patterns formed on the printed board 80. The conductor patterns of the first inductor 40 (LL) and the second inductor 42 (LM) have the meandering shapes. The conductor patterns of the first capacitor 50 (CL) and the second capacitor 52 (CM) have the comb-teeth shapes.
That is, the inductors and capacitors are provided by the conductor patterns formed on the printed board 80. Therefore, the size of the multi-band antenna 1 can be reduced, and the loss of the multi-band antenna 1 can be reduced.
A second embodiment will be described with reference to
(Structure of Multi-Band Antenna 2)
Referring to
A first end of the metal wiring 10 is a feeding point 14, and is connected to multiple transmitting and receiving devices 72, 74 etc. through a band filter 70. A second end of the metal wiring 10 is an open end.
A first end of the metal wiring 12, which is on the same side as the first end of the metal wiring 10, is connected to a GND plate 60 so as to avoid a transmission signal reflecting.
The multi-band antenna 2 having the above-described structure enables to transmit and receive radio waves in association with the multiple transmitting and receiving devices 72, 74 etc.
In an actual device of the multi-band antenna 2, the two metal wirings 10, 12 are provided by conductor patterns such as copper foil formed on the printed board 80, similar to the multi-band antenna 1 of the first embodiment.
As shown in
In an actual device, the first inductor 40 (LL) is provided by a conductor pattern having a meandering shape and formed on the printed board 80, as shown in
(Relationship Between Inductor and Capacitor)
In the multi-band antenna 2 having the above-described structure, the first inductor 40 (LL), the first capacitor 50 (CL), a third capacitor 54 (CR) disposed between the two metal wirings 10, 12 and a third inductor 44 (LR) disposed in series with the two metal wirings 10, 12 satisfy a relationship expressed by the following expression 2:
(Feature of Multi-Band Antenna 2)
In the multi-band antenna 2 described above, as shown in
Therefore, operations of the first inductor 40 (LL) and the first capacitor 50 (CL) (i.e., elements surrounded by single-dashed chain lines in
On the other hand, on the high-frequency side, due to resonance (antiresonance) of the first inductor 40 (LL) and the first capacitor 50 (CL), impedance becomes high at the frequency. Therefore, an electric current is distributed to the metal wiring 10, which is on a feeding side. The resonance frequency ω1 in this case is expressed by the following expression 6:
At the above resonance frequency (antiresonance frequency), the value LR of the third inductor 44 and the value CL the first capacitor 50 are determined so that an imaginary part A of radiation impedance of the metal wiring 10 on the feeding side is negated. In such a case, therefore, the radio wave is efficiently radiated from the metal wiring 10.
In this case, the imaginary part A, the third inductor 44 (Lr), and the first capacitor 50 (CL) satisfy a relationship expressed by the following expression 7:
Therefore, the resonance frequency ω1 is expressed as follows:
The following expression 2 is introduced with reference to the first inductor 40 (LL), the third inductor 44 (LR), the first capacitor 50 (CL), and the imaginary part A of the radiation impedance of the metal wiring 10 based on the above expressions 7 and 8.
It is to be noted that the third inductor 44 (LR) is an inductor that is necessarily disposed on the metal wiring 10, as described above. Therefore, the value LR of the third inductor 44 can be determined by changing the length of the metal wiring 10 in the unit circuit 22, by forming an inductor with a conductive pattern on the printed board 80, or by adding a discrete part, such as a coil.
The exemplary embodiments are described hereinabove. However, the present disclosure is not limited to the above described exemplary embodiments, but may be modified in various other ways.
(1) In the above described embodiments, the first through third inductors 40, 42, 44 and the first through third capacitors 50, 52, 54 are implemented by the conductor patterns formed on the printed board 80. However, in a case where it is difficult to obtain desired inductance and/or capacitance by such conductive patterns, the desired inductance and/or capacitance can be obtained by using a discrete part(s) or the like, for example.
(2) In the first embodiment, the two second inductors 42 (LM) are disposed on the metal wiring 10 on opposite sides of the connecting point connecting to the communication unit 30. In the second embodiment, the two first capacitors 50 (CL) are disposed on the metal wiring 10 on opposite sides of the connecting point connecting to the communication unit 32. However, it is not always necessary that the second inductors 42 (LM) and the first capacitors 50 (CL) are disposed on the opposite sides of the connecting point, and one of the second inductors 42 (LM) or one of the first capacitors (CL) may be eliminated In such a case, it is necessary to change the value LM of the second inductor 42 or the value CL of the first capacitor 50.
While the present disclosure has been described with reference to the exemplary embodiments thereof, it is to be understood that the disclosure is not limited to the exemplary embodiments and constructions. The present disclosure is intended to cover various modification and equivalent arrangements. In addition, while the various combinations and configurations, which are preferred, other combinations and configurations, including more, less or only a single element, are also within the spirit and scope of the present disclosure.
Number | Date | Country | Kind |
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2011-063093 | Mar 2011 | JP | national |