The present invention discloses an improved antenna arrangement.
So called array antennas, i.e. antennas with a plurality of antenna elements arranged in an array, are common in, for example, systems for cellular telephony. A common embodiment of an array antenna is a so called column antenna with dual polarized antenna elements, in which antenna elements with differing polarizations are arranged in pairs, with each pair comprising one antenna element of each polarization, usually arranged as a cross.
A common problem with array antennas, particularly column antennas, in cellular telephony systems is that the azimuth beam width obtained by means of the individual antenna elements is sufficiently big to cause a variety of problems, among them interference.
As explained above, there is a need for a solution by means of which an antenna arrangement, such as an antenna column with N columns, can be given reduced half power beam width in the antenna beams which are obtained.
Such a solution is offered by the present invention in that it discloses an antenna arrangement which comprises a plurality of antenna units, with each antenna unit comprising:
According to the invention, the antenna units in the antenna arrangement are arranged to cooperate in that their networks and power dividers are arranged so that:
As will be shown in the detailed description in this text, such an antenna arrangement offers antenna beams with a lower half power beam width than previous antenna arrangements.
Suitably, the first phase relation is zero degrees and the second phase relation is 180 degrees.
In one embodiment of the invention, the ratio between the major and the minor part is the same in at least two power dividers.
In one embodiment of the invention, the ratio in a power divider is larger than 1:1 or smaller than 1:1.
In one embodiment of the invention, the antenna arrangement comprises a plurality of more than two antenna units.
In one embodiment of the invention, first and second adjacent antenna units cooperate in pairs, so that each of the two output ports of the network in one of the antenna units in a pair are connected to one antenna element of the first polarization in both antenna units, and each of the two output ports of the other network in said pair are connected to one antenna element of the other polarization in both antenna units.
In one embodiment of the invention, the antenna units cooperate in pairs, so that the major part from the splitters in cooperating antenna units are connected to either the sum or difference port of adjacent antenna networks, and the minor part is connected to the other of the sum or difference port of adjacent antenna networks.
In one embodiment of the invention, the ratio in the power divider is complex, i.e. it involves both amplitude and phase, in order to, for example, affect the polarization of the signals, and also to simplify the design demands on the power dividers.
In one embodiment of the invention, the antenna arrangement is reciprocal, i.e. the antenna units are arranged to be used both for transmission and for reception, so that the divider functions as a divider upon transmission and as a combiner upon reception.
These and other embodiments of the invention, as well as advantages gained by means of the invention, will be described in more detail in the description given below.
The invention will be described in more detail in the following, with reference to the appended drawings, in which
As shown in
The function of the network is illustrated in
A first example of an embodiment 200 of the invention will now be described with reference to
Each antenna unit 220, 230, comprises an input port 201, 203, which is connected to a power divider or splitter 202, 204. The dividers divide an input signal into a major and a minor output signal, with a ratio 1:X, where the ratio is defined as the power ratio between the output signals Suitably but not necessarily, the ratio factor X is the same for all of the dividers in the antenna arrangement, and also suitably, the factor “X” is larger than or smaller than 1, so that the divider does not divide into equal parts. The ratio can also, in one embodiment, be varied, for example during operation of the antenna arrangement, in order to vary the beam width.
Each antenna unit also comprises a network 211, 216, with the function described in connection to
In the example 200 of
Furthermore, as shown in
Similarly, the first output port 212 of the network 216 is connected to the antenna element 215 of the first polarization, which is the antenna element of the first polarization of the adjacent antenna unit 220, and the second output port 213 of the network 216 is connected to the antenna element 217 of the first polarization, which is the antenna element of the first polarization of the antenna unit 230.
By means of the embodiment 200 of
It should be mentioned here that although the antenna arrangement of the invention has been described by means of examples which are used for transmission, the inventive arrangement is suitably reciprocal, so that it can be used both for transmission and/or for reception. Thus, if the arrangement is used for reception, the networks (with reference to
Thus, as shown in
An embodiment of the invention will now be shown and described in order to illustrate that according to the invention, it is also possible to let antenna units cooperate in pairs, so that the major part from the dividers in both antenna units of a pair are connected to either the sum or difference port of an adjacent antenna network, and the minor part is connected to the other of the sum or difference port of adjacent antenna networks. In such an embodiment, the outputs from the antenna networks can however be connected to antenna elements of antenna units “outside” the cooperating pair, as will be shown by means of the embodiment 300 of
However, the outputs from the networks 211, 216 are, as opposed to the embodiment of
As can also be seen in
A principle which has been used in the embodiment 300 of
Thus, the principle of using two adjacent antenna elements of the same polarization for the outputs of a network is adhered to in this embodiment as well.
As shown, the first output port of the network 211 of the first antenna unit 220 is connected to the antenna element 214 of the second polarization of the first antenna unit, and the second output port of the network 211 is thus connected to the adjacent antenna element 218 of the same polarization, i.e. the second polarization.
A table is given below which shows the antenna elements, AE, to which the first and second output ports (“output port 1, 2”) of each network are connected.
A principle which has been used in the embodiment 400 of
As can be seen, the principle of letting the first and second output ports of a network be connected to first and second adjacent antenna elements of the same polarization is adhered to in the embodiment 400 as well. The man skilled in the field will realize that this principle can be used in a large number of variations, all of which fall within the scope of the present invention.
A few observations can be given regarding the nature of the networks and dividers which are used in the present invention: As explained in connection to
However, an antenna beam can be obtained which points in a different direction relative to the antenna elements, if the networks instead are designed so that a signal which is input at the sum input port of a network is output at both output ports with a phase relation of “A” between the signals at the two output ports and a signal which is input at the difference port of the network is output at both output ports with a phase relation of A+φ between the signals at the two output ports. Thus, in
Regarding the dividers, there are no demands for a certain phase relationship between the signals at the output ports in order to obtain the desired effect.
Finally, it should be pointed out that although the invention has been described with the aid of embodiments in which each antenna unit comprises a first and a second antenna element, the invention is not restricted to antenna units with only one pair of antenna elements each. Thus, in many embodiments of the invention, each antenna unit will comprise a multitude of paired antenna elements, with one antenna element of each polarization.
The invention is not limited to the examples of embodiments described above and shown in the drawings, but may be freely varied within the scope of the appended claims.
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/EP09/56444 | 5/27/2009 | WO | 00 | 11/16/2011 |