This application is based upon and claims the benefit of priority from Japanese Patent Application No. 2014-182375, filed on Sep. 8, 2014; the entire contents of which are incorporated herein by reference.
Embodiments described herein relate generally to a multiband filter.
In the recent wireless communication, carrier aggregation communication has attracted attention, communicating using a plurality of frequency bands. For correspondence to the communication system, a multiband filter having a plurality of passbands is desired. However, the multiband filter corresponding to the plurality of frequency bands is multiplexed by connecting in parallel a plurality of filters having different frequency bands while reducing coupling between the respective filters, and thus a size of filter has increased.
According to one embodiment, a multiband filter includes a first resonator and a second resonator. The first resonator has a first capacitive component and a first inductive component. A signal of a first frequency is inputted to the first resonator. The second resonator has a second capacitive component and a second inductive component. A signal of a second frequency is inputted to the second resonator. The second frequency is different from the first frequency. A distance between a first capacitive component of the first resonator and a second capacitive component of the second resonator and a distance between a first inductive component of the first resonator and a second inductive component of the second resonator is longer than a shortest distance out of a distance between the first resonator and the second resonator. The first capacitive component occurs at the first capacitance. The second capacitive component occurs at the second capacitance. The first inductive component occurs at the first inductance. The second inductive component occurs at the second inductance.
Various embodiments will be described hereinafter with reference to the accompanying drawings.
A first embodiment will be described.
First, the configuration of a multiband filter according to the embodiment will be described.
As shown in
Hereinafter, in the specification, an XYZ orthogonal coordinate system is adopted for convenience of description. That is, in
The transmission line conductor unit 113 is formed of a division multiplexing unit 117, a first filter unit 161, a second filter unit 181 and a division multiplexing unit 147. The first filter unit 161 is formed of first resonators 120 and first resonators 125. The second filter unit 181 is formed of second resonators 130 and second resonators 135.
An input/output portion 114 of the division multiplexing unit 117 is disposed at an end on the dielectric substrate 12 in the −X-direction, a branch 115 of the division multiplexing unit 117 is disposed near a both ends open portion 118 of the first resonator 120, and a branch 116 of the division multiplexing unit 117 is disposed near a both ends open portion 128 of the second resonator 130. An input/output portion 144 of the division multiplexing unit 147 is disposed at another end on the dielectric substrate 12, a branch 145 of the division multiplexing unit 147 is disposed near a both ends open portion 123 of the first resonator 125, and a branch 146 of the division multiplexing unit 147 is disposed near a both ends open portion 133 of the second resonator 135.
In the division multiplexing unit 117, the input/output portion 114 in an interconnect configuration extends in the X-direction from an end edge of the dielectric substrate 12 in the −X-direction, branches into the branches 115 and 116 at an end of the input/output portion 114 in the X-direction, and the branches 115 and 116 are disposed distantly in the Y-direction. The branch 115 is extracted from one end of the input/output portion 114, is inflected beyond to extend in the X-direction, and is inflected again beyond to extend in the Y-direction and is terminated. The branch 116 is extracted in the −Y-direction from the end of the input/output portion 114 where the branch 115 is extracted, is inflected beyond to extend in the X-direction, and is inflected again beyond to extend in the Y-direction and is terminated. A termination of the branch 115 and a termination of the branch 116 extend in the same direction, however the lengths are different, and the termination of the branch 116 is longer than the termination of the branch 115.
A configuration of the first resonators 120 is frame-shaped being lack of a center of one side, generally C-shaped. The lack portion is the both ends open portion 118, and the portion opposing the both ends open portion 118 is a line center 119. The respective first resonators 120 are disposed so that the both ends open portion 118 faces the −Y-direction, namely, the division multiplexing unit 117 side.
A configuration of the first resonators 125 forms a mirror image of the first resonators 120 about a YZ-plane. A configuration of the division multiplexing unit 147 forms a mirror image of the division multiplexing unit 117 about the YZ-plane.
A configuration of the second resonators 130 is generally C-shaped similar to the first resonators 120. The lack portion is the both ends open portion 128, and the portion opposing the both ends open portion 128 is a line center 129. The line center 129 of the second resonator 130 is shorter than the line center 119 of the first resonator 120. The respective first resonators 130 are disposed so that the both ends open portion 128 faces the division multiplexing unit 117 side. A configuration of the second resonators 135 forms a mirror image of the second resonators 130 about the YZ-plane.
The division multiplexing unit 117 is disposed on the end of the dielectric substrate 12 in the −X-direction. The end of the division multiplexing unit 117 in the −X-direction reaches the end edge of the dielectric substrate 12 in the −Y-direction. On the other hand, the division multiplexing unit 147 is disposed on the end of the dielectric substrate 12 in the Y-direction. The end of the division multiplexing unit 147 reaches an end edge of the dielectric substrate 12 in the X-direction. The first filter unit 161 and the second filter unit 181 are disposed between the division multiplexing unit 117 and the division multiplexing unit 147 in parallel, and mutually isolated in the Y-direction. The second filter unit 181 is disposed in the −Y-direction viewed from the first filter unit 161.
In the first filter unit 161, for example, three first resonators 120 are disposed in a portion in the −X-direction and three first resonators 125 are disposed in a portion in the X-direction. These six first resonators in total 120 and 125 are arranged in a line along the X-direction. On the other hand, in the second filter unit 181, for example, three second resonators 130 are disposed in the portion in the −X-direction and three second resonators 135 are disposed in the portion in the X-direction. These six second resonators in total 130 and 135 are arranged in a line along the X-direction. The division multiplexing unit 117, the division multiplexing unit 147, the first resonators 120, the first resonators 125, the second resonators 130 and the second resonators 135 are mutually isolated.
The first filter unit 161 is a filter for a first passband from a frequency (fc1−df1/2) to (fc1+df1/2). A center frequency in the first passband is taken as fc1, and a first bandwidth is taken as df1.
As described above, the first resonators 120 and the first resonators 125 have a configuration of one inflected microstrip line resonator and have the open end. An electrical length of the microstrip line resonator is a length of an integral multiple of a half of a corresponding wavelength in a range from the frequency (fc1−df1/2) to (fc1+df1/2).
The second filter unit 181 is a filter for another second passband from the frequency (fc2−df2/2) to (fc2+df2/2) different from the first passband. A center frequency in the second passband is taken as fc2, and a second bandwidth is taken as df2.
The second resonators 130 and the second resonators 135 have a configuration of one inflected microstrip line resonator similar to the first resonators and have the open end. An electrical length of the microstrip line resonator is a length of an integral multiple of a half of a corresponding wavelength in a range from the frequency (fc2−df2/2) to (fc2+df2/2).
Materials of the dielectric substrate 12 may include various suitable materials, for example, such as magnesium oxide, sapphire(Al2O3), or lanthanum aluminate or the like. The transmission line conductor unit 113 can be formed of a conductive material. The conductive material may be a material including, for example, a metal such as copper or gold, a superconductor such as niobium or niobium-tin, or a Y-based copper oxide high temperature superconductor. The superconductor is used as the conductive material of the transmission line conductor unit 113, and thereby passing loss of a circuit in a superconducting state can be largely decreased.
For example, a copper oxide high temperature superconducting film having a thickness of about 500 nm and a line width of about 0.4 mm is formed on the dielectric substrate 12 made of magnesium oxide having a thickness of about 0.5 mm and a specific permittivity of about 9.6, and this film may be the microstrip line resonator as well. For forming the Y-based copper oxide high temperature superconducting film, a laser deposition method, a sputtering method or a co-deposition method or the like may be used.
Next, an operation of a multiband filter 1 according to the embodiment will be described.
As shown in
The first filter unit 261 consists of first resonators 220 with the resonant frequency f1 of the first passband. The first resonator 220 of first-order from the left in
The division multiplexing unit 217 consists of an input/output portion 214 connected to an external circuit 210 having an external load Z0, the branch 215 coupled with the first filter unit 261, and a branch 216 coupled with the second filter unit 281. The branch 215 has a line length having a phase shifted by θl at a wavelength corresponding to the load Z0 and a resonant frequency fl of the first passband. The branch 216 has a line length having a phase shifted by θh at a wavelength corresponding to the load Z0 and a resonant frequency fh of the second passband.
The second filter unit 281 consists of second resonators 230 with a resonant frequency fh of the second passband. The second resonator 230 of first-order from the left in
The division multiplexing unit 247 consists of an input/output portion 244 connected to an external circuit 290 having an external load Z0, the branch 245 coupled with the first filter unit 261, and the branch 246 coupled with the second filter unit 281. The branch 245 has a line length having a phase shifted by θl at a wavelength corresponding to the load Z0 and a resonant frequency fl of the first passband. The branch 246 has a line length having a phase shifted by θh at a wavelength corresponding to the load Z0 and a resonant frequency fh of the second passband.
The first filter unit 261 shown in
As shown in
|k|=|ke−km| (1)
Next, the effect of the embodiment will be described.
The first resonator 220 shown in
As shown in
In the case of this disposition, the capacitive coupling occurs between the both ends open portion 218 and the both ends open portion 228. The inductive coupling occurs between the line center 219 and the line center 229. There is no large difference between a distance from the both ends open portion 218 to the both ends open portion 228 and a distance from the line center 219 to the line center 229. Therefore, the coupling state is a mixed state of the capacitive coupling and the inductive coupling in the same degree.
As shown in
That is, as shown in
Then, in the multiband filter 1 according to the embodiment, the first resonator 220 and the second resonator 230 are disposed so that the coupling coefficient k is, for example, in a range of 10-3≧k, and thereby the coupling coefficient between both filter units can be reduced to improve the isolation characteristics outside the band.
Next, a first comparative example of the first embodiment will be described.
As shown in
Next, a second comparative example of the first embodiment will be described.
As shown in
In the multiband filter 1 according to the embodiment, for example, the configuration of one inflected microstrip line resonator is described as the first resonator 220 and the second resonator 230, however is not limited thereto. For example, a line structure may be a strip line and a co-planar line or the like. Various structures such as a hair-pin type, a concentrated constant type, a spiral type or the like may be adopted for a resonator structure.
Next, a second embodiment will be described.
As shown in
The first resonator 320 has the configuration of the first resonator 120 shown in
The configurations of coupling lines 351 are linear and extend in the X-direction. Ends of the coupling lines 351 in the Y-direction are disposed between portions of the adjacent first resonators 320 in the −Y-direction and between a division multiplexing unit 317 and a portion of the first resonator 320 disposed closest to the division multiplexing unit 317 in the −Y-direction. On the other hand, ends of the coupling lines 351 in the −Y-direction are disposed between portions of the adjacent first resonators 330 in the Y-direction and between a division multiplexing unit 317 and a portion of the first resonator 330 disposed closest to the division multiplexing unit 317 in the Y-direction.
The configuration other than the above in the embodiment is similar to the first embodiment described above.
Next, an operation and effect of the multiband filter 2 according to the embodiment will be described.
In the multiband filter 2 according to the embodiment, the line center 319 and the line center 329 with large current flowing are separated by the gap d. A both ends open portion 318 and a both ends open portion 328 with intense electric field are separated by more than the gap d. Therefore, the inductive coupling is larger than the capacitive coupling and the inductive coupling is dominant.
Then, in order to cancel this inductive coupling, as described above, the coupling line 351 is disposed near the first resonator 320 and the second resonator 330. This produces new capacitive coupling between the coupling line 351 and the first resonator 320. This produces new capacitive coupling between the coupling line 351 and the second resonator 330 as well. These newly produced capacitive couplings can be cancelled the inductive coupling to reduce the coupling coefficient between two resonators, and thus the isolation characteristics can be improved.
In the embodiment, it is only necessary to provide the coupling line 351 newly in order to cancel the inductive coupling, and thus it can be also applied to the case where downsizing makes a space between resonators extremely narrow.
The operation and effect other than the above in the embodiment are the same as the first embodiment described above.
Next, a third embodiment will be described.
As shown in
In the division multiplexing unit 417, an input/output portion 414 in an interconnect configuration extending in the X-direction branches into branches 415 and 416 at one end, and the branches 415 and 416 are disposed distantly in the Y-direction. The branch 415 is extracted from the one end of the input/output portion 414, is inflected beyond to extend in the X-direction, and branches beyond. One of branches is inflected to extend in the Y-direction and terminate, and another one of branches extends in the X-direction, and is inflected beyond to extend in the Y-direction and terminate. The branch 416 is extracted in the −Y-direction from the one end of the input/output portion 414 where the branch 415 is extracted, is inflected beyond to extend in the X-direction, and branches beyond. One of branches is inflected to extend in the Y-direction and terminate, and another one of branches extends in the X-direction, and is inflected beyond to extend in the Y-direction and terminate.
A termination of the branch 415 and a termination of the branch 416 extend in the same direction, however the lengths are different, and the termination of the branch 416 is shorter than the termination of the branch 415. The branch 415 has two terminations, and has the same length. The branch 416 has two terminations, and has the same length.
The first resonator 420 has the configuration that one end of a meander form portion 477 is connected to an inflection portion of a comb form portion 475 closest to one of ends of the comb form portion 475 in the X-direction, the one being adjacent to a comb form portion 476, and has the configuration that another end of the meander form portion 477 is connected to an inflection portion of the comb form portion 476 closest to one of ends of the comb form portion 476 in the −X direction, the one being adjacent to the comb form portion 475. The respective resonators 420 are disposed so that the meander form portion 477 is in the Y-direction viewed from the comb form portion 475.
The second resonator 430 has the configuration that one end of a meander portion 487 is connected to an inflection portion of a comb form portion 485 closest to one of ends of the comb form portion 485 in the X-direction, the one being adjacent to a comb form portion 486, and has the configuration that another end of the meander form portion 487 is connected to an inflection portion of the comb form portion 486 closest to one of ends of the comb form portion 486 in the −X-direction, the one being adjacent to the comb form portion 485. A line length of the meander form portion 487 is shorter than a line length of the meander form portion 477. A length of a line of the comb form portion 485 extending in the Y-direction is shorter than a length of a line of the comb form portion 475 extending in the Y-direction. The respective second resonators 430 are disposed in the same direction as the first resonators 420. A configuration of the division multiplexing unit 447 forms a mirror image of the division multiplexing unit 417 about the YZ-plane.
Between lines located at first and second from a side in the −X-direction of the comb form portion of the first resonator 420, one of ends of the branch 415 is inserted. Between lines located at third and fourth from a side in the −X direction of the comb form portion of the first resonator 420, another one of ends of the branch 415 is inserted.
The ends of the comb form portion 475 in a section B1 shown in
A middle point of the line length of the meander form portion 477 in a section A shown in
The first resonator 420 shown in
The configuration other than the above of the embodiment is the same as the first embodiment described above.
Next, the effect of the multiband filter 3 according to the embodiment will be described.
As shown in
A distance between the open portion 489 of the first resonator 420 where the electric field is intense and the capacitance occurs and the open portion 499 of the second resonator 430 where the electric field is intense and the capacitance occurs is taken as a distance DC. A distance between the line center 484 of the first resonator 420 where the large current flows and the magnetic field occurs and the line center 494 of the second resonator 430 where the large current flows and the magnetic field occurs is taken as a distance DL. A distance between the first resonator 420 and the second resonator 430 is taken as a distance Dm. Here, the first resonator 420 and the second resonator 430 are disposed at positions where the formula (2) and the formula (3) described below hold.
D
C
>D
m (2)
D
L
>D
m (3)
In the case of the disposition described above, the capacitive coupling occurs between the open portion 489 and the open portion 499. The inductive coupling occurs between the line center 484 and the line center 494. The distance DC between the open portion 489 and the open portion 499 is not greatly different from the distance DL between the line center 484 and the line center 494. Therefore, the capacitive coupling is mixed with the inductive coupling. The coupling coefficient of these couplings has the relationship of the formula (1) described above, the capacitive coupling is cancelled the inductive coupling, and the coupling coefficient can be reduced.
A distance between the open portion 489 and the line center 494 is taken as a distance DCL and a distance between the line center 484 and the open portion 499 is taken as a distance DLC, and then at least one on the distance DCL and a distance DLC may be shorter than the distance DC and the distance DL.
Next, a first comparative example of the third embodiment will be described.
Compared
Next, a second comparative example of the third embodiment will be described.
Compared
As shown in
As described above, induction property or capacitive property can be easily intensified by using the first resonator 420 shown in
Next, a fourth embodiment will be described.
As shown in
(a) The number of a first resonator 720 and a second resonator 730 is 2, respectively.
(b) In the pattern diagram of the second resonator 730, the second resonator 430 in the third embodiment described above shown in
(c) Along with the above (b), a termination of a branch 716 and a termination of a branch 746 extend in the (−Y)-direction.
(d) A coupling line 750 is provided.
One end of the coupling line 750 is provided spaced from a branch 715 in the vicinity of an inflection portion beyond of the branch 715 extending in the X-direction, and one other end is provided spaced from the branch 746 in the vicinity of an inflection portion beyond of the branch 746 extending in the (−X)-direction. The coupling line 750 is extracted from the one end in the X-direction, is inflected beyond to extend in the (−Y)-direction, and is inflected again beyond to extend in the X-direction and is terminated.
The configuration other than the above of the embodiment is the same as the third embodiment described above.
A current flows through the branch 715 of a division multiplexing unit 717, and a magnetic field occurs around there. A current also flows through the branch 746 of a division multiplexing unit 747, and a magnetic field occurs around there. Here, for example, in the case where the number of the first resonator 720 and the second resonator 730 of the multiband filter 4 is taken as 2 for downsizing, respectively, the branch 715 of the division multiplexing unit 717 and the branch 746 of the division multiplexing unit 747 are disposed near. As a result, the magnetic field which occurred around the branch 715 comes around the branch 746 and the inductive coupling occurs.
In this case, as shown in
Next, a variation of the fourth embodiment will be described.
As shown in
The configurations of the coupling lines 850 and 851 are linear and extend in the X-direction, respectively. An end of the coupling line 850 on a side in the −X-direction is provided spaced from a branch 815 in the vicinity of an inflection portion beyond of the branch 815 extending in the X-direction, an end on a side in the X-direction is provided spaced from a branch 845 in the vicinity of an inflection beyond of the branch 845 extending in the −X-direction. An end of the coupling line 851 on a side in the −X-direction is provided spaced from the branch 816 in the vicinity of an inflection portion beyond of the branch 816 extending in the X-direction, an end on a side in the X-direction is provided spaced from a branch 846 in the vicinity of an inflection beyond of the branch 846 extending in the −X-direction.
The configuration other than the above of the variation is the same as the fourth embodiment described above.
A current flows through the branch 815 of a division multiplexing unit 817, and a magnetic field occurs around there. A current also flows through the branch 845 of a division multiplexing unit 847, and a magnetic field occurs around there. Here, in the case where the number of the first resonator 820 and the second resonator 830 of the multiband filter 5 is taken as 2 for downsizing, respectively, the branch 815 of the division multiplexing unit 817 and the branch 845 of the division multiplexing unit 847 are disposed near. As a result, the magnetic field which occurred around the branch 815 comes around the branch 845 and the inductive coupling occurs.
In this case, as shown in
The same reason holds true with the coupling line 851. The inductive coupling which occurred between the branch 816 and the branch 846 is cancelled and the isolation characteristics outside the band can be improved.
According to the plurality of embodiments described above, even if a plurality of filters are multiplexed closely, multiband filters having the isolation characteristics outside the band improved can be provided.
While certain embodiments have been described, these embodiments have been presented by way of example only, and are not intended to limit the scope of the inventions. Indeed, the novel embodiments described herein may be embodied in a variety of other forms; furthermore, various omissions, substitutions and changes in the form of the embodiments described herein may be made without departing from the spirit of the inventions. The accompanying claims and their equivalents are intended to cover such forms or modifications as would fall within the scope and spirit of the invention.
Number | Date | Country | Kind |
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2014-182375 | Sep 2014 | JP | national |