Many communication transmission systems, including those for many airborne and ship based satellite systems, need to support multiple RF bands and multiple signal polarizations. For example, some systems need to support two frequency bands where one band can utilize either right and left hand circular polarizations while the other band might only use left hand circular polarization, or only right hand polarization. In other cases where linear polarization is used, the polarization angle into the feed requires frequent adjustment to compensate for platform movement. Linearly polarized signals may need to be either vertically or horizontally polarized based on what satellite resources are available.
Many systems typically do not need to utilize all of the different configurations simultaneously and have been manufactured to switch between configurations so as to minimize cost, weight, and footprint constraints that can be critical when deployed in mobile platforms (e.g., shipboard, aircraft). Any additional hardware needed to provide the switching capability takes valuable space and also must be counterweighted for antenna balance. In some instances, twice the volume is required to implement a multiple configuration capability due to the counterweights.
Some current systems utilize a diplexer on the input to the feed, a waveguide switch, and multiple waveguide sections separately configured to conform with different wavelengths (e.g., waveguide dimensions) to interconnect the switch to the diplexer. Accurate and stable arrangements of the waveguides may thus be necessary so as to avoid unacceptable signal loss (e.g., insertion loss of the transmit path). In yet other implementations, phase matching of the signal paths is needed, which can also introduce further complexity, footprint, and cost.
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This Summary is provided to introduce a selection of concepts in a simplified form that are further described below in the Detailed Description. This Summary is not intended to identify key features or essential features of the claimed subject matter, nor is it intended to be used to limit the scope of the claimed subject matter.
Described embodiments provide apparatus, methods, and systems for RF polarizer step twist switches.
In an aspect of embodiments, a polarizer apparatus for RF communications includes a waveguide step twist switch having a first port with a rectangular waveguide shape, and a second port having a circular waveguide shape, the waveguide switch including a plurality of rotatable disks coupled and arranged between the input and output of the waveguide switch, each of the disks having an opening provided therein which defines at least a portion of a signal path configured to allow RF signals to propagate therethrough, an actuating mechanism arranged to rotate the disks to positions relative to each other which modify the polarization of RF signals propagating through the openings, and a feed coupled to the output of the step twist switch, the feed comprising a vane polarizer arranged to provide an output polarization of signals provided thereto from the output of the waveguide switch.
In an embodiment, the arrangements of the disks create different polarizations for different bands of RF frequencies.
In an embodiment, the output polarization of signals is at least one of left hand circular polarization or right hand circular polarization.
In an embodiment, the disk openings are provided having a rectangular shape.
In an embodiment, one of the rotating disks includes a transition section that transitions substantially smoothly along its length from a rectangular input to a circular output.
In an embodiment, the disk openings can be rotated to gradually transition by about ninety degrees between a proximate disk opening and a distal disk opening.
In an embodiment, the disks further comprise RF chokes arranged about the openings.
In an embodiment, the actuating mechanism engages a series of coupled gears, wherein in response to a movement of the actuating mechanism, each of the gears rotates a corresponding disk at a different degree of rotation.
In an embodiment, the plurality of rotatable disks includes at least three rotatable disks.
In an aspect of embodiments, a rotating step twist waveguide includes a first stationary rectangular waveguide section having a first end corresponding to an input port of the rotating step twist waveguide and a second end, a first twist rectangular waveguide section having a first end coupled to the second end of said first stationary rectangular waveguide section and having a second end, an intermediate twist rectangular waveguide section having a first end coupled to the second end of said first twist rectangular waveguide section and having a second end, a distal twist rectangular to circular waveguide transition having a first end coupled to the second end of said intermediate twist rectangular waveguide section and having a second end, and a stationary circular waveguide section having a first end coupled to the second end of said distal twist rectangular to circular waveguide transition and having a second end corresponding to an output.
In an embodiment, the output is coupled to a feed structure comprising a vane polarizer.
In an aspect of embodiments, a method for polarizing RF communication signals includes providing a waveguide switch having a first port with a rectangular waveguide shape, and a second port having a circular waveguide shape, the waveguide switch comprising a plurality of rotatable disks coupled and arranged between the input and output of said waveguide switch, each of the disks having an opening provided therein which defines at least a portion of a signal path configured to allow RF signals to propagate therethrough, providing a feed coupled to the output of the waveguide switch, the feed comprising a vane polarizer arranged to provide circular polarization of signals provided thereto from the output of the waveguide switch, receiving an input RF signal through the input of the waveguide switch, based upon the type of input RF signal and a targeted polarization of an output signal, arranging the plurality of rotatable disks to one of a plurality of step switch rotations through which the input RF signal is configured to propagate through, and transmitting an output RF signal of the targeted polarization from the output of the waveguide switch.
In an embodiment, the different arrangements of the disks polarize different bands of RF frequencies.
In an embodiment, the disk openings are provided having a rectangular shape. In an embodiment, the rectangular shape transitions substantially smoothly across a portion of its length to a circular shape at the output of the waveguide switch.
In an embodiment, the rectangular openings are arranged to gradually transition by about ninety degrees between a proximate disk opening and a distal disk opening.
In an embodiment, the disks further comprise RF chokes arranged about the gaps between the disks.
In an embodiment, the actuating mechanism engages a series of coupled gears, wherein in response to a movement of said actuating mechanism, each of the gears rotates a corresponding disk at a different degree of rotation.
In an embodiment, the plurality of rotatable disks comprises at least three rotatable disks.
Other aspects, features, and advantages of the claimed invention will become more fully apparent from the following detailed description, the appended claims, and the accompanying drawings in which like reference numerals identify similar or identical elements. Reference numerals that are introduced in the specification in association with a drawing figure may be repeated in one or more subsequent figures without additional description in the specification in order to provide context for other features. Furthermore, the drawings are not necessarily to scale, emphasis instead being placed on the concepts disclosed herein.
Described embodiments are directed to apparatus and systems for feed polarizer step twist switches.
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In embodiments, the gears 25, 30, and 35 can be individually configured to simultaneously rotate the waveguide sections 55, 60, and 65 at different rates of rotation (e.g., by configuring the diameter/thread count of the gears 25, 30, and 65 accordingly). In embodiments, a predetermined rotational position of drive shaft 15 corresponds to predetermined rotational positions of the waveguide sections 25, 30, and 65 so as to polarize a type of signal passing therethrough with a predetermined overall linear polarization of an output signal. In embodiments, a rotational position of the drive shaft 15 corresponds to a gradually increased, relative twisting of the twistable waveguide sections 55, 60, and 65 (see, e.g.,
In an embodiment, RF chokes 52 are included to effectively create RF shorts across the gaps between the disks so as to minimize loss and potential leakage into the gaps across the junctions.
In an embodiment, the shape of the waveguide cross section perpendicular to the central axis of the waveguide core 20 formed by the twistable sections is of a rectangular shape such as to match a rectangular RF input waveguide. In an embodiment, the waveguide core 20 gradually shifts across a segment 40 to a circularly shaped cross section as it extends to an output 45 (see, e.g.,
As similarly described above with reference to polarizer section 170 of
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Elements of different embodiments described herein may be combined to form other embodiments not specifically set forth above. Other embodiments not specifically described herein are also within the scope of the following claims.
Reference herein to “one embodiment” or “an embodiment” means that a particular feature, structure, or characteristic described in connection with the embodiment can be included in at least one embodiment of the claimed subject matter. The appearances of the phrase “in one embodiment” in various places in the specification are not necessarily all referring to the same embodiment, nor are separate or alternative embodiments necessarily mutually exclusive of other embodiments. The same applies to the term “implementation.”
As used in this application, the words “exemplary” and “illustrative” are used herein to mean serving as an example, instance, or illustration. Any aspect or design described herein as “exemplary” or “illustrative” is not necessarily to be construed as preferred or advantageous over other aspects or designs. Rather, use of the words “exemplary” and “illustrative” is intended to present concepts in a concrete fashion.
Additionally, the term “or” is intended to mean an inclusive “or” rather than an exclusive “or”. That is, unless specified otherwise, or clear from context, “X employs A or B” is intended to mean any of the natural inclusive permutations. That is, if X employs A; X employs B; or X employs both A and B, then “X employs A or B” is satisfied under any of the foregoing instances. In addition, the articles “a” and “an” as used in this application and the appended claims should generally be construed to mean “one or more” unless specified otherwise or clear from context to be directed to a singular form.
To the extent directional terms are used in the specification and claims (e.g., upper, lower, parallel, perpendicular, etc.), these terms are merely intended to assist in describing the embodiments and are not intended to limit the claims in any way. Such terms, do not require exactness (e.g., exact perpendicularity or exact parallelism, etc.), but instead it is intended that normal tolerances and ranges apply. Similarly, unless explicitly stated otherwise, each numerical value and range should be interpreted as being approximate as if the word “about”, “substantially” or “approximately” preceded the value of the value or range.
Also for purposes of this description, the terms “couple,” “coupling,” “coupled,” “connect,” “connecting,” or “connected” refer to any manner known in the art or later developed in which energy is allowed to be transferred between two or more elements, and the interposition of one or more additional elements is contemplated, although not required. Conversely, the terms “directly coupled,” “directly connected,” etc., imply the absence of such additional elements. Signals and corresponding nodes or ports may be referred to by the same name and are interchangeable for purposes here.
As used herein in reference to an element and a standard, the term “compatible” means that the element communicates with other elements in a manner wholly or partially specified by the standard, and would be recognized by other elements as sufficiently capable of communicating with the other elements in the manner specified by the standard. The compatible element does not need to operate internally in a manner specified by the standard.
It will be further understood that various changes in the details, materials, and arrangements of the parts that have been described and illustrated herein might be made by those skilled in the art without departing from the scope of the following claims.