The present invention relates to a wireless communication technology that enables desired setting of a boundary of a communication area.
The needs of a wireless communication system that limits a communication area as desired have been increased recently. A system using a magnetic field has been in practical use as such a wireless communication system. A loop antenna and a bar antenna have been used for generating the magnetic field. A disclosed effective way in generating a magnetic field desired by a designer is to use multiple antennas and appropriately control phases of currents flowing through those antennas (Patent document 1).
Patent document 1: Japanese Patent No. 6059833
Patent document 2: Japanese Patent No. 6069548
In general, the technology using multiple antennas usually employs a configuration in which the multiple antennas are connected in series (Patent document 2). Such a series connection configuration requires only one signal source, which is an advantage. However, in the simple series connection configuration disclosed in Patent document 2, amplitude and phases of currents flowing through the antennas naturally take the same values in all the antennas.
Thus, there is a problem that multiple signal sources are needed in order to control the amplitude and phases of the currents flowing through the antennas according to the proposition of Patent document 1.
The present invention is made in light of the above-described problem, and has an object to control the amplitude and phases of the currents flowing through the multiple antennas connected in series into desired values.
An antenna circuit according to an aspect of the present invention includes: a first antenna; a second antenna that is connected in series with the first antenna and includes inductance; an adjustment capacitor that is connected in parallel with the second antenna; and an adjustment resistor that is connected in parallel with the second antenna.
According to the present invention, it is possible to control amplitude and phases of currents flowing through multiple antennas connected in series into desired values.
An embodiment of the present invention is described below with reference to the drawings.
The antenna circuit illustrated in
In the antenna circuit illustrated in
The actual amplitude ratio r and the phase difference θ between the currents are indicated by the following equations (1) and (2).
In the equations, ω is an angular frequency of a signal generated by the signal source 3.
Both the equations (1) and (2) are independent of the impedance Z1 of the antenna 1. Thus, an arbitrary antenna can be used as the antenna 1. The antenna 2 may be at least an antenna having inductance such as a loop antenna and a bar antenna. In the example of
Now, a value Cvopt of the variable capacitor Cv and a value Rvopt of the variable resistor Rv required to achieve desired actual amplitude ratio r0 and phase difference θ0 between the currents are described.
The actual amplitude ratio r0 and phase difference θ0 are substituted into the equations (1) and (2) to solve for Cvopt and Rvopt, and thus the following equations (3) and (4) can be obtained.
The desired actual amplitude ratio r0 and phase difference θ0 can be achieved by setting the value of the variable capacitor Cv of the antenna circuit in
For example, it is assumed that the desired actual amplitude ratio r0 and phase difference θ0 are values of the following equation (5).
[Math. 5]
r0=1,00=11 deg (5)
In addition, it is assumed that a signal frequency f of the signal source 3 and the inductance L2 of the antenna 2 are values of the following equation (6).
[Math. 6]
f=1 MHz, L2=10 μH (6)
The equations (5) and (6) are substituted into the equations (3) and (4) to calculate appropriate parameters, and thus the following values Cvopt and Rvopt can be obtained.
[Math. 7]
CvoptT46.5389 pF, Rvopt=329.292Ω (7)
According to
Now, effects of the current phase difference on magnetic field distribution are described.
As illustrated in
In
Next, an example of forming asymmetric magnetic field distribution is described.
As illustrated in
In the antenna circuit of this embodiment, setting of both the amplitude and the phases of the currents I1 and I2 flowing through the antennas 1 and 2 to different values enables creating of magnetic field distribution asymmetric about the y-z plane.
For example, it is assumed that the currents I1 and I2 satisfying the following equation (8) flow through the antennas 1 and 2. Note that, it is assumed that the signal frequency f of the signal source 3 and the inductance L2 of the antenna 2 are the values of the equation (6).
[Math. 8]
r0=1/1.3,θ0=10 deg (8)
The equations (6) and (8) are substituted into the equations (3) and (4) to calculate appropriate parameters, and thus the following values Cvopt and Rvopt can be obtained.
[Math. 9]
CvoptT614.147 pF, Rvopt=470.384Ω (9)
According to
Next, another antenna circuit of this embodiment is described.
The antenna circuit illustrated in
When a loop antenna is used as each of the antennas 1 and 2, a capacitor is connected in series with the antenna in order to reduce the impedance due to the inductance of the loop antenna. In some cases, a resistor is intentionally connected in order to decrease a quality factor of the antenna.
For example, it is assumed that the desired actual amplitude ratio r0 and phase difference θ0 are values of the following equation (12).
[Math. 12]
r0=1,θ0=11 deg (12)
In addition, it is assumed that the signal frequency f of the signal source 3 and the inductance L2, the capacitors C1 and C2, and the resistors R1 and R2 of the antenna 2 have values of the following equation (13).
[Math. 13]
f=1 MHz=, L1=L2=10 μH, C1=C2=2800 pF, R1=R2=10Ω (13)
The equations (12) and (13) are substituted into the equations (10) and (11) to calculate appropriate parameters, and thus the following values Cvopt and Rvopt can be obtained.
[Math. 14]
Cvopt=2363.68 pF, Rvopt=141.645Ω (14)
According to
Next, an example where the amplitude ratio r0 is a value other than 1 (r0≠1) in the antenna circuit in
For example, it is assumed that the currents I1 and I2 satisfying the following equation (15) flow through the antennas 1 and 2.
[Math. 15]
r0=1.3,θ0=11 deg (15)
Note that, it is assumed that the signal frequency f of the signal source 3 and the inductance L2, the capacitors C1 and C2, and the resistors R1 and R2 of the antenna 2 have the values of the equation (13).
The equations (12) and (13) are substituted into the equations (10) and (11) to calculate appropriate parameters, and thus the following values Cvopt and Rvopt can be obtained.
[Math. 16]
Cvopt=967.844 pF, Rvopt=31.9953Ω (16)
According to
As described above, in the antenna circuit in
As described above, according to this embodiment, in the antenna circuit including the antenna 1 and the antenna 2 that is connected in series with the antenna 1 and has inductance, the variable capacitor Cv and the variable resistor Rv connected in parallel with the antenna 2 are provided, and this enables controlling of the actual amplitude ratio r and the phase difference θ between the currents I1 and I2 flowing through the two antennas 1 and 2 into desired values. Flows of the currents I1 and I2 with the phase difference θ through the antennas 1 and 2 enables forming of a favorable communication area. In addition, setting of the actual amplitude ratio r between the currents I1 and I2 flowing through the antennas 1 and 2 to a value other than 1 enables forming of an asymmetric communication area.
Number | Date | Country | Kind |
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2017-119519 | Jun 2017 | JP | national |
Filing Document | Filing Date | Country | Kind |
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PCT/JP2018/021558 | 6/5/2018 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2018/235592 | 12/27/2018 | WO | A |
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