Method and devices for providing backhaul links
An aerial base station is disclosed comprising a directive backhaul antenna for obtaining a backhaul link to a ground-based donor base station. The directive backhaul antenna is arranged on a body of the aerial base station such that a direction of a main beam of the directive backhaul antenna towards the donor base station is essentially parallel to an axis of a largest dimension of the directive backhaul antenna. The directive backhaul antenna is mounted such that the axis of the largest dimension is parallel to the body of the aerial base station.
1 . A method performed in an aerial base station comprising a directive backhaul antenna for providing backhaul connectivity to a ground-based donor base station, the method comprising:
orienting the aerial base station to align a broad beam towards the donor base station, the broad beam provided by the directive backhaul antenna;
activating further antenna elements of the array to realize a narrower beam;
orienting the aerial base station to align the narrower beam towards the donor base station to provide the backhaul connectivity; activating a subset of antenna elements and orienting the aerial base station towards the donor base station; repeating the activating of subsets of antenna elements until a desired channel quality is obtained to the donor base station; and setting up the backhaul connectivity using a selected beam giving the desired quality.
2 . The method as claimed in claim 1 , comprising activating at least a subset of antenna elements of an array of the backhaul antenna to provide the broad beam.
3 . The method as claimed in claim 2 , comprising activating all antenna elements of the array to create the narrower beam having increased directional antenna gain.
4 . The method as claimed in claim 1 , comprising steering the aerial base station to a set of pre-defined orientations for enabling beam alignment using an array with fixed beam direction.
5 . The method as claimed in claim 1 , comprising rotating the aerial base station based on a set of pre-configured rotation angles in an azimuth plane for enabling beam alignment.
6 . The method as claimed in claim 1 , comprising detecting a lack of stability of the aerial base station and activating only a subset of the antenna elements for providing a broad beam to maintain a robust alignment of the beam towards the donor base station.
7 . An aerial base station comprising a directive backhaul antenna for obtaining a backhaul link to a ground-based donor base station, the directive backhaul antenna being arranged on a body of the aerial base station such that a direction of a main beam of the directive backhaul antenna towards the donor base station is essentially parallel to an axis of a largest dimension of the directive backhaul antenna, the directive backhaul antenna being mounted such that the axis of the largest dimension is parallel to the body of the aerial base station, and comprising processing circuitry configured to cause a controller arranged in the aerial base station to:
orient the aerial base station to align a broad beam towards the donor base station, the broad beam provided by the directive backhaul antenna;
activate further antenna elements of the array to realize a narrower beam;
orient the aerial base station such as to align the narrower beam towards the donor base station to provide the backhaul connectivity;
activate a subset of antenna elements and orient the aerial base station towards the donor base station;
repeat the activating of subsets of antenna elements until a desired channel quality is obtained to the donor base station; and
set up the backhaul connectivity using a selected beam giving the desired quality.
8 . The aerial base station as claimed in claim 7 , wherein the axis of the largest dimension is parallel to the ground.
9 . The aerial base station as claimed in claim 7 , wherein the directive backhaul antenna is arranged on an upper side of the aerial base station.
10 . The aerial base station as claimed in claim 7 , wherein the directive backhaul antenna is arranged on a lower side of the body of the aerial base station.
11 . The aerial base station as claimed in claim 7 , wherein the directive backhaul antenna comprises at least one array of antenna elements.
12 . The aerial base station as claimed in claim 11 , comprising two or more arrays of antenna elements stacked horizontally or vertically.
13 . The aerial base station as claimed in claim 7 , comprising an access antenna for providing wireless access to at least one user.
14 . The aerial base station as claimed in claim 7 , comprising means for mechanically steering the directive backhaul antenna for changing elevation of the main beam.
15 . The aerial base station as claimed in claim 7 , configured to activate a subset of antenna elements in the directive backhaul antenna to realize a broad beam.
16 . The aerial base station as claimed in claim 15 , configured to be oriented to align the broad beam towards the donor base station for a coarse alignment.
17 . The aerial base station as claimed in claim 16 , configured to activate more antenna elements in the array of antennas for narrowing the broad beam to a narrower beam.
18 . The aerial base station as claimed in claim 17 , configured to be oriented to align the narrower beam towards the donor base station.
19 . A non-transitory computer readable storage medium storing a computer program for providing backhaul connectivity to a ground-based donor base station, the computer program comprising computer code which, when run on processing circuitry of an aerial base station, causes an aerial base station to:
orient the aerial base station to align a broad beam towards the donor base station, the broad beam provided by the directive backhaul antenna;
activate further antenna elements of the array to realize a narrower beam;
orient the aerial base station to align the narrower beam towards the donor base station to provide the backhaul connectivity;
activate a subset of antenna elements and orient the aerial base station towards the donor base station;
repeat the activating of subsets of antenna elements until a desired channel quality is obtained to the donor base station; and
set up the backhaul connectivity using a selected beam giving the desired quality.