Quad band petal reflector antenna
11088461 · 2021-08-10
Assignee
Inventors
- Clency Lee-Yow (Niwot, CO, US)
- Sudhakar K. Rao (Rancho PalosVerdes, CA, US)
- Suzanna Janet LaMar (San Diego, CA, US)
- Philip Elwood Venezia (Longmont, CO, US)
Cpc classification
H01Q1/1235
ELECTRICITY
International classification
Abstract
The present invention provides a petal reflector antenna that comprises a main reflector having a paraboloid shape and a plurality of identical petals, a feed assembly that includes a horn, a wideband junction, a holder, and a hybrid coupler connected to a diplexer and a multiplexer. The petal reflector antenna further comprises a protective radome cover, a horn, a subreflector, and a support station member for quickly and conveniently set up over a desired ground location. The petal reflector antenna can operate simultaneously in the K, Ka, Ku receive, and Ku transmit frequency bands.
Claims
1. A petal reflector antenna comprising: a main reflector having a paraboloid shape and a plurality of identical petals; the main reflector configured to simultaneously receive and transmit radio frequency signals at least four different frequencies; a k/ka diplexer; a multiplexer; a feed assembly positioned on the axis of symmetry of the main reflector, feed assembly including: a horn; a wideband junction attached to the horn; a holder coupled to the wideband junction; and a hybrid coupler mounted to the holder, the hybrid coupler connected to the k/ka diplexer and the multiplexer; a protective radome cover attached to the horn; a subreflector having a lateral cross-section of a larger dimension than a corresponding lateral cross-section of the horn, where in the subreflector mates with the protective radome cover; and a support station member coupled to the feed assembly.
2. The petal reflector antenna as claimed in claim 1, wherein the main reflector includes six identical petals.
3. The petal reflector antenna as claimed in claim 1, wherein the horn supports at least four different bands.
4. The petal reflector antenna as claimed in claim 1, wherein the hybrid coupler includes a LHCP port coupled to the k/ka diplexer and a RHCP port coupled to the multiplexer.
5. The petal reflector antenna as claimed in claim 1, wherein the k/ka diplexer is configured to separate K and Ka signals from each other.
6. The petal reflector antenna as claimed in claim 1, wherein the multiplexer is configured to separate Ku band receive and Ku band transmit signals from each other.
7. The petal reflector antenna as claimed in claim 1, wherein the wideband junction is a rectangular wide band junction.
8. The petal reflector antenna as claimed in claim 1, wherein subreflector is of an axially displaced ellipse shape.
9. The petal reflector antenna as claimed in claim 1, wherein the support station member comprises a platform hingedly connected to a plurality of adjustable support legs and a monopod.
10. The petal reflector antenna as claimed in claim 9, wherein the platform is coupled to a gimbal that includes elevation and azimuth features.
11. The petal reflector antenna as claimed in claim 10, wherein the gimbal is coupled to the holder by a mounting bracket, wherein the gimbal is connected to the k/ka diplexer and the mutiplexer.
12. The petal reflector antenna as claimed in claim 11, wherein the mounting bracket includes a stopper and protruding members sized to fit in the fixed rails.
13. The petal reflector antenna as claimed in claim 1, wherein the support station member is a lightweight graphite tripod that includes elevation and azimuth features and RF cables.
14. The petal reflector antenna as claimed in claim 11, wherein the holder includes fixed rails.
15. A petal reflector antenna comprising: a main reflector having a paraboloid shape and six identical petals; the main reflector configured to simultaneously receive and transmit four different radio frequency signals; a two-band diplexer configured to separate Ku band receive and Ku band transmit signals from each other; the Ku band receive and Ku band transmit signals are right hand circular polarized (RHCP); a first k/ka diplexer configured to separate K and Ka signals from each other; the K and Ka signals are left hand circular polarized (LHCP); a second k/ka diplexer configured to separate K and Ka signals from each other; the K and Ka signals are right hand circular polarized (RHCP); a feed assembly positioned on the axis of symmetry of the main reflector, feed assembly including: a horn; a wideband junction attached to the horn separating Ku band from K/Ka bands; a holder coupled to the wideband junction; and a hybrid coupler mounted to the holder, the hybrid coupler connected to the two-band diplexer, the first k/ka diplexer and the second k/ka diplexer; a protective radome cover attached to the horn; a subreflector having a lateral cross-section of a larger dimension than a corresponding lateral cross-section of the horn, where in the subreflector mates with the protective radome cover; and a support station member coupled to the feed assembly.
16. The petal reflector antenna as claimed in claim 15, wherein the first k/ka diplexer and the second k/ka diplexer are connected with two electronic switches configured to provide switchable polarization signals between RHCP and LHCP at both K band and Ka band.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAIL DESCRIPTIONS OF THE INVENTION
(17) All illustrations of the drawings are for the purpose of describing selected versions of the present invention and are not intended to limit the scope of the present invention.
(18) The present invention's structural uniqueness comes from a main reflector (petal reflector) whose six identical petals can be readily removed and installed on the battlefield by a single soldier. Each is made of a plastic material (ensuring low cost and low mass) that is metalized. The feed assembly that supports the subreflector can also be removed for storage.
(19) The present invention has many potential applications, including in satellite-based and ground-based systems. For satellite-based applications, either a petal design or a solid graphite main reflector can be used, depending on the satellite's environments and the size of the reflector.
(20) The present invention can also be used with a plastic protective radome cover over the horn to protect the present invention from environmental damage.
(21) As
(22) The subreflector 122 can be coupled to the feed assembly 120 that is secured to the main reflector 110 and the main reflector 110 can be attached to the support station member 140 so as to form the petal reflector antenna of the present invention.
(23) Any types of fasteners may be used for securing various different components of the present invention together and various different kinds of struts known in the art may be used. Some components of the present invention may be attached together by brazing or welding or by other methods known to those skilled in the art. However, fasteners that can be easily detached without the use of tools should be used where necessary so that the present invention can be easily disassembled and assembled.
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(25) In some embodiments, the petals 112 can be attached to surrounding the base 114, which can feature a ring-shaped structure connected to the feed assembly. In such embodiments, the petals 112 can be assembled together and attached to the base 114 by means of a snap-fastening coupling common in the industry (e.g., quick-connect, snap, snap-on, or push-on coupling means known in the art). As defined herein, snap-fastening coupling means relate to the use of any complementary pair of coupling mechanisms that can be secured together using an axial, or linear, force.
(26) In one embodiment, the petals 112 can be attached to the base 114 by a rail hook 113, as shown in
(27) In one preferred embodiment, as shown in
(28) In some embodiments, as shown in
(29) The feed assembly 120 receives the electromagnetic wave from a transmitter (not depicted) to distribute the electromagnetic wave to the present invention. As the main reflector 110 and the subreflector 122 provide signal communication over transmission or reception frequency bands, the feed assembly 120 associated with the main reflector 110 and the subreflector 122 supports transmission or reception of radio frequency signals over the selected frequency bands.
(30) The feed assembly 120, as shown in
(31) The feed assembly 120 may include a horn 130, a wideband junction 132, a hybrid coupler 134, a holder 135, where the horn 130 can be configured to cover more than octave bandwidth (14-31 GHz). The subreflector 122 may be configured by an axially displaced ellipse (ADE) shape. In one embodiment, the subreflector 122 can be integrated with a protective radome cover 124 that directly attaches to the horn 130. The subreflector 122 may have a lateral cross-section of a larger than a corresponding lateral cross-section of the horn 130 that attaches to the wideband junction 132, as shown in
(32) The feed assembly 120 may include a structural transition at a connecting point 131 between the horn 130, which is circular; the wideband junction 132 that can be rectangular at the connecting point 131, as shown in
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(34) The present invention may further include at least one multiplexer (mux) 152 and at least one k/ka diplexer 154 for separating and isolating frequency bands.
(35) The main reflector 110 connected to the hybrid coupler 134 can be connected to the gimbal 150 which may be configured to transport signals from the main reflector 110 to the mux 152 for a Ku band receive 171 and a Ku band transmit 172 and the k/ka diplexer 154 for a K band 173 and a Ka band 174.
(36) In one embodiment, the main reflector 110 and the gimbal 150 may be connected by RF cables and the gimbal 150 can be directly connected to the mux 152 and the k/ka diplexer 154 by a printed circuit board or by RF cables.
(37) In other embodiment, the main reflector 110 can be directly connected to at least one mux 152 and at least one k/ka diplexer 154 by a printed circuit board or by RF cables.
(38) In yet other embodiment, the hybrid coupler 134 can be directly connected to at least one mux 152 and one or more k/ka diplexers 154 by a printed circuit board or by RF cables.
(39) The Ku band receive (Rx) (14.4-14.83 GHz) 171 and the Ku band transmit (Tx) (15.15-15.35 GHz) 172 are right hand circular polarized (RHCP), and the K band (20.2-21.2 GHz) 173 and Ka band (30-31 GHz) 174 are either left hand circular polarized (LHCP) or right hand circular polarized (RHCP).
(40) The hybrid coupler 134 can be an off the shelf coaxial hybrid coupler that provides a circular polarization. The horn 130 can be a multi-flare horn for wide band performance. For example, the horn 130 may be a smooth-walled wideband multi-flare horn which employs a ridged waveguide input interface for wideband matching.
(41) The horn 130 can be connected to the protective radome cover 124 which is attached to the subreflector 122, as shown in
(42) The wideband junction 132 can be a wideband coaxial feed junction configured to allow a linearly polarized (LP) signal conversion to a circularly polarized (CP) signal. The mux 152 can be placed any suitable area on the present invention and can be a four-band mux or a two-band diplexer to separate the Ku band receive 171 and Ku band transmit 172 signals to an electronic device connected to the present invention. The k/ka diplexer 154 can be placed any suitable area on the present invention and can be a two-port diplexer to separate the K band 173 and Ka band 174 signals to an electronic device connected to the present invention.
(43) In some embodiments, as shown in
(44) The second k/ka diplexer 154b is configured to separate K band 173 and Ka band 174 signals from each other; the K band 173 and Ka band 174 signals are right hand circular polarized (RHCP). In these embodiments, the first k/ka diplexer 154a and the second k/ka diplexer 154b can be connected with multiple electronic switches 177 configured to provide switchable polarization signals between RHCP and LHCP at both K band 173 and Ka band 174. The electronic switches 177 and the mux 152 can be directly connected to the hybrid coupler 134. In some embodiments, the electronic switches 177 and the mux 152 can be connected to the main reflector 110. The electronic switches 177 and the mux 152 can be placed any suitable area on the present invention.
(45) Conventional antenna design may require four phased array antennas to support four independent frequencies. However, the conventional antenna design has many drawbacks including size, cost, mass and high power dissipation. Thus, the conventional antennas are not suitable for man-pack applications.
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(53) The support station member 140 of the present invention may include a support structure that can be quickly and conveniently set up over a desired ground point. By positioning the support station member 140 upon the desired ground location, the present invention may be quickly and accurately positioned through the 2-axis gimbal mechanism.
(54) In one embodiment, the support station member 140 may include a platform 143 hingedly connected to a plurality of adjustable support legs 141 and a monopod 142, as shown in
(55) In some embodiment, as shown in
(56) The gimbal 150 may be used to enable pointing of the petal reflector antenna 100 of the present invention to Earth in azimuth and elevation.
(57) In some embodiments, the platform 143 may include Az/El rotary joints or RF cables: for example, two service loop cables for elevation and two service loop cables for azimuth.
(58) In some embodiments, as shown in
(59) As shown in
(60) Although the invention has been explained in relation to its preferred embodiment, it is to be understood that many other possible modifications and variations can be made without departing from the spirit and scope of the invention.