This application claims priority to and the benefit of Japanese Patent Application No. 2015-106461 (filed on May 26, 2015), the entire contents of which are incorporated herein by reference.
This disclosure relates to a tunable antenna.
In recent years, the frequency band that an antenna needs to cover has expanded as a result of faster, higher-capacity radio communication, in particular on mobile terminals and the like. Therefore, in order to implement an antenna that supports numerous frequency bands, a tunable antenna that can switch the resonance frequency has been developed by providing electronic components, such as switches and tunable capacitors, inside a matching circuit connected between the antenna element and the feed.
Tunable antennas that vary the actual antenna element length by providing electronic components such as switches and tunable capacitors in the antenna element have also been proposed. With such a tunable antenna, by changing the reactance component of the antenna element, the resonance frequency can be switched dynamically as compared to a structure in which electronic components are disposed inside the matching circuit.
A tunable antenna according to this disclosure includes:
an antenna element including a feed point at one end thereof, a feed line being connected to the feed point; and
a switcher configured to switch a resonance frequency of the antenna element;
such that the switcher is connected to the antenna element at a position that is at a distance other than (λm/4)×n from the one end towards another end of the antenna element, where λm represents a wavelength corresponding to any resonance frequency of the antenna element, and n is a positive, odd number.
A tunable antenna according to this disclosure includes:
an antenna element including a feed point at one end thereof, a feed line being connected to the feed point;
a switcher configured to switch a resonance frequency of the antenna element; and
a phase rotator connected between the antenna element and the switcher and configured to shift a phase of voltage applied to the switcher.
A tunable antenna according to this disclosure includes:
an antenna element including a feed point at one end thereof, a feed line being connected to the feed point;
a switcher configured to switch a resonance frequency of the antenna element; and
a frequency selector connected between the antenna element and the switcher and configured to allow passage of a signal at a predetermined frequency.
A tunable antenna according to this disclosure includes:
an antenna element including a feed point at one end thereof, a feed line being connected to the feed point;
a switcher configured to switch a resonance frequency of the antenna element; and
an impedance adjustor connected between the antenna element and the switcher and configured to lower an input impedance of the switcher.
In the accompanying drawings:
With reference to the drawings, the following describes embodiments of this disclosure in detail.
Since a standing wave occurs in an antenna element, there exist locations where the voltage is maximized and minimized. Accordingly, in a tunable antenna in which the antenna element length is made variable by providing electronic components in the antenna element, a high voltage might be applied to the electronic components if the electronic components are disposed at a position where the voltage is high.
Therefore, as a tunable antenna in which the antenna element length is made variable by providing electronic components in the antenna element, it would be helpful to provide a tunable antenna that allows a reduction in application of high voltage to the electronic components.
The feed 1 feeds a signal for generating a radio wave of a predetermined frequency to the matching circuit 2. The feeding method of the feed 1 is current feeding, configured so that the current is maximized and the voltage is minimized at the feed point O.
The matching circuit 2 adjusts the impedance so as to reduce the energy loss between the feed 1 and the antenna element 3. By adjusting the impedance of the matching circuit 2, the frequency (resonance frequency or matching frequency) of the radio wave transmitted and received via the antenna element 3 can be adjusted to some degree. The matching circuit 2 is, for example, mounted on a printed board such as a Printed Circuit Board (PCB) or a Flexible Printed Circuit (FPC) and is connected to the antenna element 3.
The antenna element 3 is, for example, a monopole antenna that includes the feed point O where the feed line is connected near one end T1 of the antenna element 3. The antenna element 3 may be configured with sheet metal or may be an element printed on a case. The length L1 from one end T1 to the other end T2 of the antenna element 3 is equivalent to a positive, odd multiple of one fourth the length (λ1/4) of the fundamental wavelength λ1 corresponding to a certain fundamental frequency f1.
The switcher 4 is an electronic component for switching the resonance frequency by switching the reactance component of the antenna element 3 and is configured with a switch, a variable element such as a tunable capacitor, or a combination thereof. The switcher 4 is connected at a position that is a distance L2 from one end T1 of the antenna element 3 towards the other end T2.
Details on the distance L2 are provided below. The resonance frequency is assumed to be switched for example among the 700 MHz band, 800 MHz band, and 900 MHz band in the Low Band but may also be switched to the 2 GHz band in the Mid Band, the 2.5 GHz band in the High Band, and the like. The switcher 4 is, for example, mounted on a printed board such as a PCB or FPC and is connected to the antenna element 3.
Maximum voltage occurs at locations where the voltage distribution on the antenna element 3 is the antinode of a standing wave. Therefore, in this embodiment, the switcher 4 is connected at a position other than the antinodes of the voltage distribution on the antenna element 3. In other words, the distance L2 from one end T1 of the antenna element 3 towards the other end T2, i.e. the position where the switcher 4 is connected, is a value other than (λ1/4)×n. The voltage on the antenna element 3 can take the form of a standing wave with an antinode when the distance from one end T1 towards the other end T2 is (λ2/4)×n or (λ3/4)×n, where the resonance frequencies that can be switched to by the switcher 4 are f2 and f3 and the corresponding wavelengths are λ2 and λ3. Accordingly, the distance L2 is a value other than (λm/4)×n (where m is 1, 2, or 3). The resonance frequencies that can be switched to by the switcher 4 are not limited to two types. The number of types may be one, or may be three or more.
The distance L2 is preferably less than λmin/4, where λmin represents the smallest wavelength among the wavelengths corresponding to all of the resonance frequencies of the antenna element 3. In this way, degradation in characteristics or destruction of the electronic components constituting the switcher 4 can more reliably be prevented at all of the desired frequencies.
When it is difficult to connect the switcher 4 at the desired position due to a mechanistic limitation or the like, a ground mechanism 5 may be connected to the other end T2, as illustrated in
When L1=λmax/4, where the largest wavelength among the wavelengths λ1, λ2, and λ3 is λmax, the ground mechanism 5 is preferably disposed at a position that is λmax/8 or less and less than λmin/4 from one end T1 of the antenna element 3 towards the other end T2.
In this way, in the tunable antenna 100 according to this embodiment, the switcher 4 is connected to the antenna element 3 at a position that is at a distance other than (λm/4)×n (where λm represents the wavelength corresponding to any resonance frequency of the antenna element 3, and n is a positive, odd number) from one end T1 of the antenna element 3 towards the other end T2. In this way, a high voltage can be prevented from being applied to the switcher 4, thereby preventing degradation in characteristics or destruction of the electronic components constituting the switcher 4. Accordingly, a compact, high-performance tunable antenna 100 can be obtained.
For example as illustrated in
As illustrated in
In this way, according to this embodiment, the tunable antenna 200 includes the phase rotator 6 between the antenna element 3 and the switcher 4, so that even if the switcher 4 is connected at a position on the antenna element 3 at which an antinode of a standing wave occurs in the voltage distribution, the phase of voltage is shifted by the addition of a path due to the phase rotator 6 connected therebetween. Therefore, a high voltage can be prevented from being applied to the switcher 4, thereby preventing degradation in characteristics or destruction of the electronic components constituting the switcher 4. Accordingly, a compact, high-performance tunable antenna 200 can be obtained.
The frequency selector 8 has the function of allowing passage of a signal in a predetermined frequency band while blocking signals in other frequency bands. In this way, a high voltage can be prevented from being applied to the switcher 4 in an undesired frequency band. As illustrated in
As illustrated in
The frequency selector 8 can also be used to achieve the function of a phase rotator. In other words, the phase of voltage can be shifted by the path that is added on as a result of including the frequency selector 8. As a result, application of a high voltage to the switcher 4 can be prevented.
In this way, according to this embodiment, the tunable antenna 300 includes the frequency selector 8 between the antenna element 3 and the switcher 4, thereby allowing passage of a signal in a desired frequency band while blocking signals in other frequency bands. Therefore, a high voltage can be prevented from being applied to the switcher 4 in an undesired frequency band, thereby preventing degradation in characteristics or destruction of the electronic components constituting the switcher 4. Accordingly, a compact, high-performance tunable antenna 300 can be obtained.
The impedance adjuster 9 is for adjusting the input impedance of the switcher 4 and may, for example, be formed by matching elements connected as illustrated in
The voltage V applied to the switcher 4 satisfies the following equation, where R is impedance and P is power.
V2=2RP Equation 1
As can be understood from Equation 1, the applied voltage is proportional to the square root of the impedance. Accordingly, by connecting the impedance adjuster 9 between the antenna element 3 and the switcher 4 and performing adjustment to lower the input impedance of the switcher 4, the voltage applied to the switcher 4 can be lowered.
In this way, according to this embodiment, the tunable antenna 400 includes the impedance adjuster 9 between the antenna element 3 and the switcher 4, thereby allowing reduction in the input impedance of the switcher 4. Therefore, a high voltage can be prevented from being applied to the switcher 4, thereby preventing degradation in characteristics or destruction of the electronic components constituting the switcher 4. Accordingly, a compact, high-performance tunable antenna 400 can be obtained.
In the disclosed tunable antenna in which the antenna element length is made variable by providing electronic components in the antenna element, the application of high voltage to the electronic components can be reduced.
The structures of the tunable antennas in some embodiments may be combined. For example, the designated connection position of the switcher 4 in Embodiment 1, the phase rotator 6 in Embodiment 2, the frequency selector 8 in Embodiment 3, and the impedance adjuster 9 in Embodiment 4 may be appropriately combined.
Although this disclosure is based on embodiments and the accompanying drawings, it is to be noted that various changes and modifications will be apparent to those skilled in the art based on this disclosure. Therefore, such changes and modifications are to be understood as included within the scope of this disclosure. For example, the functions and the like included in the various structural components may be reordered in any logically consistent way. Furthermore, structural components may be combined into one or divided.
Number | Date | Country | Kind |
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2015-106461 | May 2015 | JP | national |