The present application generally relates to devices for wireless communications, and more particularly, to a compact antenna feeder with dual polarization used in a two-transmitter two-receiver (2T2R) digital microwave radio.
Microwave radio plays an increasingly important role in the backhaul connectivity of wireless communications. A two-transmitter two-receiver (2T2R) digital microwave radio in one enclosure provides advantages such as increased capacity and coverage of microwave radios and reduced cost over the traditional one-transmitter one-receiver (1T1R) system design. A typical 2T2R system includes an antenna coupling unit with integrated circulators and isolators, which is also referred to as “circulator plate”. The conventional 2T2R system design typically has an external polarizer coupling the circulator plate to an antenna, which not only increases the overall system size but also increases the system's insertion loss and return loss as well as manufacturing cost and complexity.
An object of the present application is to develop a compact dual-polarization antenna feeder for a 2T2R digital microwave radio system that integrates an orthomode transducer (OMT) polarizer with a circulator plate.
According to a first aspect of the present application, an antenna feeder includes an orthomode transducer (OMT) polarizer, a first circulator and a second circulator. The OMT polarizer includes a septum, a first port, a second port, and a third port. The first circulator is coupled to the first port of the OMT polarizer and the second circulator is coupled to the second port of the OMT polarizer. Both the first and second circulators are formed using a single circulator plate. The septum in the OMT polarizer has a base mounted on the circulator plate and a step-shape body extending from the base and out of the circulator plate.
According to a second aspect of the present application, an antenna coupling unit includes a first filter, a second filter, a third filter, and a fourth filter, each filter having an input port and an output port, an orthomode transducer (OMT) polarizer, and a circulator plate that is coupled to the OMT polarizer. The OMT polarizer includes a septum, a first port, a second port, and a third port. The circulator plate includes a first circulator including a first port, a second port, and a third port, and a second circulator including a first port, a second port, and a third port. The first port of the first circulator is coupled to the output port of the first filter, the second port of the first circulator is coupled to the first port of the OMT polarizer, and the third port of the first circulator is coupled to the input port of the second filter. The first port of the second circulator is coupled to the output port of the third filter, the second port of the second circulator is coupled to the second port of the OMT polarizer, and the third port of the second circulator is coupled to the input port of the fourth filter. The septum in the OMT polarizer has a base mounted on the circulator plate and a step-shape body extending from the base and out of the circulator plate.
According to a third aspect of the present application, a two-transmitter two-receiver (2T2R) digital microwave radio includes a communication interface unit, communication circuitry coupled to the communication interface unit, and an antenna coupling unit coupled to the communication circuitry. The antenna coupling unit further includes a first filter, a second filter, a third filter, and a fourth filter, each filter having an input port and an output port, an orthomode transducer (OMT) polarizer, and a circulator plate coupled to the OMT polarizer. The circulator plate further includes a first circulator including a first port, a second port, and a third port, and a second circulator including a first port, a second port, and a third port. The first port of the first circulator is coupled to the output port of the first filter, the second port of the first circulator is coupled to the first port of the OMT polarizer, and the third port of the first circulator is coupled to the input port of the second filter. The first port of the second circulator is coupled to the output port of the third filter, the second port of the second circulator is coupled to the second port of the OMT polarizer, and the third port of the second circulator is coupled to the input port of the fourth filter. The septum in the OMT polarizer has a base mounted on the circulator plate and a step-shape body extending from the base and out of the circulator plate.
The accompanying drawings, which are included to provide a further understanding of the embodiments and are incorporated herein and constitute a part of the specification, illustrate the described embodiments and together with the description serve to explain the underlying principles. Like reference numerals refer to corresponding parts.
Reference will now be made in detail to embodiments, examples of which are illustrated in the accompanying drawings. In the following detailed description, numerous non-limiting specific details are set forth in order to assist in understanding the subject matter presented herein. It will be apparent, however, to one of ordinary skill in the art that various alternatives may be used without departing from the scope of claims and the subject matter may be practiced without these specific details. For example, it will be apparent to one of ordinary skill in the art that the subject matter presented herein can be implemented on many types of radio communication systems.
As shown in
Within the antenna coupling unit 106, the output port of the first isolator 120 is coupled to the input port of a first filter 130 and the output port of the third isolator 122 is coupled to the input port of a third filter 132. The input port of the second isolator 124 is coupled to the output port of a second filter 134 and the input port of the fourth isolator 126 is coupled to the output port of a fourth filter 136. The output port of the first filter 130 and the input port of the second filter 134 are coupled to the first (labeled “1” in the figure) and third (labeled “3” in the figure) ports of a first circulator 140, respectively. The output port of the third filter 132 and the input port of the fourth filter 136 are coupled to the first and third ports of a second circulator 142, respectively. The second (labeled “2” in the figure) port of the first circulator 140 and the second port of the second circulator 142 are coupled to the first and second ports of the OMT polarizer 150, respectively. In this example, there are two orthogonally polarized microwave signal paths within the OMT polarizer 150. The first port of the OMT polarizer 150 is used for the vertical component of the microwave signal traveling through one of the two orthogonally polarized microwave signal paths and the second port of the OMT polarizer 150 is used for the horizontal component of the microwave signal traveling through the other one of the two orthogonally polarized microwave signal paths.
As shown in
In some implementations, the first and third filters 130 and 132 are transmitter filters (also called transmission filters). A transmitter filter is configured to output RF or microwave signals that satisfy a predetermined RF or microwave band through the output port of the transmitter filter. The transmitter filter is configured to suppress RF or microwave signals that do not satisfy the predetermined RF or microwave band from being output through the output port of the transmitter filter. In some implementations, the transmitter filter is configured to send back (e.g., by reflection) RF or microwave signals that do not satisfy the predetermined RF or microwave band through the input port of the transmitter filter. In some implementations, the transmitter filter is a tunable filter and the corresponding predetermined RF or microwave band is tunable.
In some implementations, the second and fourth filters 134 and 136 are receiver filters (also called reception filters). A receiver filter is configured to output RF or microwave signals that satisfy a predetermined RF or microwave band through the output port of the receiver filter. The receiver filter is configured to suppress RF or microwave signals that do not satisfy the predetermined radio-frequency or microwave band from being output through the output port of the receiver filter. In some implementations, the receiver filter is a tunable filter and the corresponding predetermined RF or microwave band is tunable. In some implementations, the predetermined RF or microwave band associated with the receiver filter is distinct from the predetermined radio-frequency or microwave band associated with the transmitter filter. For example, the predetermined RF or microwave band associated with the receiver filter does not overlap with the predetermined RF or microwave band associated with the transmitter filter.
In some implementations, the four isolators 120, 122, 124, 126 and two circulators 140, 142 shown in
In this example, microwave or RF signals output from the first transmitter 110 are sent to the first isolator 120. The first isolator 120 receives the microwave or RF signals from the first transmitter 110 and routes the microwave or RF signals to the first filter 130 through the output port of the first isolator 120. Signals at the first port of the first circulator 140 are then routed to the second port of the first circulator 140 and propagated into the first port of the OMT polarizer 150. In some implementations, the OMT polarizer 150 is a waveguide including a septum 155 that splits the waveguide into two orthogonally polarized microwave signal paths (note that only the septum 155 is shown in
Similarly, microwave or RF signals output from the second transmitter 112 are sent to the third isolator 122. The third isolator 122 receives the signals from the second transmitter 112 and routes the signals to the third filter 132 through the output port of the third isolator 122. Signals at the first port of the second circulator 142 are then routed to the second port of the second circulator 142 and propagated into the second port of the OMT polarizer 150. Signals arriving at the second port of the OMT polarizer 150 are propagated through the OMT polarizer 150 along one signal path and arrive at the third port and then transmitted into the antenna 108 through the waveguide 107.
Microwave or RF signals coming from the antenna 108 through the waveguide 107 are propagated through the OMT polarizer 150 along one or two signal paths therein and come out of the OMT polarizer 150 at the first and second ports. For example, the vertical component is propagated along one signal path and comes out of the first port of the OMT polarizer 150 and then enters the first circulator 140 through its second port and then routed to the input port of the second filter 134 through the third port of the first circulator 140. The signals are then routed to the input port of the second isolator 124 through the output port of the second filter 134. Next, the signals are received by the first receiver 114 from the output port of the second isolator 124 and then enter into the communication interface unit 102. Similarly, the horizontal component is propagated along one signal path within the OMT polarizer 150 and comes out of the second port of the OMT polarizer 150 and then enters the second circulator 142 through its second port and then routed to the input port of the fourth filter 136 through the third port of the second circulator 142. The signals are then routed to the input port of the fourth isolator 126 through the output port of the fourth filter 136. Next, the signals are received by the second receiver 116 from the output port of the fourth isolator 126 and then enter into the communication interface unit 102.
As shown in
Various embodiments of the antenna feeder design as discussed in the present disclosure can be used in digital microwave radios, such as 2T2R digital microwave radios. The compact antenna feeder can be designed for different frequency bands. Such design can reduce the overall size of the dual polarization antenna feeder and improves the isolation by introducing additional circulators and isolators into the antenna feeder. Moreover, the manufacturing and assemble cost is also reduced due to a simple manufacturing and assemble process based on the new design.
The terminology used in the description of the embodiments herein is for the purpose of describing particular embodiments only and is not intended to limit the scope of claims. As used in the description of the embodiments and the appended claims, the singular forms “a,” “an,” and “the” are intended to include the plural forms as well, unless the context clearly indicates otherwise. It will also be understood that the term “and/or” as used herein refers to and encompasses any and all possible combinations of one or more of the associated listed items. It will be further understood that the terms “comprises” and/or “comprising,” when used in this specification, specify the presence of stated features, integers, steps, operations, elements, and/or components, but do not preclude the presence or addition of one or more other features, integers, steps, operations, elements, components, and/or groups thereof.
It will also be understood that, although the terms first, second, etc. may be used herein to describe various elements, these elements should not be limited by these terms. These terms are only used to distinguish one element from another. For example, a first port could be termed a second port, and, similarly, a second port could be termed a first port, without departing from the scope of the embodiments. The first port and the second port are both ports, but they are not the same port.
As used herein, the terms “couple,” “coupling,” and “coupled” are used to indicate that multiple components are connected in a way such that a first component of the multiple components is capable of receiving a signal from a second component of the multiple components, unless indicated otherwise. In some cases, two components are indirectly coupled, indicating that one or more components (e.g., filters, waveguides, etc.) are located between the two components but a first component of the two components is capable of receiving signals from a second component of the two components.
Many modifications and alternative embodiments of the embodiments described herein will come to mind to one skilled in the art having the benefit of the teachings presented in the foregoing descriptions and the associated drawings. Therefore, it is to be understood that the scope of claims are not to be limited to the specific examples of the embodiments disclosed and that modifications and other embodiments are intended to be included within the scope of the appended claims. Although specific terms are employed herein, they are used in a generic and descriptive sense only and not for purposes of limitation.
The embodiments were chosen and described in order to best explain the underlying principles and their practical applications, to thereby enable others skilled in the art to best utilize the underlying principles and various embodiments with various modifications as are suited to the particular use contemplated.
Filing Document | Filing Date | Country | Kind |
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PCT/US2016/049953 | 9/1/2016 | WO | 00 |
Number | Date | Country | |
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62213523 | Sep 2015 | US |