This application claims the priority benefit of Korean Patent Application No. 10-2013-0141336, filed on Nov. 20, 2013, in the Korean Intellectual Property Office, the disclosure of which is incorporated herein by reference.
1. Field of the Invention
The present invention relates to a configuration of a directional coupler having high isolation.
2. Description of the Related Art
A directional coupler may include a main line used to propagate a high frequency signal, and a sub-line disposed in parallel with the main line, to be electromagnetically coupled with the main line.
Propagation of the high frequency signal may occur between the main line 101 and the sub-line 102 such that impedances of the main line 101 and the sub-line 102 are determined. Here, the propagation may be called an even mode or an odd mode. When a phase velocity of the even mode is identical to a phase velocity of the odd mode, and lengths of the main line 101 and the sub-line 102 are determined to be ¼ times a wavelength of the high frequency signal, the high frequency signal input from an input (IN) terminal of the main line 101 may not be output through an output (OUT) terminal of the sub-line 102, thereby achieving favorable isolation.
In
In comparison between a directional coupler having a relatively high degree of coupling, for example, −3 decibels (dB), and a 30 dB isolation, and a directional coupler having a relatively low degree of coupling, for example, −30 dB and −30 dB isolation, the former directional coupler having a relatively low degree of coupling may obtain insufficient isolation while the latter directional coupler having a relatively high degree of coupling may achieve sufficient isolation.
This issue may occur due to a physical characteristic that a microstrip transmission line has two different media properties.
An aspect of the present invention provides a directional coupler to obtain high isolation of a microstrip directional coupler through a simple coupling in order to solve an issue caused due to a physical characteristic that a microstrip transmission line has insufficient isolation when passing two different media.
According to an aspect of the present invention, there is provided a directional coupler including a first directional coupler including a first main line and a first sub-line, and a second directional coupler including a second main line and a second sub-line, wherein the first directional coupler is connected to the second directional coupler in series.
The first main line may be connected to the second main line using a microstrip disposed therebetween, and the first sub-line may be connected to the second sub-line using a first capacitor, a second capacitor, and an inductor disposed therebetween.
A first end of the first sub-line may be connected to a first end of the first capacitor, a first end of the second sub-line may be connected to a first end of the second capacitor, a first end of the inductor may be connected between a second end of the first capacitor and a second end of the second capacitor, and a second end of the inductor may be connected to a ground.
According to another aspect of the present invention, there is also provided a directional coupler including a first microstrip, a second microstrip, a third microstrip, a fourth microstrip, and a fifth microstrip disposed between the first microstrip and the second microstrip to connect the first microstrip and the second microstrip, wherein the third microstrip is connected to the fourth microstrip in series.
The third microstrip may be connected to the fourth microstrip using a first capacitor, a second capacitor, and an inductor.
A first end of the third microstrip may be connected to a first end of the first capacitor, a first end of the fourth microstrip may be connected to a first end of the second capacitor, a first end of the inductor may be connected between a second end of the first capacitor and a second end of the second capacitor, and a second end of the inductor may be connected to a ground.
The first microstrip and the second microstrip may be included in a main line, and the third microstrip and the fourth microstrip may be included in a sub-line.
Isolation of the directional coupler may be less than or equal to −40 decibels (dB).
These and/or other aspects, features, and advantages of the invention will become apparent and more readily appreciated from the following description of exemplary embodiments, taken in conjunction with the accompanying drawings of which:
Reference will now be made in detail to exemplary embodiments of the present invention, examples of which are illustrated in the accompanying drawings, wherein like reference numerals refer to the like elements throughout. Exemplary embodiments are described below to explain the present invention by referring to the figures.
Hereinafter, a structure of a directional coupler having high isolation will be described with reference to the accompanying drawings.
The present invention discloses a method of designing two transmission lines electromagnetically coupled in a directional coupler. To this end, a directional coupler having a relatively low degree of coupling may be designed based on a microstrip structure or, to solve an issue of depletion of isolation, a scheme of incorporating a transmission line having an appropriate electrical length may be adopted for a design.
When two directional couplers are connected to each other, isolation of a directional coupler having a low degree of coupling may be improved through a coupling performed using a transmission line, a capacitor, and an inductor.
The first directional coupler 210 may include a first main line 201 and a first sub-line 203, and the second directional coupler 220 connected to the first directional coupler 210 may include a second main line 202 and a second sub-line 204.
When the first directional coupler 210 is connected to the second directional coupler 220, the first main line 201 may be connected to the second main line 202 in series, and the first sub-line 203 may be connected to the second sub-line 204 in series. Each of the first main line 201, the second main line 202, the first sub-line 203, and the second sub-line 204 may be configured using a microstrip.
In this instance, the first main line 201 may be connected to the second main line 202 using a microstrip 205 disposed therebetween. The first sub-line 203 may be connected to the second sub-line 204 using a capacitor & inductor 230 disposed therebetween. Here, the capacitor & inductor 230 may include a first capacitor, a second capacitor, and an inductor.
A connection form according to an example embodiment may be based on the configuration of
A first end of the first sub-line 203 may be connected to a first end of the first capacitor, and a first end of the second sub-line 204 may be connected to a first end of the second capacitor. The inductor may be connected between the first capacitor and the second capacitor. A first end of the inductor may be connected between a second end of the first capacitor and a second end of the second capacitor, and a second end of the inductor may be connected to a ground.
Each of the lines included in the directional coupler 200 of
Individually describing each line in the structure of the directional coupler 200 of
The first microstrip 201 may be connected to the second microstrip 202 in series, and the third microstrip 203 may be connected to the fourth microstrip 204 in series.
In this instance, the first microstrip 201 may be connected to the second microstrip 202 using the fifth microstrip 205 disposed therebetween, and the third microstrip 203 may be connected to the fourth microstrip 204 in series using the capacitor & inductor 230 disposed therebetween.
For example, the first end of the third microstrip 203 may be connected to the first end of the first capacitor, and the first end of the fourth microstrip 204 may be connected to the first end of the second capacitor. The inductor may be connected between the first capacitor and the second capacitor. The first end of the inductor may be connected between the second end of the first capacitor and the second end of the second capacitor, and the second end of the inductor may be connected to the ground.
Based on the configuration of the directional coupler 200, high isolation may be achieved and the high isolation may be maintained when a directional coupler having a relatively low coupling coefficient is connected.
In the general directional coupler of
In
Since the directional coupler is used to separate an incident wave and a reflected wave in general, the isolation of the directional coupler may need to be maintained with a relatively high level. Accordingly, referring to
In
According to an aspect of the present invention, it is possible to solve the aforementioned issue by designing a directional coupler having high isolation such that the high isolation is also maintained in a directional coupler having a low coupling coefficient. A method of the designing may be simple so as to be easily applied.
While the present invention has been shown and described with reference to a few exemplary embodiments and the accompanying drawings, it will be apparent to those skilled in the art that various modifications and variations can be made in the present invention without departing from the spirit or scope of the invention. For example, adequate effects of the present invention may be achieved even if the foregoing processes and methods may be carried out in different order than described above, and/or the aforementioned elements, such as systems, structures, devices, or circuits, may be combined or coupled in different forms and modes than as described above or be substituted or switched with other components or equivalents.
Thus, it is intended that the present invention cover the modifications and variations of this invention provided they come within the scope of the appended claims and their equivalents.
Number | Date | Country | Kind |
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10-2013-0141336 | Nov 2013 | KR | national |