ACCELERATED SATELLITE ACQUISITION SCHEME
20230198166 · 2023-06-22
Assignee
Inventors
- Ying J. Feria (Manhattan Beach, CA, US)
- David Whelan (Newport Coast, CA)
- Parthasarathy Ramanujam (Redondo Beach, CA, US)
Cpc classification
H01Q21/22
ELECTRICITY
H01Q3/26
ELECTRICITY
International classification
H01Q21/22
ELECTRICITY
H01Q3/26
ELECTRICITY
Abstract
A user terminal includes a reconfigurable phased array antenna having a plurality of antenna elements. The user terminal is operable for: broadening a field of regard of the reconfigurable phased array antenna; receiving signals from a plurality of satellites within the field of regard using the reconfigurable phased array antenna; determining one or more attributes of the received signals for each of the satellites; and selecting one of the plurality of satellites for communication based on the attributes of the received signals. After the satellite has been selected, the user terminal is configured for: switching to a directional mode for the reconfigurable phased array antenna; establishing the communication with the selected satellite using the reconfigurable phased array antenna; and tracking the selected satellite. Ephemeris data broadcast by the satellites is used by the user terminal to track the satellites and to perform handovers between satellites.
Claims
1. An apparatus for establishing communication with a satellite, comprising: a user terminal including a reconfigurable phased array antenna, wherein the user terminal is operable for: in acquisition mode after being turned on, broadening a field of regard by spreading a beam width of the reconfigurable phased array antenna; receiving pilot signals from one or more satellites within the broadened field of regard using the reconfigurable phased array antenna; selecting one of the satellites based on attributes of the received pilot signals; obtaining satellite ephemeris data for the selected one of the satellites; in tracking mode after the acquisition mode, switching to a directional mode by narrowing the beam width of the reconfigurable phased array antenna; and using the obtained satellite ephemeris data to point the narrowed beam width at the selected one of the satellites.
2. The apparatus of claim 1, wherein the field of regard of the reconfigurable phased array antenna is broadened by selecting a sub-array of two or more antenna elements from a plurality of antenna elements of the reconfigurable phased array antenna to spread the beam width of the reconfigurable phased array antenna.
3. The apparatus of claim 2, wherein the field of regard of the reconfigurable phased array antenna is broadened using a spoiled beam by changing at least one of a phase and amplitude for the sub-array of the two or more antenna elements of the plurality of antenna elements of the reconfigurable phased array antenna.
4. The apparatus of claim 3, wherein the spoiled beam is generated by introducing a phase difference that alters a coherence of received signals at the reconfigurable phased array antenna.
5. The apparatus of claim 1, wherein the attributes comprise signal strength, signal quality, or proximity to other signals.
6. The apparatus of claim 1, further comprising tracking the selected one of the satellites by determining an initial pointing vector comprised of an azimuth and elevation and an initial tracking vector comprised of a flight path for the selected one of the satellites relative to a current terrestrial or airborne location of the user terminal based on the satellite ephemeris data.
7. The apparatus of claim 1, wherein the reconfigurable phased array antenna is slewed to establish an initial pointing vector comprised of an azimuth and elevation prior to broadening the field of regard, but the reconfigurable phased array antenna is not slewed once the field of regard is broadened.
8. The apparatus of claim 1, wherein the reconfigurable phased array antenna is stationary prior to broadening the field of regard.
9. A method of establishing communication with a satellite, comprising: providing a user terminal including a reconfigurable phased array antenna, wherein the user terminal is operable for: in acquisition mode after being turned on, broadening a field of regard by spreading a beam width of the reconfigurable phased array antenna; receiving pilot signals from one or more satellites within the broadened field of regard using the reconfigurable phased array antenna; selecting one of the satellites based on attributes of the received pilot signals; obtaining satellite ephemeris data for the selected one of the satellites; in tracking mode after the acquisition mode, switching to a directional mode by narrowing the beam width of the reconfigurable phased array antenna; and using the obtained satellite ephemeris data to point the narrowed beam width at the selected one of the satellites.
10. The method of claim 9, wherein the field of regard of the reconfigurable phased array antenna is broadened by selecting a sub-array of two or more antenna elements from a plurality of antenna elements of the reconfigurable phased array antenna to spread the beam width of the reconfigurable phased array antenna.
11. The method of claim 10, wherein the field of regard of the reconfigurable phased array antenna is broadened using a spoiled beam by changing at least one of a phase and amplitude for the sub-array of the two or more antenna elements of the plurality of antenna elements of the reconfigurable phased array antenna.
12. The method of claim 11, wherein the spoiled beam is generated by introducing a phase difference that alters a coherence of received signals at the reconfigurable phased array antenna.
13. The method of claim 9, wherein the attributes comprise signal strength, signal quality, or proximity to other signals.
14. The method of claim 9, further comprising tracking the selected one of the satellites by determining an initial pointing vector comprised of an azimuth and elevation and an initial tracking vector comprised of a flight path for the selected one of the satellites relative to a current terrestrial or airborne location of the user terminal based on the satellite ephemeris data.
15. The method of claim 9, wherein the reconfigurable phased array antenna is slewed to establish an initial pointing vector comprised of an azimuth and elevation prior to broadening the field of regard, but the reconfigurable phased array antenna is not slewed once the field of regard is broadened.
16. The method of claim 9, wherein the reconfigurable phased array antenna is stationary prior to broadening the field of regard.
17. An apparatus for establishing communication with a signal source, comprising: a reconfigurable phased array antenna, wherein: in acquisition mode after being turned on, a field of regard is broadened by spreading a beam width of the reconfigurable phased array antenna; pilot signals from one or more satellites are received within the broadened field of regard using the reconfigurable phased array antenna; one of the satellites are selected based on attributes of the received pilot signals; satellite ephemeris data is obtained for the selected one of the satellites; in tracking mode after the acquisition mode, a switch to a directional mode is made by narrowing the beam width of the reconfigurable phased array antenna; and the obtained satellite ephemeris data is used to point the narrowed beam width at the selected one of the satellites.
18. The apparatus of claim 17, wherein: the field of regard of the reconfigurable phased array antenna is broadened by selecting a sub-array of two or more antenna elements from a plurality of antenna elements of the reconfigurable phased array antenna to spread the beam width of the reconfigurable phased array antenna; and the field of regard of the reconfigurable phased array antenna is broadened using a spoiled beam by changing at least one of a phase and amplitude for the sub-array of the two or more antenna elements of the plurality of antenna elements of the reconfigurable phased array antenna, wherein the spoiled beam is generated by introducing a phase difference that alters a coherence of received signals at the reconfigurable phased array antenna.
19. The apparatus of claim 17, wherein the selected one of the satellites is tracked by determining an initial pointing vector comprised of an azimuth and elevation and an initial tracking vector comprised of a flight path for the selected one of the satellites relative to a current terrestrial or airborne location of the user terminal based on the satellite ephemeris data.
20. The apparatus of claim 1, wherein the reconfigurable phased array antenna is stationary or slewed to establish an initial pointing vector comprised of an azimuth and elevation prior to broadening the field of regard, but the reconfigurable phased array antenna is not slewed once the field of regard is broadened.
Description
DRAWINGS
[0019] Referring now to the drawings in which like reference numbers represent corresponding parts throughout:
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
DETAILED DESCRIPTION
[0026] In the following description of the preferred embodiment, reference is made to the accompanying drawings which form a part hereof, and in which is shown by way of illustration a specific embodiment in which the invention may be practiced. It is to be understood that other embodiments may be utilized and structural changes may be made without departing from the scope of the present invention.
[0027] System Description
[0028]
[0029] Also in the example of
[0030] There are a number of benefits to using a satellite network 100. One benefit is the ubiquitous coverage of the satellite network 100 as an alternative network option to the terrestrial networks. Another benefit of the satellite network 100 is surge capacity to overcome congestion in the terrestrial networks. A satellite network 100 also transcends outages in the terrestrial networks.
[0031] User Terminal
[0032]
[0033] Phased Array Antenna
[0034]
[0035] As shown in both
[0036] The elements 300 are individually selectable by the user terminal 104, such that the phases and/or amplitudes of signals feeding the elements 300 are varied to create a desired radiation pattern for the antenna 214. The resulting beams of the desired radiation pattern are formed and then steered by sequentially shifting the phase and/or amplitude of the signals feeding each element 300 to provide a constructive desired signal and/or destructive interference.
[0037] During acquisition of a satellite 102 signal, the phased array antenna 214 is re-configured, either by using only one element 300 to broaden the field of regard, or by using a “spoiled beam” with a subset or all of the elements 300 to broaden the field of regard, as well as to increase a receiving area for an increased signal-to-noise ratio (SNR).
[0038] The attributes of the signals received from one or more of the satellites 102 are analyzed by the user terminal 104, and a preferred satellite 102 is then selected by the user terminal 104 based on the attributes of the signals. After the satellite 102 has been selected, the phased array antenna 214 is re-configured to be directional towards the selected satellite 102 to provide a higher gain during normal communication with the selected satellite 102. Specifically, once the strongest satellite signal is acquired, the phased array antenna 214 is reconfigured to its beamforming mode to form a beam that is pointed at the satellite 102.
[0039] In one embodiment, ephemeris data broadcast by the satellites 102 is used to slew/point the antenna 214 and its beam at the selected satellite 102, to keep tracking the selected satellite 102 after its signal is acquired. The ephemeris data comprises the location for the satellites 102 in the constellation at a particular point in time, and is broadcast by each of the satellites 102 on a low data rate pilot signal.
[0040] The ephemeris data broadcast by the satellites 102 is also used by the user terminal 104 to perform handoffs between satellites 102 in the constellation. Specifically, the user terminal 104 performs a “make before break” seamless satellite-to-satellite handover using the ephemeris data broadcast by the satellites 102 to select a next satellite 102 for use, before it terminates communication with the current satellite 102. Using the ephemeris data broadcast by the satellites 102, the user terminal 104 knows the positions of the satellites 102 in the constellation and acquires the signals from the next satellite 102 either with a wide beam (e.g., an omni-directional or spoiled beam) or another high-gain beam (e.g., a directional beam) pointing at the next satellite 102 for a satellite-to-satellite handover.
[0041] Beam Patterns
[0042]
[0043]
[0044]
[0045]
[0046]
[0047]
[0048]
[0049]
[0050] Process Flowchart
[0051]
[0052] Block 600 represents the network 100 transmitting satellite ephemeris data to the satellites 102.
[0053] Block 602 represents the satellites 102 broadcasting the satellite ephemeris data to the user terminals 104.
[0054] Block 604 represents a user terminal 104, in acquisition mode after being turned on, broadening a field of regard of the reconfigurable phased array antenna 214 having a plurality of antenna elements 300. The broadened field of regard results in a wider beamwidth with lower gain that allows the antenna 214 to “see” as many signal sources, e.g., satellites 102, as possible.
[0055] In one embodiment, the reconfigurable phased array antenna 214 is stationary (not slewing) when the user terminal 104 is in acquisition mode. In another embodiment, the reconfigurable phased array antenna 214 is slewed to establish an initial pointing vector comprised of azimuth and elevation prior to acquisition of pilot signals from a plurality of satellites 102 within the field of regard, but the reconfigurable phased array antenna 214 is not slewed once the field of regard is selected.
[0056] In one embodiment, the user terminal 104 broadens the field of regard by using a lesser number than a total number of the plurality of antenna elements 300 of the reconfigurable phased array antenna 214. This may further comprise selecting one antenna element 300 from the plurality of antenna elements 300 of the reconfigurable phased array antenna 214 (e.g., any one of the antenna elements 300 may be selected to provide redundancy and fault tolerance), or this may further comprise selecting a sub-array of two or more antenna elements 300 from the plurality of antenna elements 300 of the reconfigurable phased array antenna 214.
[0057] In another embodiment, the user terminal 104 broadens the field of regard by using a spoiled beam by changing at least one of a phase and amplitude for (each or adjacent ones) of the plurality of antenna elements 300 of the reconfigurable phased array antenna 214 to spread a beam width. The spoiled beam is generated by introducing a phase difference that alters a coherence of the received signals at the reconfigurable phased array antenna 214.
[0058] Block 606 represents the user terminal 104 receiving pilot signals from a plurality of satellites 102 within the field of regard using the reconfigurable phased array antenna 214.
[0059] Block 608 represents the user terminal 104 determining one or more attributes of the pilot signals received from each of the satellites 102 and then selecting one of the plurality of satellites 102 for communication with the reconfigurable phased array antenna 214 based on the attributes of the received signals. In one embodiment, the one or more attributes comprise signal strength, signal quality, or proximity to other signals.
[0060] Block 610 represents the user terminal 104 obtaining the satellite ephemeris data, as well as other broadcast system information, from the selected satellite 102.
[0061] Block 612 represents the user terminal 104, in tracking mode, switching to a directional (high gain, beamforming) mode for the reconfigurable phased array antenna 214, with the elements 300 of the antenna 214 forming a narrow beam pointed at the selected satellite 102, and establishing communications with the selected satellite 102 using the reconfigurable phased array antenna 214. Thereafter, the user terminal 104 tracks the selected satellite 102 using the ephemeris data to position the beams formed by the reconfigurable phased array antenna 214, wherein an initial pointing vector comprised of an azimuth and elevation and an initial tracking vector comprised of a flight path are determined based on the ephemeris data for the satellites 102 relative to a current terrestrial or airborne location of the user terminal 104 and the reconfigurable phased array antenna 214.
[0062] Block 614 represents the user terminal 104 performing normal communications, i.e., transmitting and/or receiving, with the selected satellite 102, including applications such as consumer, commercial and military communications, satellite television, satellite radio, and Internet access.
[0063] Block 616 represents the satellites 102 transmitting and/or receiving normal communications with the user terminals 104.
[0064] Block 618 represents the network 100 transmitting and/or receiving normal communications with the satellites 102.