The present invention claims priority of Korean Patent Application Nos. 10-2006-0121372 and 10-2007-0019616, filed on Dec. 4, 2006 and Feb. 27, 2007, respectively, which are incorporated herein by reference.
1. Field of the Invention
The present invention relates to a 3-port orthogonal mode transducer, and a receiver and receiving method using the same; and, more particularly, to a 3-port orthogonal mode transducer, and a receiver and a receiving method using the same for receiving a K-band (20 GHz) vertical or horizontal signal transmitted from a satellite as ±45 degree signals through the 3 port orthogonal mode transducer, searching an optimal location by rotating the 3-port orthogonal mode transducer to make the received two signals have the same intensity, and synthesizing the received two signals to output a synthesized signal, so that an optimal satellite signal is received at an optimal location.
This work was supported by the IT R&D program for MIC/IITA [2005-S-301-02, “Development of Satellite Communications System for Communications, Ocean and Meteorological Satellite”].
2. Description of Related Art
In general, a two-way satellite communications system using linear polarization or circular polarization uses different polarizations in transmission and reception.
Thus, a general orthogonal mode transducer (OMT) used for the two-way satellite communications system is a 2-port orthogonal mode transducer in which a transmission port and a reception port are orthogonal to each other.
In the case where a 3-port orthogonal mode transducer is used, a transmission port and a first Rx (Tx1) port receive co-polarization (co-pol), and the transmission port and a second Rx (Rx2) port receive cross-polarization (cross-pol). Since the Rx1 port or the Rx2 port receives a signal from the satellite, a search for which port receives a main beam must be conducted.
A conventional orthogonal mode transducer will now be described in more detail with reference to
As mentioned above, in the conventional 3-port orthogonal mode transducer, the transmission port and the Rx1 port receive co-polarization, and the transmission port and the Rx2 port receive cross-polarization. Also, the 3-port orthogonal mode transducer receives a signal from a satellite via the Rx1 port and the Rx2 port.
Thus, when a satellite signal is received, it is difficult for the conventional 3-port orthogonal mode transducer to detect an accurate polarization angle for matching between the two reception ports. Particularly, if an Rx signal is weak, a maximum-search method or a minimum-search method for signal reception fails to trace an accurate polarization angle because of error generation.
Also, the conventional 3-port orthogonal mode transducer receives a satellite signal via one reception port in receiving the satellite signal, thereby failing to receive an optimal satellite signal.
An embodiment of the present invention is directed to providing a 3-port orthogonal mode, which includes a rectangular transmission port, a first reception port having a rectangular shapes inclined at about +45 degrees at a location being at +45 degrees with respect to the transmission port, and a second transmission port having a rectangular shape inclined at about −45 degrees at a location being at about −45 degrees with respect to the transmission portion to receive K-band (20 GHz) vertical or horizontal polarization signals phase-delayed about ±45 degrees.
Other objects and advantages of the present invention can be understood by the following description, and become apparent with reference to the embodiments of the present invention. Also, it is obvious to those skilled in the art to which the present invention pertains that the objects and advantages of the present invention can be realized by the means as claimed and combinations thereof.
Another embodiment of the present invention is directed to providing a receiver and a receiving method using a 3-port orthogonal mode transducer for receiving a K-band (20 GHz) vertical or horizontal polarization signal transmitted from a satellite as two ±45 degree signals through the 3-port orthogonal mode transducer, searching an optimal location by rotating the 3-port orthogonal mode transducer such that the intensities of the two received signals become the same, synthesizing the two received signal to output a synthesized signal, so that an optimal satellite signal can be received at an optimal location.
In accordance with an aspect of the present invention, there is provided a 3-port orthogonal mode transducer for transmitting a vertical polarization signal, including: a transmission port having a rectangular shape elongated in a horizontal direction and configured to transmit a Ka-band (30 GHz) vertical polarization signal; a first reception port having a rectangular shape inclined at about +45 degrees at a location being at about +45 degrees with respect to the transmission port and configured to receive a K-band (20 GHz) vertical or horizontal polarization signal phased-delayed about +45 degrees; and a second reception port having a rectangular shape inclined at about −45 degrees at a location being at about −45 degrees with respect to the transmission port and configured to receive a K-band (20 GHz) vertical or horizontal polarization signal phase-delayed about −45 degrees.
In accordance with another aspect of the present invention, there is provided a 3-port orthogonal mode transducer for transmitting a horizontal polarization signal, including: a transmission port having a rectangular shape elongated in a vertical direction and configured to transmit a Ka-band (30 GHz) vertical polarization signal; a first reception port having a rectangular shape inclined at about +45 degrees at a location being at about +45 degrees with respect to the transmission port and configured to receive a K-band (20 GHz) vertical or horizontal polarization signal phased-delayed about +45 degrees; and a second reception port having a rectangular shape inclined at about −45 degrees at a location being at about −45 degrees with respect to the transmission port and configured to receive a K-band (20 GHz) vertical or horizontal polarization signal phase-delayed about −45 degrees.
In accordance with another aspect of the present invention, there is provided a vertical or horizontal polarization receiving method using a 3-port orthogonal mode transducer, including the steps of: receiving a K-band (20 GHz) vertical or horizontal signal transmitted from a satellite as two ±45 degree signals by using the 3-port orthogonal mode transducer; and synthesizing the received +45 degree vertical or horizontal polarization signal and the received −45 degree vertical or horizontal polarization signal to output a final vertical or horizontal polarization signal.
The advantages, features and aspects of the invention will become apparent from the following description of the embodiments with reference to the accompanying drawings, which is set forth hereinafter. Therefore, those skilled in the field of this art of the present invention can embody the technological concept and scope of the invention easily. In addition, if it is considered that detailed description on the related art may obscure the points of the present invention, the detailed description will not be provided herein. The preferred embodiments of the present invention will be described in detail hereinafter with reference to the attached drawings.
In detail, the 3-port orthogonal mode transducer of transmission of a vertical polarization signal illustrated in
An implementation example of the 3-port orthogonal mode transducer for transmission of a vertical polarization signal is illustrated in
The 3-port orthogonal mode transducer for transmission of a horizontal polarization signal illustrated in
An implementation example of the 3-port orthogonal mode transducer for transmission of a horizontal polarization signal is illustrated in
As shown in
Referring to
To install the 3-port orthogonal mode transducer 51 at an optimal location, the vertical or horizontal polarization receiver using a 3-port orthogonal mode transducer in accordance with an embodiment of the present invention further includes a first coupler 53, a second coupler 54, an analog/digital (AD) converter 55, and a controller 56. The first coupler 53 branches the +45 degree vertical or horizontal polarization signal received in the 3-port orthogonal mode transducer 51. The second coupler 54 branches the −45 degree vertical or horizontal, polarization signal received in the 3-port orthogonal mode transducer 51. The A/D converter 55 converts analog vertical or horizontal polarization signals branched by the first coupler 53 and the second coupler 54 into digital vertical or horizontal polarization signals. The controller 56 compares intensities of the two signals converted in the A/D converter 55, and outputs rotation information of the 3-port orthogonal mode transducer according to a comparison result.
The rotation information is used to compensate a polarization angle between vertical or horizontal signals received from a satellite via an Rx1 port and an Rx2 port of the 3-port orthogonal mode transducer 51. For example, if the intensity of a signal received via the Rx1 port is greater than the intensity of a signal received via the Rx2 port, the 3-port orthogonal mode transducer 51 is rotated clockwise, and if not, the 3-port orthogonal mode transducer 51 is rotated counterclockwise. In this case, the rotation information means a rotation angle according to the intensities of the two signals.
Also, the 3-port orthogonal mode transducer 51 includes an Rx1 port having a rectangular shape inclined at about +45 degrees at a location being at about +45 degrees with respect to a rectangular transmission port, and an Rx2 port having a rectangular shape inclined at about −45 degrees at a location being at about −45 degrees with respect to the transmission port, so as to receive K-band (20 GHz) vertical or horizontal polarization signals phase-delayed about ±45 degrees.
Also, each of the first coupler 53 and the second coupler 54 branches a signal to 20 dB to 40 dB.
The controller 56 may drive a driver (not shown), according to the rotation information associated with the comparison result of the two signals to rotate the 3-port orthogonal mode transducer 51. The driver rotates the 3-port orthogonal mode transducer 51 about a polarization axis to install the 3-port orthogonal mode transducer 51 to an optimal location.
In step S601, a K-band (20 GHz) vertical or horizontal signal transmitted from a satellite is received from a satellite as two ±45 degree signals by using the 3-port orthogonal mode transducer 51.
In step S602, the received +45 degree vertical or horizontal polarization signal and the −45 degree vertical or horizontal polarization signal are synthesized to output a final vertical or horizontal polarization signal.
In addition, the vertical or horizontal polarization receiving method using the 3-port orthogonal mode transducer in accordance with an embodiment of the present invention further includes the following steps to install the 3-port orthogonal mode transducer 51 at an optimal location.
The received ±45 degree vertical or horizontal polarization signals are branched.
Thereafter, two branched analog vertical or horizontal polarization signals are converted into digital vertical or horizontal polarization signals, respectively.
Thereafter, intensities of the two converted signals are compared, and then rotation information of the 3-port orthogonal mode transducer according to a comparison result is output.
In accordance with an embodiment of the present invention, a K-band (20 GHz) vertical or horizontal signal transmitted from a satellite is received as two ±45 degree signals through the 3-port orthogonal mode transducer. The 3-port orthogonal mode transducer is rotated such that the intensities of the received two signals become the same, thereby searching an optimal location. The two received signals are synthesized to output a synthesized signal, so that an optimal satellite signal can be received at an optimal location.
The technology of the present invention described above can be realized as a program and stored in a computer-readable recording medium, such as CD-ROM, RAM, ROM, floppy disk, hard disk and magneto-optical disk. Since the process can be easily implemented by those skilled in the art of the present invention, further description will not be provided herein.
While the present invention has been described with respect to the specific embodiments, it will be apparent to those skilled in the art that various changes and modifications may be made without departing from the spirit and scope of the invention as defined in the following claims.
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10-2007-0019616 | Feb 2007 | KR | national |
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