The present invention relates to a tunable (frequency-variable) filter and a tunable duplexer, both for mobile communication terminals, and a mobile communication terminal using them.
New mobile communications technologies currently being considered for use on mobile phones include WCDMA, which is already in service, and LTE. WCDMA and LTE allow simultaneous transmission and reception and therefore use different frequency bands for transmission and reception. These communication systems use a duplexer that separates the transmission band and the reception band.
The WCDMA and the LTE systems each have a plurality of frequency bands and, to produce desired high-frequency characteristics, use a duplexer for each frequency band in a mobile communication terminal front end. Further the LTE system requires the same number of reception circuits as the antennas since it employs a MIMO (Multiple Input Multiple Output) technology to realize high-speed communication. So, as the communication grows in speed in future, the scale of the reception circuit is expected to become large, calling for a new technology to render the duplexers tunable. Patent Literature 1 (JP-A-2011-120120) describes a tunable filter technology to switch the duplexer into a tunable state and a canceler technology to cancel leakage components of a transmitted signal found in a received signal output from the tunable filter and thermal noise leakage components in the reception band. So, although the amount by which out-of-band signals are suppressed by the tunable filter is about 20 dB smaller than that suppressed by a conventional untunable duplexer or a frequency-fixed duplexer, the tunable filter, when used in combination with the canceler technology, can be put into practical use.
With the conventional tunable filters, a high-frequency filter has been formed, as described in Patent Literature 2 (JP-A-2010-45478), by connecting three meander line inductors formed on a dielectric substrate, five transmission lines approximately λ/4 long and three varactors with their one end grounded to make the capacitance of the varactors variable.
The technology described in the Patent Literature 2 has a drawback that the filter becomes large in size because a number of meander line inductors and λ/4-long transmission lines are formed on a dielectric substrate. This problem becomes conspicuous especially when a tunable filter is constructed in low frequency ranges because the meander line inductors and the λ/4-long transmission lines become long.
In the WCDMA and LTE systems, specifications on Band1-Band17 have already been defined and the number of bands tends to further increase in future. For mobile communication terminals capable of handling these multiple bands, an effective solution involves making the duplexer tunable to reduce the size of their front end portion and also minimizing the size of the tunable filter.
It is an object of this invention to provide a mobile communication terminal that performs transmission and reception operations simultaneously by using different frequency bands for transmission and reception and which is small in size and highly reliable and can handle a plurality of frequency bands.
To make improvements on the aforementioned problem, a tunable filter is used which comprises: an input terminal; an output terminal; a first series-connected LC circuit composed of a first variable capacitor and a first fixed coil; a second series-connected LC circuit composed of a second variable capacitor and a second fixed coil; a third series-connected LC circuit composed of a third variable capacitor and a third fixed coil; a first fixed capacitor with one of its ends connected to the input terminal and the other end connected to a connecting point of the first variable capacitor and the first fixed coil; a second fixed capacitor with one of its ends connected to the output terminal and the other end connected to a connecting point of the second variable capacitor and the second fixed coil; a third fixed capacitor with one of its ends connected to the connecting point of the first variable capacitor and the first fixed coil and the other end connected to a connecting point of the third variable capacitor and the third fixed coil; and a fourth fixed capacitor with one of its ends connected to the connecting point of the second variable capacitor and the second fixed coil and the other end connected to the connecting point of the third variable capacitor and the third fixed coil; wherein the frequencies of a passband and a stopband of the tunable filter are made variable by changing capacitance values of the variable capacitors.
With this invention, a mobile communication terminal can be provided which is small and highly reliable and can handle a plurality of frequency bands.
Other objects, features and advantages of the invention will become apparent from the following description of the embodiments of the invention taken in conjunction with the accompanying drawings.
Embodiments of this invention will be described as follows.
The tunable filter has a first fixed capacitor 3H connected between an input terminal 1H and a connecting point of a first pair of a variable capacitor 10H and a fixed coil 7H; a second fixed capacitor 4H connected between the connecting point of the first pair of the variable capacitor 10H and the fixed coil 7H and a connecting point of a second pair of a variable capacitor 11H and a fixed coil 8H and; a third fixed capacitor 5H connected between the connecting point of the second pair of the variable capacitor 11H and the fixed coil 8H and a connecting point of a third pair of a variable capacitor 12H and a fixed coil 9H; and a fourth fixed capacitor 6H connected between the connecting point of the third pair of the variable capacitor 12H and the fixed coil 9H and an output terminal 2H, with one end of the variable capacitors 10H, 11H, 12H, whose opposite end is connected to the fixed coils 7H, 8H, 9H, grounded and with one end of the fixed coils 7H, 8H, 9H, whose opposite end is connected to the variable capacitors 10H, 11H, 12H, connected together.
This tunable filter is characterized in that the frequency of a passband that is formed by a resonant circuit composed of the fixed capacitors 3H, 6H, the fixed coils 7H, 9H and the variable capacitors 10H, 12H and the frequency of a stopband (notch) that is formed by a resonant circuit composed of the fixed coil 8H and the variable capacitor 11H are made variable by changing the capacitance values of the variable capacitors 10H, 11H, 12H.
Here, the fixed coils 7H, 8H, 9H have constants of about 4.3 nH, 4.1 nH and 4.3 nH, respectively, and use solenoid coils with Q values of about 90 at the operation frequencies. The fixed capacitors 3H, 4H, 5H, 6H have constants of about 0.41 pF, 0.01 pF, 0.01 pF and 0.41 pF, respectively. Since the fixed capacitors 4H and 5H have very small values of capacitance, they can be provided, respectively, by a stray capacitance formed between lands mounting the fixed coil 7H and the fixed coil 8H and by a stray capacitance formed between lands mounting the fixed coil 8H and the fixed coil 9H. In practical use, this allows for a size reduction of the device by not actually mounting these fixed capacitors. The fixed capacitors 3H, 6H are constructed of a chip capacitor. As for constants of the variable capacitors, the variable capacitors 10H, 12H are in a range of between about 0.8 pF and 1.35 pF and the variable capacitor 11H in a range of between about 1.53 pF and 2.07 pF, allowing the filter characteristic to be variable from the highest frequency channel in the Band1 reception band to the lowest frequency channel in the Band3 reception band. That is, the constant of this tunable filter is distributed symmetric between the input terminal 1H side and the output terminal 2H side with respect to the second pair of the variable capacitor 11H and the fixed coil 8H located at the center. The variable capacitors 10H, 11H, 12H are constructed of MEMS variable capacitors.
From
A first fixed capacitor 3L is connected between the input terminal 1L and a connecting point of a first pair of a variable capacitor 10L and a fixed coil 7L; a second fixed capacitor 4L is connected between the connecting point of the first pair of the variable capacitor 10L and the fixed coil 7L and a connecting point of a second pair of a variable capacitor 11L and a fixed coil 8L; a third fixed capacitor 5L is connected between the connecting point of the second pair of the variable capacitor 11L and the fixed coil 8L and a connecting point of a third pair of a variable capacitor 12L and a fixed coil 9L; and a fourth fixed capacitor 6L is connected between the connecting point of the third pair of the variable capacitor 12L and the fixed coil 9L, with one end of the variable capacitors 10L, 11L, 12L, the opposite end of which is connected to the fixed coils 7L, 8L, 9L, grounded and with one end of the fixed coils 7L, 8L, 9L, opposite end of which is connected to the variable capacitors 10L, 11L, 12L, connected together.
Similar to the operating principle explained in the first embodiment, the tunable filter is characterized in that its applied band frequency can be varied by changing the capacitance values of the variable capacitors 10L, 11L, 12L.
Here, the fixed coils 7L, 8L, 9L have constants of about 11.5 nH, 7.9 nH and 11.5 nH, respectively, and use solenoid coils with Q values of about 90 for the operation frequencies. The fixed capacitors 3L, 4L, 5L, 6L have constants of about 0.83 pF, 0.15 pF, 0.15 pF and 0.83 pF, respectively. Since the fixed capacitors 4L and 5L have very small values of capacitance, they can be provided, respectively, by a stray capacitance formed between lands mounting the fixed coil 7L and the fixed coil 8L and by a stray capacitance formed between lands mounting the fixed coil 8L and the fixed coil 9L. In practical use, this allows for a size reduction of the device by not actually mounting these fixed capacitors. The fixed capacitors 3L, 6L are constructed of a chip capacitor. As for constants of the variable capacitors, the variable capacitors 10L, 12L are in a range of between about 1.20 pF and 3.02 pF and the variable capacitor 11L in a range of between about 3.12 pF and 5.77 pF, allowing the filter characteristic to be variable from the highest frequency channel in the Band8 reception band to the lowest frequency channel in the Band17 reception band. That is, the constant of this tunable filter is symmetrically distributed between the input terminal 1L side and the output terminal 2L side with respect to the second pair of the variable capacitor 11L and the fixed coil 8L located at the center. The variable capacitors 10L, 11L, 12L are constructed of MEMS variable capacitors.
From
A first fixed capacitor 3HR is connected between the antenna 22H and a connecting point of a first pair of a variable capacitor 10HR and a fixed coil 7HR; a second fixed capacitor 4HR is connected between the connecting point of the first pair of the variable capacitor 10HR and the fixed coil 7HR and a connecting point of a second pair of a variable capacitor 11HR and a fixed coil 8HR; a third fixed capacitor 5HR is connected between the connecting point of the second pair of the variable capacitor 11HR and the fixed coil 8HR and a connecting point of a third pair of a variable capacitor 12HR and a fixed coil 9HR; and a fourth fixed capacitor 6HR is connected between the connecting point of the third pair of the variable capacitor 12HR and the fixed coil 9HR and a receiving terminal 2HR, with one end of the variable capacitors 10HR, 11HR, 12HR, whose opposite end is connected to the fixed coils 7HR, 8HR, 9HR, grounded and with one end of the fixed coils 7HR, 8HR, 9HR, whose opposite end is connected to the variable capacitors 10HR, 11HR, 12HR, connected together. The receiving tunable filter 31 is characterized in that its applied band frequency can be varied by changing the capacitance values of the variable capacitors 10HR, 11HR, 12HR.
Here, the fixed coils 7HR, 8HR, 9HR have constants of about 4.3 nH, 4.1 nH and 4.3 nH, respectively, and use solenoid coils with Q values of about 90 at the operation frequencies. The fixed capacitors 3HR, 4HR, 5HR, 6HR have constants of about 0.41 pF, 0.01 pF, 0.01 pF and 0.41 pF, respectively. Since the fixed capacitors 4HR and 5HR have very small values of capacitance, they can be provided, respectively, by a stray capacitance formed between lands mounting the fixed coil 7HR and the fixed coil 8HR and by a stray capacitance between lands mounting the fixed coil 8HR and the fixed coil 9HR. In practical use, this allows for a size reduction of the device by not actually mounting these fixed capacitors. The fixed capacitors 3HR, 6HR are composed of a chip capacitor. As for constants of the variable capacitors, the variable capacitors 10HR, 12HR are in a range of between about 0.8 pF and 1.35 pF and the variable capacitor 11HR in a range of between about 1.53 pF and 2.07 pF, allowing the filter characteristic to be varied from the highest frequency channel in the Band1 reception band to the lowest frequency channel in the Band3 reception band. That is, this tunable filter has its constant distributed symmetrically between the antenna 22H side and the receiving terminal 2HR side with respect to the second pair of the variable capacitor 11HR and the fixed coil 8HR located at the center. The variable capacitors 10HR, 11HR, 12HR are constructed of MEMS variable capacitors.
Next, the configuration of the transmitting tunable filter 32 will be explained.
A first fixed capacitor 3HT is connected between the antenna 22H and a connecting point of a first pair of a variable capacitor 10HT and a fixed coil 7HT; a second fixed capacitor 4HT is connected between the connecting point of the first pair of the variable capacitor 10HT and the fixed coil 7HT and a connecting point of a second pair of a variable capacitor 11HT and a fixed coil 8HT; a third fixed capacitor 5HT is connected between the connecting point of the second pair of the variable capacitor 11HT and the fixed coil 8HT and a connecting point of a third pair of a variable capacitor 12HT and a fixed coil 9HT; and a fourth fixed capacitor 6HT is connected between the connecting point of the third pair of the variable capacitor 12HT and the fixed coil 9HT and a transmitting terminal 2HT, with one end of the variable capacitors 10Ht, 11HT, 12HT, whose opposite end is connected to the fixed coils 7HT, 8HT, 9HT, grounded and with one end of the fixed coils 7HT, 8HT, 9HT, whose opposite end is connected to the variable capacitors 10HT, 11HT, 12HT, connected together.
The transmitting tunable filter 32 is characterized in that its applied band frequency can be varied by changing the capacitance values of the variable capacitors 10HT, 11HT, 12HT.
Here, the fixed coils 7HT, 8HT, 9HT have constants of about 4.4 nH, 4.5 nH and 4.4 nH, respectively, and use solenoid coils with Q values of about 90 at the operation frequencies. The fixed capacitors 3HT, 4HT, 5HT, 6HT have constants of about 0.67 pF, 0.01 pF, 0.01 pF and 0.67 pF, respectively. Since the fixed capacitors 4HT and 5HT have very small capacitances, they can be provided, respectively, by a stray capacitance formed between lands mounting the fixed coil 7HT and the fixed coil 8HT and by a stray capacitance formed between lands mounting the fixed coil 8HT and the fixed coil 9HT. In practical use, this allows the device to be reduced in size by not actually mounting these fixed capacitors. The fixed capacitors 3HT, 6HT are constructed of a chip capacitor. As for constants of the variable capacitors, the variable capacitors 10HT, 12HT are in a range of between about 0.95 pF and 1.50 pF and the variable capacitor 11HT in a range of between about 1.16 pF and 1.7 pF, allowing the filter characteristic to be varied from the highest frequency channel in the Band1 transmission band to the lowest frequency channel in the Band3 transmission band. That is, this tunable filter has its constant distributed symmetrically between the antenna 22H side and the transmitting terminal 2HT side with respect to the second pair of the variable capacitor 11HT and the fixed coil 8HT located at the center. The variable capacitors 10HT, 11HT, 12HT are constructed of MEMS variable capacitors.
As shown in
A first fixed capacitor 3LR is connected between the antenna 22L and a connecting point of a first pair of a variable capacitor 10LR and a fixed coil 7LR; a second fixed capacitor 4LR is connected between the connecting point of the first pair of the variable capacitor 10LR and the fixed coil 7LR and a connecting point of a second pair of a variable capacitor 11LR and a fixed coil 8LR; a third fixed capacitor SLR is connected between the connecting point of the second pair of the variable capacitor 11LR and the fixed coil 8LR and a connecting point of a third pair of a variable capacitor 12LR and a fixed coil 9LR; and a fourth fixed capacitor 6LR is connected between the connecting point of the third pair of the variable capacitor 12LR and the fixed coil 9LR and a receiving terminal 2LR, with one end of the variable capacitors 10LR, 11LR, 12LR, whose opposite end is connected to the fixed coils 7LR, 8LR, 9LR, grounded and with one end of the fixed coils 7LR, 8LR, 9LR, whose opposite end is connected to the variable capacitors 10LR, 11LR, 12LR, connected together. The receiving tunable filter 33 is characterized in that its applied band frequency can be varied by changing the capacitance values of the variable capacitors 10LR, 11LR, 12LR.
Here, the fixed coils 7LR, 8LR, 9LR have constants of about 11.5 nH, 7.92 nH and 11.5 nH, respectively, and use solenoid coils with Q values of about 90 at the operation frequencies. The fixed capacitors 3LR, 4LR, 6LR, 6LR have constants of about 0.83 pF, 0.15 pF, 0.15 pF and 0.83 pF, respectively. Since the fixed capacitors 4LR and 5LR have very small capacitances, they can be provided, respectively, by a stray capacitance formed between lands mounting the fixed coil 7LR and the fixed coil 8LR and by a stray capacitance formed between lands mounting the fixed coil 8LR and the fixed coil 9LR. In practical use, this allows the device to be reduced in size by not actually mounting these fixed capacitors. The fixed capacitors 3LR, 6LR are constructed of a chip capacitor. As for constants of the variable capacitors, the variable capacitors 10LR, 12LR are in a range of between about 1.2 pF and 3.02 pF and the variable capacitor 11LR in a range of between about 3.15 pF and 5.8 pF, allowing the filter characteristic to be varied from the highest frequency channel in the Band8 reception band to the lowest frequency channel in the Band17 reception band. That is, this tunable filter has its constant distributed symmetrically between the antenna 22L side and the receiving terminal 2LR side with respect to the second pair of the variable capacitor 11LR and the fixed coil 8LR located at the center. The variable capacitors 10LR, 11LR, 12LR are constructed of MEMS variable capacitors.
Next, the configuration of the transmitting tunable filter 34 will be explained.
A first fixed capacitor 3LT is connected between the antenna 22L and a connecting point of a first pair of a variable capacitor 10LT and a fixed coil 7LT; a second fixed capacitor 4LT is connected between the connecting point of the first pair of the variable capacitor 10LT and the fixed coil 7LT and a connecting point of a second pair of a variable capacitor 11LT and a fixed coil 8LT; a third fixed capacitor 5LT is connected between the connecting point of the second pair of the variable capacitor 11LT and the fixed coil 8LT and a connecting point of a third pair of a variable capacitor 12LT and fixed coil 9LT; and a fourth fixed capacitor 6LT is connected between the connecting point of the third pair of the variable capacitor 12LT and the fixed coil 9LT and a transmitting terminal 2LT, with one end of the variable capacitors 10LT, 11LT, 12LT, whose opposite end is connected to the fixed coils 7LT, 8LT, 9LT, grounded and with one end of the fixed coils 7LT, 8LT, 9LT, whose opposite end is connected to the variable capacitors 10LT, 11LT, 12LT, connected together.
The transmitting tunable filter 34 is characterized in that its applied band frequency can be varied by changing the capacitance values of the variable capacitors 10LT, 11LT, 12LT.
Here, fixed coils 7LT, 8LT, 9LT have constants of about 14.5 nH, 7.5 nH and 14.5 nH, respectively, and use solenoid coils with Q values of about 90 at the operation frequencies. The fixed capacitors 3LT, 4LT, 5LT, 6LT have constants of about 1.32 pF, 0.3 pF, 0.3 pF and 1.32 pF, respectively. Since the fixed capacitors 4LT and 5LT have very small capacitances, they can be provided, respectively, by a stray capacitance formed between lands mounting the fixed coil 7LT and the fixed coil 8LT and by a stray capacitance formed between lands mounting the fixed coil 8LT and the fixed coil 9LT. In practical use, this allows the device to be reduced in size by not actually mounting these fixed capacitors. The fixed capacitors 3LT, 6LT are constructed of a chip capacitor. As for constants of the variable capacitors, the variable capacitors 10LT, 12LT are in a range of between about 0.88 pF and 2.30 pF and the variable capacitor 11LT in a range of between about 2.11 pF and 4.55 pF, allowing the filter characteristic to be varied from the highest frequency channel in the Band8 transmission band to the lowest frequency channel in the Band17 transmission band. That is, this tunable filter has its constant distributed symmetrically between the antenna 22L side and the transmitting terminal 2LT side with respect to the second pair of the variable capacitor 11LT and the fixed coil 8LT located at the center. The variable capacitors 10LT, 11LT, 12LT are constructed of MEMS variable capacitors.
While, in all of the foregoing embodiments, solenoid coils are used as stationary coils, if their Q value is about 60 or higher at the operation frequency, other means may be used, such as IPD (Integrated Passive Device) coils in which solenoid coils are formed on a silicon substrate, or chip-laminated coils. Further, although in this embodiment chip capacitors are used as the fixed capacitors, it is also possible to use other means, such as IPD capacitors and MEMS capacitors, or coils formed as inner layer patterns in laminated substrates. Furthermore, although this embodiment uses MEMS variable capacitors as the variable capacitors, other means such as varicap may also be used. The constants shown in this embodiment are just one example and it is noted that desired tunable filters can be formed by using other constants than those described above, as needed, to be able to deal with other bands than Band1 and Band 11. Further, while bands used for WCDMA and LTE have been taken for example, adjusting the applied frequencies by changing the constants appropriately can make the device applicable to 4G (fourth generation mobile communication system).
Main communication is done by transferring signals through the tunable duplexer module and, for improved reception quality, uses tunable filter module as the diversity receiver circuit. The high-band receiving terminal 2HR and transmitting terminal 2HT are connected to a high-band jamming wave and distortion canceler block 35 and the low-band receiving terminal 2LR and transmitting terminal 2LT are connected to a low-band jamming wave and distortion canceler block 36. The high-band and low-band received signals and transmitting signals are each connected through LNA and PA to RF-IC and BB (Base Band) blocks that perform subsequent steps of signal processing. The high-band receiving terminal 2H of the tunable filter module is connected to a high-band jamming wave and distortion canceler block 37 and the low-band receiving terminal 2L is connected to a low-band jamming wave and distortion canceler block 38. The high-band and low-band received signals in the tunable filter module are connected through LNA to RF-IC and BB blocks that perform subsequent steps of signal processing.
The mobile communication terminal of this configuration can handle multiple bands, such as shown in “Example of frequency bands available to tunable duplexer” of
Number | Date | Country | Kind |
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JP 2010-248047 | Nov 2010 | JP | national |