The present disclosure relates to an array antenna arrangement comprising at least one set of at least two sub-array antennas, where each set of sub-array antennas is mounted such that a corresponding array antenna column is formed.
An AAS (Active Antenna System) for mobile cellular communication networks is normally required to have a broad primary coverage angular range in the horizontal plane, while in the vertical plane, the primary coverage angular range is significantly smaller. Desired vertical angular range for the primary coverage depends on cell size, height position of the AAS, user distribution, path loss, etc. Therefore, an AAS typically consists of an array of vertical sub-arrays, in order to optimize the array aperture and number of radio chains with respect to the desired primary coverage angular range. The primary coverage angular range is here defined as the angular range where the AAS is to ensure high antenna gain and by that high EIRP (Effective Isotropic Radiated Power) and EIS (Effective Isotropic Sensitivity).
An example of an AAS product comprises 32 radio chains feeding an array of vertical sub-arrays in a 2 row times 8 column configuration. To obtain high antenna gain given the few radio chains, the vertical sub-arrays needs to be quite large, for example 6-element sub-arrays. Since there are only two rows in that case, the beamforming capability in the vertical plane will be somewhat limited, but, for instance, there are room for some digital tilt in the vertical plane.
However, the large sub-arrays will give sub-array radiation patterns with quite narrow vertical beamwidths. This cannot be compensated for by the offered digital tilt and thus the primary vertical coverage angular range of the AAS also becomes quite narrow.
To partly overcome this limitation, phase-shifters can be added within the sub-arrays allowing for semi-static electrical tilt setting of the sub-arrays. These can typically consist of electro-mechanically controlled phase shifters composed of movable parts accomplishing true-time delay phase shifting. The analog tilt setting can be used to semi-statically adjust the vertical coverage angular range to the conditions valid at the specific installation etc.
To reduce interference, it is important that the radiation above the vertical coverage angular range can be minimized. I.e. it is beneficial with low upper side lobe levels in the vertical plane. For broadcast beams it is also crucial with low side lobe levels to reduce the risk of selecting wrong UE's to the cell. Typical, requirements can be that the first upper side lobe level should be <−15 dB, but in some cases even lower side lobe levels are requested depending on the radio network situation at the specific site.
Desired vertical side lobe level can be accomplished by having an amplitude and/or phase taper over the excitations of the antenna elements in the vertical plane. However, suppressing the side lobe levels normally comes with a price of reduced antenna gain and if done digitally also by reduced utilization of the radio power resources (in case of amplitude taper).
For the example above, amplitude and/or phase taper has to be accomplished in the hardware design since there are only two rows in the antenna array. This means that for an AAS structure of the described type, the side lobe suppression will be given by the hardware design and cannot be digitally adjusted by the digital weight factors exciting the sub-arrays.
There is thus a need for an improved beamforming capability in the vertical plane for an AAS where reduced side lobe levels are obtained.
It is an object of the present disclosure to provide improved beamforming capability in the vertical plane for an array antenna, such as an AAS, where reduced side lobe levels are obtained.
Said object is obtained by means of an array antenna arrangement comprising at least one set of at least two sub-array antennas, where each set of sub-array antennas is mounted such that a corresponding array antenna column is formed. For each polarization in each of sub-array antennas each sub-array antenna comprises a corresponding sub-array antenna port that is associated with a certain sub-array antenna beam pointing direction setting, and each sub-array antenna port is connected to a corresponding radio chain in a set of radio chains. Each set of radio chains is adapted to provide a corresponding digital antenna beam pointing direction setting. In at least one set of sub-array antennas, at least one sub-array beam pointing direction setting differs from a corresponding digital antenna beam pointing direction setting.
This provides side lobe level enhancements and reconfigurability by means of software control for an array antenna, such as an AAS.
According to some aspects, each sub-array antenna comprises at least two sub sub-arrays having one or two common polarizations, each sub sub-array comprising at least one antenna element.
This means that there can be two or more rows of sub-array antennas in the array antenna arrangement. The array antenna arrangement can either be adapted for only a single polarization or two polarizations that according to some aspects are mutually orthogonal.
According to some aspects, each sub-array antenna beam pointing direction setting is obtained by means of at least one controllable phase shifter for each sub-array antenna port.
In this way, a variable sub-array antenna beam pointing direction setting is obtained.
According to some aspects, each sub-array antenna beam pointing direction setting is obtained by means of fixed predetermined phase shifts.
In this way, a sub-array antenna beam pointing direction setting is obtained in an uncomplicated and reliable manner.
According to some aspects, the sub-array antenna beam pointing direction settings are the same for the sub-array antenna ports of at least one set of sub-array antennas.
According to some aspects, the sub-array antenna beam pointing direction settings are mutually different for the sub-array antenna ports of at least one set of sub-array antennas.
This means that the sub-array antenna beam pointing direction settings either can be the same and/or different for the sub-array antenna ports of least one array antenna column in the array antenna arrangement. As a consequence, one or more antenna columns can have sub-array antenna ports with the same sub-array antenna beam pointing direction settings, and one or more other antenna columns can have antenna ports with mutually different sub-array antenna beam pointing direction settings. It is also possible that all sub-array antenna ports of all array antenna column in the array antenna arrangement either have the same sub-array antenna beam pointing direction settings or mutually different sub-array antenna beam pointing direction settings. This provides versatility.
According to some aspects, the digital antenna beam pointing direction settings are the same for those sets of radio chains that are connected to the sub-array antenna ports of at least one set of sub-array antennas.
According to some aspects, the digital antenna beam pointing direction settings are mutually different for those sets of radio chains that are connected to the sub-array antenna ports of at least one set of sub-array antennas.
This means that the digital antenna beam pointing direction settings either are the same and/or different for the sub-array antenna ports of least one array antenna column in the array antenna arrangement. As a consequence, one or more antenna columns can have sub-array antenna ports with the same digital antenna beam pointing direction settings, and one or more other antenna columns can have antenna ports with mutually different digital antenna beam pointing direction settings. It is also possible that all sub-array antenna ports of all array antenna column in the array antenna arrangement either have the same digital antenna beam pointing direction settings or mutually different digital antenna beam pointing direction settings. This provides versatility.
This object is also obtained by means of methods that are associated with the above advantages.
The present disclosure will now be described more in detail with reference to the appended drawings, where:
Aspects of the present disclosure will now be described more fully hereinafter with reference to the accompanying drawings. The different devices, systems, computer programs and methods disclosed herein can, however, be realized in many different forms and should not be construed as being limited to the aspects set forth herein. Like numbers in the drawings refer to like elements throughout.
The terminology used herein is for describing aspects of the disclosure only and is not intended to limit the invention. As used herein, the singular forms “a”, “an” and “the” are intended to include the plural forms as well, unless the context clearly indicates otherwise.
As shown in
Each set 2a, 2b, 2c, 2d, 2e, 2f, 2g, 2h of sub-array antennas is mounted such that a corresponding array antenna column is formed, here a vertical linear array antenna column, extending along a vertical extension V. According to some aspects, as shown for this example, the sets 2a, 2b, 2c, 2d, 2e, 2f, 2g, 2h of sub-array antennas is mounted such that they extend along a horizontal extension H. According to some aspects, each array antenna column formed can extend in any direction, and the antenna elements can be mutually offset in a constant or interleaving manner such that either a tilted antenna column or a straight and broaden antenna column is obtained.
With reference also to
The first sub-array antenna 3a is shown in detail in
The first dual polarized antenna element 6a, 6b, second dual polarized antenna element 7a, 7b and third dual polarized antenna element 8a, 8b are comprised in a first sub sub-array 17, and the fourth dual polarized antenna element 9a, 9b, the fifth dual polarized antenna element 10a, 10b and the sixth dual polarized antenna element 11a, 11b are comprised in a second sub sub-array 18.
For each polarization P1, P2, each sub-array antenna 3a, 3b comprises a corresponding sub-array antenna port 13, 15; 14, 16 that is associated with a certain sub-array antenna beam pointing direction setting S1, S2, S3, S4. Each sub-array antenna port 13, 15; 14, 16 is connected to a corresponding radio chain 5a, 5c; 5b, 5d in a set of radio chains 5a, 5c; 5b, 5d. Each set of radio chains 5a, 5c; 5b, 5d is adapted to provide a corresponding digital antenna beam pointing direction setting S5, S6. According to some aspects, the antenna beam pointing direction settings S1, S2, S3, S4, S5, S6 relates to an antenna beam pointing direction in a vertical plane, extending along the vertical extension V. This can be referred to as a vertical antenna beam pointing direction.
As shown in
Correspondingly, for the second polarization P2, the first sub-array antenna 3a comprises a third controllable phase shifter 12c connected to the first antenna element 6b, the second antenna element 7b, and the third antenna element 8b of the second polarization P2, and a fourth controllable phase shifter 12d connected to the fourth antenna element 9b, the fifth antenna element 10b and the sixth antenna element 11b of the second polarization P2. This means that the third controllable phase shifter 12c is connected to the antenna elements of the second polarization P2 in the first sub sub-array 17, and the fourth controllable phase shifter 12d is connected to the antenna elements of the second polarization P2 in the second sub sub-array 18.
Furthermore, the first controllable phase shifter 12a and the second controllable phase shifter 12b are combined to a first sub-array antenna port 13, which further is connected to a first radio chain 5a. Correspondingly, the third controllable phase shifter 12c and the fourth controllable phase shifter 12d are combined to a second sub-array antenna port 14, which further is connected to a second radio chain 5b.
A corresponding arrangement is applied for the second sub-array antenna 3b that comprises a third sub-array antenna port 15 which is connected to a third radio chain 5c, and a fourth sub-array antenna port 16 which is connected to a fourth radio chain 5d.
With reference to both
In the same manner, a third sub-array antenna beam pointing direction setting S3 is obtained at the third sub-array antenna port 15, and a fourth sub-array antenna beam pointing direction setting S4 is obtained at the fourth sub-array antenna port 16.
Furthermore, with reference to
In this manner, for the array antenna arrangement 1 according to the present example, 32 sub-array antenna ports and 32 radio chains are provided, where each group of 16 sub-array antenna ports and 16 corresponding radio chains is associated with one common polarization P1, P2.
According to the present disclosure, in at least one set 2a, 2b, 2c, 2d, 2e, 2f, 2g, 2h of sub-array antennas 3a, 3b, at least one sub-array beam pointing direction setting S1, S3; S2, S4, differs from a corresponding digital antenna beam pointing direction setting S5, S6.
This means that, for example, a vertical digital antenna beam pointing direction setting for all sets 2a, 2b, 2c, 2d, 2e, 2f, 2g, 2h of sub-array antennas can be the same and set to 7°, and a vertical sub-array antenna beam pointing direction setting for all sets 2a, 2b, 2c, 2d, 2e, 2f, 2g, 2h of sub-array antennas can be the same and set to another value.
Illustrated examples will be discussed in the following, where the antenna beam pointing direction is in the vertical plane.
In
The
Table 1 below summarizes gain and upper side lobe suppression (USLS) for the examples above, “uniform” for the case without taper, “taper” for the tapered case and “subarray tilt” for sub-array antenna beam pointing direction setting in degrees.
The
Comparing the results in
It should be noted that, naturally, there are other alternatives when it comes to having pluralities of subarrays having different antenna beam pointing direction settings. For instance, in the example above there is two pluralities of sub-arrays with different sub-array antenna beam pointing direction setting, divided in a first plurality in the first row 19 and a second plurality in the second row 20. However, two or more pluralities with different sub-array antenna beam pointing direction settings can be distributed differently over the array antenna arrangement 1. Even different sub sub-arrays can have mutually different sub-array antenna beam pointing direction setting.
According to some aspects, the digital antenna beam pointing direction setting S5, S6 is adjusted for each sub-array antenna port 13, 15; 14, 16, and the thereafter the sub-array beam pointing direction settings S1, S2, S3, S4 associated with corresponding sub-array antenna ports 13, 14, 15, 16 are adjusted such that a desired vertical side lobe level is obtained for the array antenna arrangement 1.
According to some aspects, each sub-array antenna 3a, 3b comprises at least two sub sub-arrays 17, 18 having one or two common polarizations P1, P2, each sub sub-array 17, 18 comprising at least one antenna element 6a, 6b, 7a, 7b 8a, 8b; 9a, 9b, 10a, 10b, 11a; 11b.
This means that there can be two or more rows of sub-array antennas in the array antenna arrangement 1. The array antenna arrangement 1 can either be adapted for only a single polarization or two polarizations that according to some aspects are mutually orthogonal.
According to some aspects, each sub-array antenna beam pointing direction setting S1, S2; S3, S4 is obtained by means of at least one controllable phase shifter 12a, 12b, 12c, 12d for each sub-array antenna port 13, 14; 15, 16.
In the example shown with reference to
According to some aspects, each sub-array antenna beam pointing direction setting S1, S2; S3, S4 is obtained by means of fixed predetermined phase shifts.
In this case, no controllable phase shifters are used. A combination of controllable phase shifters and fixed predetermined phase shifts is also conceivable. Fixed predetermined phase shifts can for example be realized by means of different electrical lengths in a distribution network or by means of components that add a certain fixed electrical length.
According to some aspects, the sub-array antenna beam pointing direction settings S1, S2, S3, S4 are the same for the sub-array antenna ports 13, 14; 15, 16 of at least one set 2a, 2b, 2c, 2d, 2e, 2f, 2g, 2h of sub-array antennas 3a, 3b.
This means that the sub-array antenna beam pointing direction settings S1, S2, S3, S4 are the same for the sub-array antenna ports of least one array antenna column in the array antenna arrangement 1.
According to some aspects, the sub-array antenna beam pointing direction settings S1, S2, S3, S4 are mutually different for the sub-array antenna ports 13, 14; 15, 16 of at least one set 2a, 2b, 2c, 2d, 2e, 2f, 2g, 2h of sub-array antennas 3a, 3b.
This means that the sub-array antenna beam pointing direction settings S1, S2, S3, S4 are different for the sub-array antenna ports of least one array antenna column in the array antenna arrangement 1. As a consequence, one or more antenna columns can have sub-array antenna ports with the same sub-array antenna beam pointing direction settings S1, S2, S3, S4, and one or more other antenna columns can have antenna ports with mutually different sub-array antenna beam pointing direction settings S1, S2, S3, S4. It is also possible that all sub-array antenna ports of all array antenna column in the array antenna arrangement either have the same sub-array antenna beam pointing direction settings or mutually different sub-array antenna beam pointing direction settings.
According to some aspects, the digital antenna beam pointing direction settings S5, S6 are the same for those sets of radio chains 5a, 5b; 5c, 5d that are connected to the sub-array antenna ports 13, 14; 15, 16 of at least one set 2a, 2b, 2c, 2d, 2e, 2f, 2g, 2h of sub-array antennas 3a, 3b.
This means that the digital antenna beam pointing direction settings S5, S6 are the same for the sub-array antenna ports of least one array antenna column in the array antenna arrangement 1.
According to some aspects, the digital antenna beam pointing direction settings S5, S6 are mutually different for those sets of radio chains 5a, 5b; 5c, 5d that are connected to the sub-array antenna ports 13, 14; 15, 16 of at least one set 2a, 2b, 2c, 2d, 2e, 2f, 2g, 2h of sub-array antennas 3a, 3b.
This means that the digital antenna beam pointing direction settings S5, S6 are different for the sub-array antenna ports of least one array antenna column in the array antenna arrangement 1. As a consequence, one or more antenna columns can have sub-array antenna ports with the same digital antenna beam pointing direction settings S5, S6, and one or more other antenna columns can have antenna ports with mutually different digital antenna beam pointing direction settings S5, S6. It is also possible that all sub-array antenna ports of all array antenna column in the array antenna arrangement either have the same digital antenna beam pointing direction settings S5, S6 or mutually different digital antenna beam pointing direction settings S5, S6.
Generally, the present disclosure relates to an array antenna arrangement 1 comprising at least one set 2a, 2b, 2c, 2d, 2e, 2f, 2g, 2h of at least two sub-array antennas 3a, 3b. Each set 2a, 2b, 2c, 2d, 2e, 2f, 2g, 2h of sub-array antennas 3a, 3b is mounted such that a corresponding array antenna column is formed. For each polarization P1, P2 in each set 2a, 2b, 2c, 2d, 2e, 2f, 2g, 2h of sub-array antennas 3a, 3b each sub-array antenna 3a, 3b comprises a corresponding sub-array antenna port 13, 15; 14, 16 that is associated with a certain sub-array antenna beam pointing direction setting S1, S2, S3, S4, and each sub-array antenna port 13, 15; 14, 16 is connected to a corresponding radio chain 5a, 5c; 5b, 5d in a set of radio chains 5a, 5c; 5b, 5d. Each set of radio chains 5a, 5c; 5b, 5d is adapted to provide a corresponding digital antenna beam pointing direction setting S5, S6. In at least one set 2a, 2b, 2c, 2d, 2e, 2f, 2g, 2h of sub-array antennas 3a, 3b, at least one sub-array beam pointing direction setting S1, S3; S2, S4, differs from a corresponding digital antenna beam pointing direction setting S5, S6.
With reference to
The method comprises:
According to some aspects, for at least one set 2a, 2b, 2c, 2d, 2e, 2f, 2g, 2h of sub-array antennas 3a, 3b, at least one sub-array beam pointing direction S1, S3, S2, S4 setting differs from the corresponding digital antenna beam pointing direction setting S5, S6.
According to some aspects, each sub-array antenna 3a, 3b has at least two sub sub-arrays 17, 18 using one or two common polarizations P1, P2, each sub sub-array 17, 18 using at least one antenna element 6a, 6b, 7a, 7b 8a, 8b; 9a, 9b, 10a, 10b, 11a; 11b.
According to some aspects, each sub-array antenna beam pointing direction setting S1, S2; S3, S4 is obtained by means of at least one controllable phase shifter 12a, 12b, 12c, 12d for each sub-array antenna port 13, 14; 15, 16.
According to some aspects, each sub-array antenna beam pointing direction setting S1, S2; S3, S4 is obtained by means of fixed predetermined phase shifts.
According to some aspects, the sub-array antenna beam pointing direction settings S1, S2, S3, S4 are the same for the sub-array antenna ports 13, 14; 15, 16 of at least one set 2a, 2b, 2c, 2d, 2e, 2f, 2g, 2h of sub-array antennas 3a, 3b.
According to some aspects, the sub-array antenna beam pointing direction settings S1, S2, S3, S4 are mutually different for the sub-array antenna ports 13, 14; 15, 16 of at least one set 2a, 2b, 2c, 2d, 2e, 2f, 2g, 2h of sub-array antennas 3a, 3b.
According to some aspects, the digital antenna beam pointing direction settings S5, S6 are the same for those sets of radio chains 5a, 5b; 5c, 5d that are connected to the sub-array antenna ports 13, 14; 15, 16 of at least one set 2a, 2b, 2c, 2d, 2e, 2f, 2g, 2h of sub-array antennas 3a, 3b.
According to some aspects, the digital antenna beam pointing direction settings S5, S6 are mutually different for those sets of radio chains 5a, 5b; 5c, 5d that are connected to the sub-array antenna ports 13, 14; 15, 16 of at least one set 2a, 2b, 2c, 2d, 2e, 2f, 2g, 2h of sub-array antennas 3a, 3b.
According to some aspects, the present disclosure relates to active antenna systems (AAS) consisting of array of sub-arrays where phase-shifters are added within the sub-arrays allowing for semi-static electrical tilt setting of the sub-arrays, for instance, consisting of electro-mechanical controlled phase shifters composed of movable parts accomplishing true-time delay phase shifting.
A semi-static tilt setting of the sub-arrays is combined with a digital tilt setting for the sub-array excitations and thereby giving the possibility to control, adjust and reconfigure the upper vertical side lobe levels by means of software control.
For a desired vertical beam pointing direction θD, the tilt setting for a sub-array can be somewhat larger than the desired vertical beam pointing direction θD while the digital tilt is set to the same value as the desired vertical beam pointing direction θD. By over-tilting the sub-arrays, the vertical pattern of the sub-arrays will suppress the first upper side lobe. The amount of over-tilting of the sub-arrays will determine the suppression of the first upper side lobe level. Thereby, the side lobe level can be controlled and reconfigured by the setting of sub-array tilt in combination with the digital tilt for proper pointing direction.
A possibility for side lobe level enhancements and reconfigurability is thus provided by means of software control in AAS products.
The present disclosure is not limited to the example above, but may vary freely within the scope of the appended claims. For example, the present disclosure is applicable for any suitable array antenna, not only AAS products.
Filing Document | Filing Date | Country | Kind |
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PCT/SE2020/050288 | 3/18/2020 | WO |