1. Field of the Invention
The present invention relates to a non-reciprocal circuit element, and, in particular, a non-reciprocal circuit element such as an isolator or a circulator, used in microwave bands.
2. Description of the Related Art
In the past, non-reciprocal circuit elements such as an isolator and a circulator have had a characteristic of only transmitting a signal in a predetermined direction and not transmitting a signal in an reverse direction. Using this characteristic, for example, the isolator is used in a transmission circuit unit in a mobile communication device such as an automobile telephone or a cellular phone.
As described in Japanese Unexamined Patent Application Publication No. 2008-85981, as a non-reciprocal circuit element of this kind, a non-reciprocal circuit element has been described where, so as to obtain a sufficient isolation characteristic in an arbitrary frequency band, a first variable matching mechanism is series-connected to each of a plurality of matching capacitors and the reactance of the first variable matching mechanism is changed.
However, in this non-reciprocal circuit element, since a high-frequency wave current passes through the first variable matching mechanism when the high-frequency wave current is input in a forward direction, there is a problem that an insertion loss inevitably increases.
Therefore, preferred embodiments of the present invention provide a non-reciprocal circuit element capable of adjusting an isolation frequency without deteriorating an insertion loss.
A non-reciprocal circuit element according to a first preferred embodiment of the present invention includes a permanent magnet, a ferrite to which a direct-current magnetic field generated by the permanent magnet is applied, a plurality of center electrodes disposed in the ferrite so as to intersect with each other in an insulated state, a terminating resistor connected in parallel to one of the center electrodes between input-output ports, and a capacitance mechanism including a capacitance connected to the terminating resistor between the input-output ports that is variable.
In the non-reciprocal circuit element according to the first preferred embodiment of the present invention, when a high-frequency wave current is input in an inverse direction, the high-frequency wave current is attenuated (isolation) by a parallel resonance circuit defined by the center electrode connected in parallel to the terminating resistor and the capacitance mechanism whose capacitance is variable. By changing the capacitance value of the capacitance mechanism, an isolation frequency is adjusted. In addition, by selecting the impedance of the terminating resistor, an attenuation is adjusted. On the other hand, when a high-frequency signal is input in a forward direction, a large high-frequency wave current flows in the center electrode to which no terminating resistor is connected, and high-frequency wave currents hardly flow in the terminating resistor and the capacitance mechanism. Therefore, even if the capacitance mechanism is added, a loss due thereto is negligible, and an insertion loss does not increase.
A non-reciprocal circuit element according to a second preferred embodiment of the present invention includes a permanent magnet, a ferrite to which a direct-current magnetic field generated by the permanent magnet is applied, and a first center electrode and a second center electrode disposed in the ferrite so as to intersect with each other in an insulated state, wherein one end of the first center electrode is electrically connected to an input port and the other end thereof is electrically connected to an output port, one end of the second center electrode is electrically connected to an output port and the other end thereof is electrically connected to a ground port, a terminating resistor is electrically connected between the input port and the output port, a capacitance mechanism including a capacitance that is variable is connected in parallel to the terminating resistor between the input port and the output port, and a matching capacitance is electrically connected between the output port and the ground port.
In the non-reciprocal circuit element according to the second preferred embodiment of the present invention, when a high-frequency wave current is input from the output port, the high-frequency wave current is attenuated (isolation) by a parallel resonance circuit defined by the first center electrode and the capacitance mechanism whose capacitance is variable. By changing the capacitance value of the capacitance mechanism, an isolation frequency is adjusted. In addition, by selecting the impedance of the terminating resistor, an attenuation is adjusted. On the other hand, at the time of an operation where a high-frequency wave current flows from the input port to the output port, a large high-frequency wave current flows in the second center electrode, and high-frequency wave currents hardly flow in the terminating resistor and the capacitance mechanism. Therefore, even if the capacitance mechanism is added, a loss due thereto is negligible, and an insertion loss does not increase.
A non-reciprocal circuit element according to a third preferred embodiment of the present invention includes a permanent magnet, a ferrite to which a direct-current magnetic field generated by the permanent magnet is applied, and a first center electrode and a second center electrode disposed in the ferrite so as to intersect with each other in an insulated state, wherein one end of the first center electrode is electrically connected to an input port and the other end thereof is electrically connected to an output port, one end of the second center electrode is electrically connected to an output port and the other end thereof is electrically connected to a ground port, a first matching capacitance is electrically connected between the input port and the output port, a second matching capacitance is electrically connected between the output port and the ground port, a terminating resistor is electrically connected between the input port and the output port, and a capacitance mechanism including a capacitance that is variable is connected in parallel to the terminating resistor between the input port and the output port.
In the non-reciprocal circuit element according to the third preferred embodiment of the present invention, when a high-frequency wave current is input from the output port, the high-frequency wave current is attenuated (isolation) by a parallel resonance circuit defined by the first center electrode, the first matching capacitance, and the capacitance mechanism whose capacitance is variable. By changing the capacitance value of the capacitance mechanism, an isolation frequency is adjusted. In addition, by selecting the impedance of the terminating resistor, an attenuation is adjusted. On the other hand, at the time of an operation where a high-frequency wave current flows from the input port to the output port, a large high-frequency wave current flows in the second center electrode, and high-frequency wave currents hardly flow in the terminating resistor and the capacitance mechanism. Therefore, even if the capacitance mechanism is added, a loss due thereto is negligible, and an insertion loss does not increase.
According to various preferred embodiments of the present invention, it is possible to adjust an isolation frequency without deteriorating an insertion loss characteristic.
The above and other elements, features, steps, characteristics and advantages of the present invention will become more apparent from the following detailed description of the preferred embodiments with reference to the attached drawings.
Hereinafter, preferred embodiments of a non-reciprocal circuit element according to the present invention will be described with reference to accompanying drawings. In addition, in each drawing, a common symbol is assigned to a same member or portion, and a redundant description will be omitted.
As illustrated in
In this non-reciprocal circuit element, when a high-frequency wave current is input from the output port P2, the high-frequency wave current is attenuated (isolation) by a parallel resonance circuit defined by the first center electrode 35 and the capacitance-variable capacitor C11. By changing the capacitance value of the capacitance-variable capacitor C11, an isolation frequency is adjusted. In addition, by selecting the impedance of the terminating resistor R, an attenuation is adjusted. On the other hand, at the time of an operation where a high-frequency wave current flows from the input port P1 to the output port P2, a large high-frequency wave current flows in the second center electrode 36, and high-frequency wave currents hardly flow in the terminating resistor R and the capacitance-variable capacitor C11. Therefore, even if the capacitance-variable capacitor C11 is added, a loss due thereto is negligible, and an insertion loss does not increase.
In addition, as for the capacitance-variable capacitor C11, the capacitance value thereof may be changeable in a stepwise fashion or the capacitance value may also be continuously changeable.
As illustrated in
In this non-reciprocal circuit element, when a high-frequency wave current is input from the output port P2, the high-frequency wave current is attenuated (isolation) by a parallel resonance circuit defined by the first center electrode 35, the first matching capacitor C1, and the adjusting capacitor C12. The switching element S11 changes the on-state or the off-state of the capacitor C12, and hence, an isolation frequency is adjusted. In addition, by selecting the impedance of the terminating resistor R, an attenuation is adjusted. On the other hand, at the time of an operation where a high-frequency wave current flows from the input port P1 to the output port P2, a large high-frequency wave current flows in the second center electrode 36, and high-frequency wave currents hardly flow in the terminating resistor R and the first matching capacitor C1 or the adjusting capacitor C12. Therefore, even if the capacitor C12 and the switching element S11 are added, a loss due thereto is negligible, and an insertion loss does not increase.
As illustrated in
As illustrated in
Here, an example 1 of a configuration of the non-reciprocal circuit element according to the second preferred embodiment of the present invention will be described with reference to
Next, an example 2 of a configuration of the non-reciprocal circuit element according to the second preferred embodiment of the present invention will be described with reference to
In addition, on the ferrite-magnet element 30, a flat plate-shaped yoke 10 is disposed through an adhesive layer 15 so as to perform magnetic shielding.
A first center electrode 35 and a second center electrode 36 are wound around the ferrite 32 in a state of being electrically insulated from each other. Through, for example, the epoxy based adhesive layer 42, the permanent magnet 41 is bonded so as to apply a direct-current magnetic field to the ferrite 32 in a thickness direction.
The first center electrode 35 is preferably defined by a conductor film. As illustrated in
The second center electrode 36 is defined by a conductor film. First, portion 36a at a half is inclined from the lower right toward the upper left at a relatively large angle with respect to the long side and intersecting with the first center electrode 35 on the front surface side, goes around to the back surface side through a relay electrode 36b in the top surface, and portion 36c at one turn substantially perpendicularly intersects with the first center electrode 35 on the back surface side. A lower end portion of the 36c at the one turn goes around to the front surface side through a relay electrode 36d in the bottom surface, and portion 36e at the one turn and a half intersects with the first center electrode 35 on the front surface side, and goes around to the back surface side through a relay electrode 36f in the top surface. Hereinafter, in the same way, portion 36g at two turns, a relay electrode 36h, portion 36i at the two turns and a half, a relay electrode 36j, 36k at three turns, a relay electrode 36l, portion 36m at the three turns and a half, a relay electrode 36n, and portion 36o at four turns are individually formed in the front and back surfaces and the top and bottom surfaces of the ferrite 32. In addition, both ends of the second center electrode 36 are individually connected to the connection electrodes 35c and 36p formed in the bottom surface of the ferrite 32. In addition, the connection electrode 35c is used as a connection electrode for an end portion of each of the first center electrode 35 and the second center electrode 36.
In other words, the second center electrode 36 turns out to be wound around the ferrite 32 by four turns in a spiral shape. Here, the number of turns is calculated based on a condition that a state where the center electrode 36 goes across one of the top and back surfaces once corresponds to a half turn. In addition, the intersecting angle between the center electrodes 35 and 36 is set as necessary, and input impedance and an insertion loss turn out to be adjusted. In this way, by the second center electrode 36 being wound around the ferrite 32 more than once, the inductance of the second center electrode 36 increase, the insertion loss decreases, and an operating frequency bandwidth is also magnified.
The characteristics of the second preferred embodiment (refer to
The characteristics of the fourth preferred embodiment of the present invention (refer to
In addition, a non-reciprocal circuit element according to the present invention is not limited to the above-described preferred embodiments, and various modifications may occur within the scope thereof.
For example, if the north pole and the south pole of the permanent magnet 41 are inverted, the input port P1 and the output port P2 replace each other. In addition, the configuration of the ferrite-magnet element 30 and the shapes of the first and second center electrodes 35 and 36 may be variously changed.
Furthermore, as the configuration of a non-reciprocal circuit element, it may also be possible to adopt a configuration where first and second center electrodes are disposed on one main surface of a flat plate-shaped ferrite in a state of intersecting with each other with a predetermined angle (for example, described in detail in Japanese Unexamined Patent Application Publication No. 9-232818).
As described above, preferred embodiments of the present invention are useful for a non-reciprocal circuit element, and, in particular, superior in terms of adjusting an isolation frequency without deteriorating an insertion loss.
While preferred embodiments of the present invention have been described above, it is to be understood that variations and modifications will be apparent to those skilled in the art without departing from the scope and spirit of the present invention. The scope of the present invention, therefore, is to be determined solely by the following claims.
Number | Date | Country | Kind |
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2010-178444 | Aug 2010 | JP | national |
Number | Date | Country | |
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Parent | PCT/JP2011/065249 | Jul 2011 | US |
Child | 13761951 | US |