Tracking antenna system having multiband selectable feed
10038251 ยท 2018-07-31
Assignee
Inventors
- Larry Wong (Berkeley, CA, US)
- Wei-Jung GUAN (Walnut Creek, CA, US)
- Glafkos Yianni Philippou (Leatherhead, GB)
- Peter Blaney (Walnut Creek, CA, US)
Cpc classification
H01Q5/45
ELECTRICITY
H01Q19/17
ELECTRICITY
H01Q1/34
ELECTRICITY
H01Q25/007
ELECTRICITY
H01Q3/20
ELECTRICITY
International classification
H01Q19/19
ELECTRICITY
H01Q1/34
ELECTRICITY
H01Q3/20
ELECTRICITY
H01Q19/13
ELECTRICITY
H01Q19/17
ELECTRICITY
H01Q25/00
ELECTRICITY
Abstract
A tracking antenna system for use in a plurality of discrete radio frequency (RF) spectrums includes a stabilized antenna support configured to direct and maintain the antenna in alignment with a communications satellite; a reflector mounted on the stabilized antenna support, the reflector reflecting radio waves along a first RF path; a first feed for gathering radio waves within a first of the discrete RF spectrums traveling from the reflector; a sub-reflector movable between first and second positions, the first position outside the first RF path and the second position in the first RF path to redirect radio waves traveling from the reflector along the first RF path to a second RF path; a second feed for gathering radio waves within a second of the discrete RF spectrums redirected along the second RF path; and an actuator for moving the sub-reflector between the first and second positions.
Claims
1. A tracking antenna system for use in a plurality of discrete radio frequency (RF) spectrums, the antenna system comprising: a stabilized antenna support configured to direct and maintain the antenna system in alignment with a communications satellite; a reflector mounted on the stabilized antenna support for tracking satellites, the reflector reflecting radio waves along a first RF path to a primary focal point; a first feed for receiving radio waves within a first of the discrete RF spectrums traveling from the reflector adjacent the primary focal point, wherein at least one elongate first feed support is directly coupled between the first feed and the reflector; a sub-reflector movable between first and second positions, the first position being outside of the first RF path such that the subreflector does not redirect the radio waves reflected by the reflector, and the second position being in the first RF path to redirect radio waves traveling from the reflector along the first RF path to a second RF path; a second feed for receiving waves within a second of the discrete RF spectrums traveling from the reflector and redirected by the sub-reflector along the second RF path, wherein a second feed support that is distinct from the at least one elongate first feed support is directly coupled between the second feed and the reflector; and an actuator for moving the sub-reflector between the first and second positions.
2. The tracking antenna system of claim 1, wherein the reflector is a parabolic reflector and the sub-reflector is a convex hyperboloid reflector.
3. The tracking antenna system of claim 1, wherein the reflector is asymmetric, and wherein the sub-reflector does not obstruct radio waves received by the reflector.
4. The tracking antenna system of claim 1, wherein the first feed is disposed in front of the reflector adjacent the primary focal point.
5. The tracking antenna system of claim 1, wherein the first feed is affixed with respect to the reflector and the stabilized antenna support.
6. The tracking antenna system of claim 1, wherein the first feed and the second feed are affixed with respect to the reflector and the stabilized antenna support.
7. The tracking antenna system of claim 1, wherein the second feed is affixed with respect to the reflector and the stabilized antenna support.
8. The tracking antenna system of claim 1, wherein the second feed is disposed outside of the first RF path.
9. The tracking antenna system of claim 1, wherein the first of the discrete RF spectrums is a C band.
10. The tracking antenna system of claim 1, wherein the second of the discrete RF spectrums is a Ku band.
11. The tracking antenna system of claim 1, wherein the actuator includes a rotation mechanism including first and second mechanical stops and first and second limit switches to locate the position of the sub-reflector in the respective first and second positions.
12. The tracking antenna system of claim 1, wherein the first feed is operably connected to a first RF module and the second feed is operably connected to a second RF module, each of the first and second RF modules being configured for use with a first Media Exchange Points (MXP) connected to a digital antenna control unit (DAC).
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(9) Reference will now be made in detail to various embodiments of the present invention(s), examples of which are illustrated in the accompanying drawings and described below. While the invention(s) will be described in conjunction with exemplary embodiments, it will be understood that present description is not intended to limit the invention(s) to those exemplary embodiments. On the contrary, the invention(s) is/are intended to cover not only the exemplary embodiments, but also various alternatives, modifications, equivalents and other embodiments, which may be included within the spirit and scope of the invention as defined by the appended claims.
(10) Generally, the tracking antenna system of the present invention is configured to access multiple frequency bands, for example, to switch between C-band and Ku-band frequencies. One will appreciate that the multiple frequency bands may include other satellite frequencies. In accordance with the present invention, the tracking antenna system includes primary and secondary band feeds that are stationary with respect to a reflector, and further includes a sub-reflector that moves between two positions. In the first position, the sub-reflector is out of the RF path between the reflector and the primary band feed. In the second position, the sub-reflector redirects RF signals from the primary reflector to the secondary band feed.
(11) The tracking antenna system of the present invention generally includes supporting structural members, bearings, drive means, and etc. for positioning and stabilizing the reflector to track satellites in an otherwise conventional manner. In some aspects, the tracking antenna system of the present invention is similar to those disclosed by U.S. Pat. No. 5,419,521 entitled THREE-AXIS PEDESTAL, U.S. Pat. No. 8,542,156 entitled PEDESTAL FOR TRACKING ANTENNA, U.S. Patent Application Publication No. 2010-0295749 entitled RADOME FOR TRACKING ANTENNA, and U.S. Patent Application Publication No. 2012-0001816 entitled THREE-AXIS PEDESTAL HAVING MOTION PLATFORM AND PIGGY BACK ASSEMBLIES, the entire content of which patents and publications is incorporated herein for all purposes by this reference, as well as those used in the Sea Tel 9707, 9711 and 9797 VSAT systems, as well as other satellite communications antennas sold by Cobham SATCOM of Concord, Calif.
(12) Turning now to the drawings, wherein like components are designated by like reference numerals throughout the various figures, attention is directed to
(13) Reflector 33 is mounted on the stabilized antenna support for tracking satellites in an otherwise conventional manner. Similar to the stabilized antenna support described in the above-mentioned '521 and 156 patents, and the above-mentioned '749 and '816 publications, stabilized antenna support 32 is configured to accurately direct and maintain reflector 33 in proper alignment with a communications satellite, for example, adjusting the reflector about azimuth, cross-level and elevation axes. In the illustrated embodiment, the reflector is a parabolic reflector that is configured to reflect radio waves along a first RF path to a primary focal point, at which first feed 35 is positioned to gather radio waves within a first of the discrete RF spectrums traveling from the reflector. In the illustrated embodiment, the first feed is stationary with respect to the reflector, however, one will appreciate that other suitable configurations may be used. The reflector and first feed thus function as an off-axis or offset front feed antenna.
(14) The first feed is mounted stationary with respect to the reflector by a first feed support 42. For example, the first feed support may simply include struts that position the first feed with respect to the reflector. Again, one will appreciate that various support structures and means may be utilized to properly position the first feed with respect to the reflector.
(15) The first feed is operably connected to an RF module that is configured for use with Media Exchange Points (MXP) and a digital antenna control unit (DAC) in an otherwise conventional manner.
(16) In the illustrated embodiment, actuator 40 is stationary with respect to the reflector, however, one will appreciate that other suitable configurations may be used. The actuator movably supports sub-reflector 39 to move between first and second positions. In the first position, shown in
(17) Second feed 37 is also stationary with respect to the reflector, however, one will appreciate that other suitable configurations may be used. The second feed is positioned for gathering radio waves within a second of the discrete RF spectrums traveling from the reflector and redirected by the sub-reflector along the second RF path. As can be seen in
(18) The second feed may also be mounted stationary with respect to the reflector by a second feed support 44. As shown in
(19) The second feed is also operably connected to an RF module that is configured for use with Media Exchange Points (MXP) and a digital antenna control unit (DAC) in an otherwise conventional manner.
(20) In the illustrated embodiment, and as shown in
(21) In operation and use, stabilized antenna system 30 of the present invention has the ability to access both C-band and Ku-band frequencies with a single antenna, and namely with a single primary reflector 33. As noted above, the C-band and Ku-band feeds are stationary (e.g., first and second feeds, 35 and 37, respectively) while sub-reflector rotates 39 in and out of the RF path of the main reflector 33. The focal point of sub-reflector 39 is preferable the same as that of reflector 33. Under C-band operation, the Ku-band sub-reflector 39 rotates out of the RF path so the signal hits the main reflector 33 and is channeled to the focal point at the C-band feed 35. Under Ku band operation, the Ku sub-reflector 39 rotates into the RF path so the signal hits the main reflector 33 and is channeled towards the focal point, where the Ku sub-reflector 39 redirects the signal to the Ku band feed 37.
(22) Actuator 40 contains two mechanical stops 46, 46 and two limit switches 47, 47 to position and locate the position of the Ku sub-reflector 39, respectively. Under C band operation, the Ku sub-reflector is driven in one direction with a constant voltage until a limit switch is triggered. Once a limit switch is triggered, the voltage is reduced, which reduces the speed of the motor and hits the respective mechanical stop. The reduced voltage is applied to ensure the mechanical stop is engaged, which accurately locates the Ku sub-reflector. The limit switch is engaged so the position of the Ku sub-reflector is known. Under Ku-band operation, the Ku sub-reflector is driven the other direction with a constant voltage until the other limit switch is triggered. Once the limit switch is triggered, the voltage is reduced, which reduces the speed and hits the other respective mechanical stop. The reduced voltage is applied to ensure the mechanical stop is engaged, which again locates the Ku sub-reflector in the respective position. The limit switch is engaged so the position of the Ku sub-reflector is known.
(23) The foregoing descriptions of specific exemplary embodiments of the present invention have been presented for purposes of illustration and description. They are not intended to be exhaustive or to limit the invention to the precise forms disclosed, and obviously many modifications and variations are possible in light of the above teachings. The exemplary embodiments were chosen and described in order to explain certain principles of the invention and their practical application, to thereby enable others skilled in the art to make and utilize various exemplary embodiments of the present invention, as well as various alternatives and modifications thereof. It is intended that the scope of the invention be defined by the Claims appended hereto and their equivalents.