Systems and methods for remote L-band smart antenna distance measuring equipment diversity
09857461 ยท 2018-01-02
Assignee
Inventors
Cpc classification
H04B7/0608
ELECTRICITY
H01Q3/24
ELECTRICITY
H01Q1/28
ELECTRICITY
International classification
G01S13/78
PHYSICS
H01Q3/24
ELECTRICITY
Abstract
Various avionics systems may benefit from the proper handling of diversity with respect to antennas. For example, systems and methods for remote L-band smart antenna distance measuring equipment may benefit from being prepared to provide diversity against interference, such as a multipath interference. A method can include determining which antenna of a plurality of antennas of an aircraft is preferred for communication with respect to distance measuring equipment. The method can also include selecting the antenna based on the determination.
Claims
1. A method, comprising: determining, by a processor, which antenna of a plurality of antennas of an aircraft is preferred for communication with respect to distance measuring equipment, wherein a criterion of the determination is which antenna is expected quality of communication with the distance measuring equipment; and selecting, by the processor, the antenna for communication with the distance measuring equipment based on the determination.
2. The method of claim 1, wherein a top antenna of the plurality of antennas is selected when a range to a distance measurement equipment ground station is greater than a predetermined threshold.
3. The method of claim 1, wherein a bottom antenna of the plurality of antennas is selected when a range to a distance measurement equipment ground station is less than a predetermined threshold.
4. The method of claim 1, wherein the determination is performed after identifying whether the aircraft is less than a predetermined threshold distance from a distance measurement equipment ground station.
5. The method of claim 1, wherein the determining comprises transmitting a plurality of interrogations to establish a link from an aircraft interrogator to a replying ground transponder; and assessing quality of the replies to determine the antenna to be preferred for communication.
6. The method of claim 1, wherein the determining comprises comparing signal strength and/or signal reply time between or among antennas in order to select the antenna.
7. An apparatus, comprising: at least one processor; and at least one memory including computer program instructions, wherein the at least one memory and the computer program instructions are configured to, with the at least one processor, cause the apparatus at least to determine which antenna of a plurality of antennas of an aircraft is preferred for communication with respect to distance measuring equipment, wherein a criterion of the determination is which antenna is expected quality of communication with the distance measuring equipment; and select the antenna for communication with the distance measuring equipment based on the determination.
8. The apparatus of claim 7, wherein the at least one memory and the computer program instructions are configured to, with the at least one processor, cause the apparatus at least to select a top antenna of the plurality of antennas when a range to a distance measurement equipment ground station is greater than a predetermined threshold.
9. The apparatus of claim 7, wherein the at least one memory and the computer program instructions are configured to, with the at least one processor, cause the apparatus at least to select a bottom antenna of the plurality of antennas when a range to a distance measurement equipment ground station is less than a predetermined threshold.
10. The apparatus of claim 7, wherein the at least one memory and the computer program instructions are configured to, with the at least one processor, cause the apparatus at least to perform the determination after identifying whether the aircraft is less than a predetermined threshold distance from a distance measurement equipment ground station.
11. The apparatus of claim 7, wherein the determination comprises transmitting a plurality of interrogations to establish a link from an aircraft interrogator to a replying ground transponder; and assessing quality of the replies to determine the antenna to be preferred for communication.
12. The apparatus of claim 7, wherein the determination comprises comparing signal strength and/or signal reply time between or among antennas in order to select the antenna.
13. An apparatus, comprising: means for determining which antenna of a plurality of antennas of an aircraft is preferred for communication with respect to distance measuring equipment, wherein a criterion of the determination is which antenna is expected quality of communication with the distance measuring equipment; and means for selecting the antenna for communication with the distance measuring equipment based on the determination.
14. The apparatus of claim 13, wherein a top antenna of the plurality of antennas is selected when a range to a distance measurement equipment ground station is greater than a predetermined threshold.
15. The apparatus of claim 13, wherein a bottom antenna of the plurality of antennas is selected when a range to a distance measurement equipment ground station is less than a predetermined threshold.
16. The apparatus of claim 13, wherein the determination is performed after identifying whether the aircraft is less than a predetermined threshold distance from a distance measurement equipment ground station.
17. The apparatus of claim 13, wherein the means for determining comprises means for transmitting a plurality of interrogations to establish a link from an aircraft interrogator to a replying ground transponder; and means for assessing quality of the replies to determine the antenna to be preferred for communication.
18. The apparatus of claim 13, wherein the means for determining comprises means for comparing signal strength and/or signal reply time between or among antennas in order to select the antenna.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) For proper understanding of the invention, reference should be made to the accompanying drawings, wherein:
(2)
(3)
(4)
DETAILED DESCRIPTION
(5) The integration of a DME function with the TCAS/Mode S/ADS-B RF functions within a smart antenna may require a higher output power, typically about 400 Watts at the antenna terminals, and therefore it may become difficult to provide enough RF power down a 3 dB (half power) lossy coax to a bottom omni-directional antenna that may be required for DME transmission. This may necessitate the need for an additional smart antenna on the bottom of the aircraft, increasing system cost and weight while also reducing system reliability.
(6) Certain embodiments of the present invention may provide for a DME antenna diversity function that may improve system performance during multipath interference, and create a method for reducing the amount of power on a bottom DME omni-antenna. Thus, in certain embodiments less power may be needed for a bottom DME omni-antenna.
(7) Certain embodiments of the present invention may use a top smart antenna for longer ranges that may require higher power, and may use the top smart antenna or bottom omni-blade antennas at closer ranges where lower power use is acceptable and where multipath angles are more prevalent in creating an interfering multipath problem.
(8) During transmission of aircraft DME interrogations, an optimal reception path can be chosen for one or more replies that also indicates which of two or more antennas to select for the optimal RF link between the interrogation system and the replying system.
(9) As an example, during a DME search mode (defined in RTCA DO-189, MOPS for Airborne DME, which is hereby incorporated by reference in full), several hundred interrogations per second may be sent to establish a link from an aircraft interrogator to the replying ground transponder. These interrogations can be used to establish which antenna to use based on the quality or other parameters of the replies. For instance, the signal strength and/or the signal reply time between antennas can be compared in order to select the optimal link.
(10)
(11)
(12) At shorter ranges, the antenna pattern gain may be in-line with the reflected signal from the ground, and thus, the reflected signal strength may interfere with either the top or the bottom antenna. The antenna with the least amount of multipath interference due to antenna shielding or due to the phase of the received multipath signal versus the direct path signal may be used.
(13) Certain embodiments of the present invention permit a single smart antenna on top of the aircraft to be used for a DME function in conjunction with a standard ATC bottom omni-directional blade antenna, without the burden of supplying a 3 dB higher (double) amount of RF power through the 3 dB loss of the coax from the smart antenna to the omni-antenna. This approach may thus simplify the power supply and RF amplifier design of the smart antenna, increasing reliability and reducing cost.
(14) Certain embodiments of the present invention also improve DME link reliability from what is possible with conventional DME systems that are more susceptible to multipath interference conditions.
(15)
(16) For example, a top antenna of the plurality of antennas can be selected when a range to a distance measurement equipment ground station is greater than a predetermined threshold. Alternatively, in some cases a bottom antenna of the plurality of antennas can be selected when a range to a distance measurement equipment ground station is less than a predetermined threshold. Thus, in certain embodiments determination of which antenna can be made after identifying whether the aircraft is less than a predetermined threshold distance from a distance measurement equipment ground station. In a sense, then, there can be two or more criteria: a distance criterion and then some further criterion, such as a criterion related to multipath interference.
(17) In certain embodiments, the determining can include, at 212, transmitting a plurality of interrogations to establish a link from an aircraft interrogator to a replying ground transponder. The determining can further include, at 214, assessing quality or other parameters of the replies to determine the antenna to be preferred for communication. For example, the determining can include, at 216, comparing signal strength and/or signal reply time between or among antennas in order to select the antenna.
(18) The method can further include, at 230, signaling for a DME application over the determined/selected antenna. This signaling can be performed for the remainder of the DME communications, or the determination/selection at 210 and 220 can be repeatedly performed.
(19)
(20) The avionics system 330 can include at least one processor 332 and at least one memory 334, which can include computer program instructions for performing the method illustrated in
(21) The at least one processor 332 of
(22) One having ordinary skill in the art will readily understand that the invention as discussed above may be practiced with steps in a different order, and/or with hardware elements in configurations which are different than those which are disclosed. Therefore, although the invention has been described based upon these preferred embodiments, it would be apparent to those of skill in the art that certain modifications, variations, and alternative constructions would be apparent, while remaining within the spirit and scope of the invention. In order to determine the metes and bounds of the invention, therefore, reference should be made to the appended claims.
PARTIAL LIST OF ABBREVIATIONS
(23) TCAS traffic collision avoidance system or traffic alert and collision avoidance system
(24) ATCRBS air traffic control radar beacon system
(25) ADS-B automatic dependent surveillance-broadcast
(26) DME distance measuring equipment
(27) RF radio frequency
(28) RTCA Radio Technical Commission for Aeronautics