Claims
- 1. A method for utilizing beam ports of a beam forming network, in a multi-element radiator array for creating receive/transmit channels having several antenna beams within a desired coverage area, comprising the steps of:arranging at least one signal combiner separate from the beam forming network; combining, by means of the at least one signal combiner separate from the beam forming network, at least one beam port with a nonadjacent, previously terminated, outermost beam port; and forming a receive/transmit channel within a number of desired receive/transmit channels by combining, by means of said at least one signal combiner having two input terminals and one output terminal, a beam port and a nonadjacent, previously terminated outermost beam port of the beam forming network, into one receive/transmit channel out of a plurality of receive/transmit channels, said beam port being combined with the nonadjacent, previously terminated, outermost beam port of the beam forming network whereby the combined beam ports represent beams being most distant from each other in the coverage area to thereby obtain a desired power and sensitivity distribution without causing an appreciable change in side-lobe coverage.
- 2. A method according to claim 1, wherein:the beam forming network is a 6×6 Butler matrix; output beam port number 6 is combined with output beam port number 2.
- 3. A method according to claim 1, wherein:the beam forming network is a 6×6 Butler matrix; and output beam port number 1 is combined with output beam port number 5.
- 4. A method according to claim 1, wherein:the beam forming network is an 8×8 Butler matrix; and output beam port number 8 is combined with output beam port numbers 6 and 2.
- 5. A method according to claim 1, wherein:the beam forming network is an 8×8 Butler matrix; and output beam port number 1 is combined with output beam port number 7 and 3.
- 6. A method for utilizing beam ports of a beam forming network, in a multi-element radiator array for creating receive/transmit channels having several antenna beams within a desired coverage area, comprising the steps of:arranging a first signal combiner and a second signal combiner each separate from the beam forming network; forming a first receive/transmit channel within a number of desired receive/transmit channels, by combining, by means of the first signal combiner having three input terminals and one output terminal, a first outermost, previously terminated, beam port with two nonadjacent beam ports of the beam forming network, into a first receive/transmit channel out of a plurality of receive/transmit channels; and forming a second receive/transmit channel within a number of desired receive/transmit channels, by combining, by means of a second signal combiner having three input terminals and one output terminal, a second outermost beam port with two other nonadjacent beam ports of said beam forming network, into a second receive/transmit channel out of said plurality of receive/transmit channels, said previously terminated, first and second outermost beam ports being combined with the respective nonadjacent beam ports to thereby obtain a desired power and sensitivity distribution without causing an appreciable change in side-lobe coverage.
- 7. An antenna arrangement for utilizing beam ports of a beam forming network, in connection with a multi-element radiator antenna for obtaining receive/transmit channels having more antenna beams within a desired coverage area, the antenna arrangement comprising:at least one signal combiner separate from the beam forming network, the at least on signal combiner having two input terminals and one output terminal for combining at least one previously terminated, outermost beam port with a nonadjacent beam port, to form a receive/transmit channel, wherein the receive/transmit channel uses the at least one signal combiner separate from the beam forming network to obtain a desired power and sensitivity distribution without causing an appreciable change in side-lobe coverage, said previously terminated, outermost beam port being combined with a nonadjacent beam port of the beam forming network whereby the combined beam ports represent beams being most distant from each other in the coverage area.
- 8. The antenna arrangement according to claim 7, wherein said beam forming network includes a Butler matrix.
- 9. The antenna arrangement according to claim 7, wherein:the beam forming network is a 6×6 Butler matrix; and output beam port number 6 is combined with output beam port number 2.
- 10. The antenna arrangement according to claim 7, wherein:the beam forming network is a 6×6 Butler matrix; and output beam port number 1 is combined with output beam port number 5.
- 11. The antenna arrangement according to claim 7, wherein:the beam forming network is an 8×8 Butler matrix; and output beam port number 8 is combined with output beam port numbers 6 and 2.
- 12. The antenna arrangement according to claim 7, wherein:the beam forming network is an 8×8 Butler matrix; and output beam port number 1 is combined with output beam port number 7 and 3.
- 13. An antenna arrangement for utilizing beam ports of a beam forming network, in connection with a multi-element radiator antenna for obtaining receive/transmit channels having more antenna beams within a desired coverage area, the antenna arrangement comprising:a first and a second signal combiner each separate from the beam forming network for combining at least one previously terminated, outermost beam port with two nonadjacent beam ports, to form receive/transmit channels which use the first and second signal combiners to obtain desired power and sensitivity distributions without causing an appreciable change in side-lobe coverage, wherein the first signal combiner separate from the beam forming network has at least three input terminals and one output terminal, the three input terminals of the first signal combiner being connected to a first outermost beam port, a first nonadjacent beam port, and a second nonadjacent beam port respectively, thereby forming a first receive/transmit channel from the combined receive/transmit channels; the second signal combiner separate from the beam forming network has at least three input terminals and one output terminal, the three input terminals being connected to a second outermost beam port, a third nonadjacent beam port, and a fourth nonadjacent beam port respectively, thereby forming a second receive/transmit channel from the combined receive/transmit channels; such that the antenna arrangement produces a better adapted power/sensitivity distribution for overlapping cells in a telecommunication system.
- 14. The antenna arrangement according to claim 13, wherein:the beam forming network is a 6×6 Butler matrix; and one of the combinations of output port number 6 being combined with output beam port number 2 and output port number 1 being combined with output beam port number 5.
- 15. The antenna arrangement according to claim 13, wherein:the beam forming network is a 8×8 Butler matrix; and one of the combinations of output port number 8 being combined with output beam port numbers 6 and 2 and output port number 1 being combined with output beam port numbers 7 and 3.
Priority Claims (1)
Number |
Date |
Country |
Kind |
9701684 |
May 1997 |
SE |
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Parent Case Info
This application is a continuation of U.S. patent application Ser. No. 09/072,332, entitled “BUTLER BEAM PORT COMBINING FOR HEXAGONAL CELL COVERAGE” filed on May 4, 1998 now U.S. Pat. No. 6,081,233.
US Referenced Citations (4)
Foreign Referenced Citations (1)
Number |
Date |
Country |
8804837 |
Jun 1988 |
WO |
Continuations (1)
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Number |
Date |
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Parent |
09/072332 |
May 1998 |
US |
Child |
09/443362 |
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US |