The present disclosure relates to a non-reciprocal circuit element and a communication apparatus having the same and, more particularly, to a non-reciprocal circuit element having a structure in which a magnetic rotator is accommodated in a through hole formed in a dielectric substrate and a communication apparatus having such a non-reciprocal circuit element.
A non-reciprocal circuit element such as an isolator or a circulator, which is a kind of a magnetic device, has a configuration in which a magnetic rotator and a permanent magnet are sandwiched between upper and lower yokes. Non-reciprocal circuit elements described in JP 2002-043808A, JP 09-321504A, and JP 11-234003A have a structure in which a magnetic rotator is accommodated inside a through hole formed in a dielectric substrate.
However, the present inventor's studies have revealed that contact of the magnetic rotator with the inner wall of the through hole increases an insertion loss.
One of the objectives of the present disclosure is to reduce insertion loss in a non-reciprocal circuit element having a structure in which a magnetic rotator is accommodated in a through hole formed in a dielectric substrate. Another object of the present disclosure is to provide a communication apparatus having such a non-reciprocal circuit element.
A non-reciprocal circuit element according to the present disclosure includes a dielectric substrate having a through hole, a magnetic rotator accommodated in the through hole, and a permanent magnet that applies a magnetic field to the magnetic rotator. The magnetic rotator is supported by the dielectric substrate without contacting the inner wall of the through hole.
A communication apparatus according to the present disclosure includes the above-described non-reciprocal circuit element.
As described above, according to the present disclosure, it is possible to reduce insertion loss in a non-reciprocal circuit element having a structure in which a magnetic rotator is accommodated in a through hole formed in a dielectric substrate.
The above features and advantages of the present disclosure will be more apparent from the following description of certain embodiments taken in conjunction with the accompanying drawings, in which:
Some embodiments of the present disclosure will be explained below in detail with reference to the accompanying drawings.
The non-reciprocal circuit element 1 according to the present embodiment is a non-reciprocal circuit element of a surface mount type and includes, as illustrated in
As illustrated in
Connection patterns 61 to 63 are provided on the upper surface 11 of the dielectric substrate 10. The connection patterns 61 to 63 are connected respectively to ports P1 to P3 of the magnetic rotator M. A part of each of the connection patterns 61 to 63 that overlaps the ground pattern 50 provided on the lower surface 12 serves also as a capacitance electrode of a capacitor. That is, the connection patterns 61 to 63 formed on the upper surface 11 of the dielectric substrate 10 and ground pattern 50 formed on the lower surface 12 of the dielectric substrate 10 constitute a capacitor pattern. The connection pattern 61 is connected to the terminal electrode 51 provided on the lower surface 12 of the dielectric substrate 10 through a connection pattern 71 provided on a side surface 13 of the dielectric substrate 10. The connection pattern 62 is connected to the terminal electrode 52 provided on the lower surface 12 of the dielectric substrate 10 through a connection pattern 72 provided on a side surface 14 of the dielectric substrate 10. The connection pattern 63 is connected to the terminal electrode 53 provided on the lower surface 12 of the dielectric substrate 10 through a connection pattern 73 provided on the side surface 13 of the dielectric substrate 10. The side surfaces 13 and 14 constitute the yz plane. The terminal electrodes 54 to 56 are connected to a ground conductor 80 included in the magnetic rotator M through the ground pattern 50 and the bottom plate part 41 of the lower yoke 40.
As illustrated in
With the above configuration, the center conductor 81 is connected to the terminal electrode 51 through the connection patterns 61 and 71, the center conductor 82 is connected to the terminal electrode 52 through the connection patterns 62 and 72, and the center conductor 83 is connected to the terminal electrode 53 through the connection patterns 63 and 73. Further, the ground conductor 80 is connected to the terminal electrodes 54 to 56 through the bottom plate part 41 of the lower yoke 40 and the ground pattern 50.
As illustrated in
As illustrated in
The distance L may be constant over the entire periphery of the magnetic rotator M or may vary depending on the position. The reduction effect of insertion loss depends on the minimum distance between the magnetic rotator M and the inner wall of the through hole 11a , so that when there is a variation in the distance L, the distance L may be defined by the minimum distance thereof.
As described above, a part of each of the connection patterns 61 to 63 provided on the upper surface 11 overlaps the ground pattern 50 provided on the lower surface 12 in the z-direction. A capacitance component obtained by the overlap between the connection patterns 61 to 63 and the ground pattern 50 is utilized as a matching capacitance. This eliminates the need to mount a chip type matching capacitor on the dielectric substrate 10, thus making it possible to reduce the number of components. The matching capacitance can be adjusted by the shape or area of each of the connection patterns 61 to 63. Further, the dielectric substrate 10 and lower yoke 40 are separated members, so that it is not necessary to use a composite part which is required to be produced by an insert molding method.
In addition, in the present embodiment, the through hole 11a is formed in the dielectric substrate 10, and the magnetic rotator M is accommodated in the through hole 11a , thus making it possible to reduce the height of the non-reciprocal circuit element 1.
A communication apparatus 200 illustrated in
In the thus configured communication apparatus 200, non-reciprocal circuit elements 211 and 212 are inserted respectively into a path between the antenna ANT and the receiving circuit part 200R and a path between the transmitting circuit part 200T and the antenna ANT. The non-reciprocal circuit elements 211 and 212 may each be the non-reciprocal circuit element 1 according to the above embodiment. In the example illustrated in
While the one embodiment of the present disclosure has been described, the present disclosure is not limited to the above embodiment, and various modifications may be made within the scope of the present disclosure, and all such modifications are included in the present disclosure.
The technology according to the present disclosure includes the following configuration examples but not limited thereto.
A non-reciprocal circuit element according to the present disclosure includes a dielectric substrate having a through hole, a magnetic rotator accommodated in the through hole, and a permanent magnet that applies a magnetic field to the magnetic rotator. The magnetic rotator is supported by the dielectric substrate without contacting the inner wall of the through hole.
A communication apparatus according to the present disclosure includes the above-described non-reciprocal circuit element.
According to the present disclosure, the magnetic rotator does not contact the inner wall of the through hole, thus making it possible to reduce insertion loss.
In the present disclosure, the minimum distance between the magnetic rotator and the inner wall of the through hole may be 50 μm or more. This makes it possible to sufficiently reduce an insertion loss. Further, the minimum distance between the magnetic rotator and the inner wall of the through hole may be 100 μm or more. This allows the reduction effect of insertion loss to be exerted to the maximum extent. Further, the minimum distance between the magnetic rotator and the inner wall of the through hole may be 150 μm or less. This makes it possible to reduce insertion loss while sufficiently ensuring the effective area of the dielectric substrate.
The non-reciprocal circuit element according to the present disclosure may further include a connection pattern formed on the upper surface of the dielectric substrate and connected to the magnetic rotator, a terminal electrode formed on the lower surface of the dielectric substrate and connected to the connection pattern, and a ground pattern formed on the lower surface of the dielectric substrate, and a matching capacitance may be constituted by overlap between the connection pattern and the ground pattern, so that the lower surface of the dielectric substrate can be used as a mounting surface. This eliminates the need to use a composite part which is required to be produced by an insert molding method. Further, a capacitor pattern is provided in the dielectric substrate itself, eliminating the need to use a chip type matching capacitor, which makes it possible to reduce the number of components.
The non-reciprocal circuit element according to the present disclosure may further include upper and lower yokes sandwiching the dielectric substrate, magnetic rotator, and permanent magnet, and the lower surface of the dielectric substrate may have a recessed part accommodating a part of the lower yoke. This prevents interference between the lower yoke and a mounting substrate upon surface mounting.
As described above, according to the present disclosure, it is possible to reduce insertion loss in a non-reciprocal circuit element having a structure in which a magnetic rotator is accommodated in a through hole formed in a dielectric substrate.
Number | Date | Country | Kind |
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202111270567.7 | Oct 2021 | CN | national |