Multiband antenna system
11469516 · 2022-10-11
Assignee
Inventors
- Ignacio Gonzalez (Munich, DE)
- Christoph Spranger (Munich, DE)
- Bruno Biscontini (Munich, DE)
- Bernhard Rist (Munich, DE)
- Johann Baptist Obermaier (Munich, DE)
Cpc classification
H01Q21/28
ELECTRICITY
H01Q21/30
ELECTRICITY
International classification
H01Q21/12
ELECTRICITY
H01Q21/30
ELECTRICITY
Abstract
A multiband antenna system comprises a first massive multiple input multiple output (mMIMO) antenna array comprising a plurality of first antenna elements for use in a first frequency band and at least a second antenna array comprising a plurality of second antenna elements for use in a second frequency band lower than the first frequency band. The second antenna array is at least partially interleaved with the first mMIMO antenna array. The multiband antenna system further includes a distribution network for distributing input and/or output signals of the antenna elements of the second antenna array arranged in a distribution layer, and a transition device.
Claims
1. A multiband antenna system, comprising: a first massive multiple input multiple output (mMIMO) antenna array comprising a plurality of first antenna elements configured for use in a first frequency band; a second antenna array comprising a plurality of second antenna elements configured for use in a second frequency band, the second frequency band being lower than the first frequency band, and the second antenna array being at least partially interleaved with the first mMIMO antenna array; a distribution network configured to distribute input and/or output signals of the plurality of second antenna elements arranged in a distribution layer; a feeding network, the feeding network having a plurality of outputs connected to the plurality of first antenna elements; and a transition device comprising: a first set of first connectors disposed to a first side of the distribution layer and connected to a plurality of inputs of the feeding network, a second set of second connectors disposed to a second side of the distribution layer and connected to a mMIMO radio frequency (RF) module, and interconnections connecting the first set of first connectors to the second set of second connectors, the interconnections traversing the distribution layer.
2. The antenna system according to claim 1, wherein the first mMIMO antenna array comprises a reflector, and wherein the distribution layer is arranged in parallel to the reflector.
3. The antenna system according to claim 1, wherein the distribution network comprises gaps through which the interconnections traverse the distribution network.
4. The antenna system according to claim 3, wherein each interconnection comprises a first part traversing the distribution network to connect with a respective first connector, a second part configured to connect to a respective second connector, and a connecting part configured to route signals between the first part and the second part.
5. The antenna system according to claim 4, wherein the respective first part of each respective interconnection is a respective first waveguide, and wherein the respective second part of each respective interconnection is a respective second waveguide.
6. The antenna system according to claim 5, wherein the respective connecting part of each respective interconnection is a metal layer on a printed circuit board.
7. The antenna system according to claim 6, wherein the connecting parts of respective interconnections include respective delay sections, the respective delay sections increasing the electrical lengths of the connecting parts to equalize a phase of each signal for each of the first antenna elements.
8. The antenna system according to claim 3, wherein the distribution network is physically split into distribution sub-networks for different polarisations, wherein the gaps are arranged between the distribution sub-networks.
9. The antenna system according to claim 1, wherein each respective first connector is connected by a respective interconnection to a respective second connector.
10. The antenna system according to claim 1, wherein the interconnections equalize a phase of each signal for each of the first antenna elements.
11. The antenna system according to claim 10, wherein the interconnections have individual physical lengths for providing the equalization.
12. The antenna system according to claim 1, further comprising the mMIMO RF module, the mMIMO RF module configured to drive the first mMIMO antenna array, wherein the second connectors are connected to the mMIMO RF module.
13. The antenna system according to claim 1, wherein the feeding network provides a feeding connection to more than one of the first antenna elements for one of the first connectors.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) To illustrate the technical features of embodiments of the present invention more clearly, the accompanying drawings provided for describing the embodiments are introduced briefly in the following. The accompanying drawings in the following description are merely some embodiments of the present invention, but modifications of these embodiments are possible without departing from the scope of the present invention as defined in the claims.
(2)
(3)
DETAILED DESCRIPTION
(4) A multi-band antenna system 10 according to a first embodiment is shown in
(5) The multi-band antenna system 10 comprises a first mMIMO array 12 comprising a plurality of first antenna elements (not shown). The first mMIMO array 12 comprises a feeding network 14 which is connected to a transition device 16. The feeding network 14 feeds the first antenna elements of the first mMIMO array 12. The transition device 16 is connected to an mMIMO RF module 18 which provides signals to and receives signals from the first mMIMO array 12 through the transition device 16. Digital input signals are routed to the mMIMO RF module 18 from an mMIMO input/output 20.
(6) The multi-band antenna system 10 furthermore comprises a second antenna array 30 which is connected to a distribution network 40. The distribution network 40 comprises a first distribution sub-network 42 for distributing signals for a first e.g. positive (+45°) polarisation and a second distribution sub-network 44 for distributing signals for a second e.g. negative (−45°) polarisation. The first distribution sub-network 42 and the second distribution sub-network 44 are connected to an antenna input/output 46.
(7) In this embodiment there is a third antenna array 32, connected to a first distribution sub-network 52 and a second distribution sub-network 54 which are both connected to another antenna input 56. Furthermore, the multi-band antenna system 10 comprises a fourth antenna array 34, connected to a first distribution sub-network 62 and a second distribution sub-network 64 which is in turn connected to a further antenna input 66.
(8) The transition device 16 comprises first parts 22 which traverse the distribution layer 40 and thus the distribution sub-networks 42, 44, 52, 54, 62, 64 comprised therein to connect with first connectors (not shown in
(9) The transition device 16 further comprises second parts 26 for connecting to second connectors (not shown in
(10) Of the four antenna arrays 12, 30, 32, 34, the first mMIMO antenna array 12 may operate below 6 GHz in a first frequency band. The second, third and fourth antenna arrays 30, 32, 34 may operate in a second frequency band, a third frequency band and a fourth frequency band, respectively. The second, third and fourth frequency band each may comprise frequencies that are lower than those of the first frequency band. The second, third and fourth frequency bands may or may not overlap.
(11) The third antenna array 32 and the fourth antenna array 34 as well as the associated distribution networks 52, 54, 62, 64 and antenna inputs 56, 66 are optional. More or fewer antenna arrays may be provided.
(12) The feeding network 14 may provide a fixed phase and amplitude distribution between the first antenna elements of the first mMIMO antenna array 12. In this way, the feeding network 14 may distribute signals among the first antenna elements in a way to, for example, provide a predetermined beam tilt or other beamforming function. The feeding network 14 thus may provide an interface between the transition device and the antenna elements. The feeding network 14 may be realised as a multilayer printed circuit board, PCB, and may also act as a reflector for the first mMIMO antenna array 12.
(13) The transition device 16 interconnects the feeding network 14 of the first mMIMO antenna array 12 with the mMIMO RF module 18. The transition device 16 is arranged and constructed to physically traverse the distribution layer by means of its first parts 22. The first parts 22 may be arranged such that they traverse the distribution layer through gaps 24 in the distribution layer. These gaps 24 may for example be arranged between each of the distribution sub-networks 42, 44, 52, 54, 62, 64.
(14) The transition device 16 may further equalise the phase of all the first antenna elements of the first mMIMO antenna array 12. This means that the transition device 16 will provide on its second set of second connectors access to the first antenna elements in a defined way such that the mMIMO RF module 18 does not need to have any knowledge about the exact layout and/or construction of the first antenna elements in order to perform correctly. The signal path from the inputs (e.g. the second parts 26) of the transition device 16 to the first antenna elements and/or the feeding network 14 shows equal phase to the outputs of the mMIMO RF module 18. In this way, the transition device 16 may also be adapted to different mMIMO RF modules 18.
(15) The mMIMO RF module 18 may be a radio unit that provides power and signal processing to the first mMIMO antenna array 12. The mMIMO RF module 18 is connected to the first antenna elements of the first mMIMO array 12 through the transition device 16. The mMIMO RF module 18 may control the first antenna elements such that the combination provides an active antenna system (AAS). The mMIMO RF module 18 may be field installable and/or field exchangeable.
(16) The first mMIMO antenna array 12 may be constructed without a feeding network 14. In this case, the transition device 16 may directly connect to the first antenna elements of the first mMIMO antenna array 12 and not go through a feeding network 14. This may be the case in particular if the first mMIMO antenna array 12 comprises only individual first antenna elements that are not grouped. In this case, each of the second connectors connected to the mMIMO RF module 18 corresponds to one first antenna element of the first mMIMO antenna array 12.
(17) The distribution layer 40 may comprise a multitude of distribution sub-networks 42, 44, 52, 54, 62, 64. A distribution sub-network 42, 44, 52, 54, 62, 64 is a device that provides a controllable phase and amplitude distribution from its input to its outputs and vice versa. Accordingly, the distribution layer 40 and/or each of the distribution sub-networks 42, 44, 52, 54, 62, 64 may be considered to provide the function of a phase-shifter. The number of outputs of the distribution layer 40 depends on the configuration of the antenna array 30, 32, 34 it feeds and controls.
(18) In some instances, the distribution layer 40 may have one input per polarisation of the antenna element to feed. One phase-shifting distribution layer 40 may provide its function for two polarisations in the same physical device. In the present embodiment, however, the distribution layer 40 is subdivided into independent components for each polarisation. These components are the distribution sub-networks 42, 44, 52, 54, 62, 64. As these distribution sub-networks 42, 44, 52, 54, 62, 64 are independent of each other, they may be constructed in a way such that there are gaps 24 between them. It is then possible to route the first parts 22 of the transition device 16 through these gaps 24 to make contact with the first mMIMO array 12.
(19) The further embodiment shown in
(20) In this embodiment, the transition device 16 comprises first connectors 23 for connecting to the feeding network 14 of the first mMIMO antenna array 12 and second connectors 27 for connecting to the mMIMO RF module 18. The transition device 16 further comprises interconnections between the first connectors 23 and the second connectors 27. Each of the interconnection comprises a first part 22 connected to a first connector 23, a second part 26 connected to a second connector 27 and a connecting part 28 which routes signals between a first part 22 and a second part 26. Each connecting part 28 may connect exactly one of the first parts 22 to exactly one of the second parts 26.
(21) The connecting parts 28 may comprise delay sections 29. These delay sections 29 increase the physical and thus the electrical length of any connecting part 28 which comprises them. By selecting and implementing appropriate delay sections 29, the phase of all the interconnections or a predetermined selection of interconnections may be equalised.
(22) The connecting parts 28 may be implemented as metal layers on a printed circuit board (PCB). The first and second parts 22, 26 may be implemented as cylindrical pins or other applicable waveguides. Several different types of connectors may be used as connectors 23, 27. In one embodiment, connections may be made for example with MMBX connectors.
(23) The distribution layer 40 comprises four distribution subnetworks 42, 44, 52, 54. The first distribution subnetworks 42, 52 carry signals having a first polarisation and the second distribution subnetworks 44, 54 carry signals having a second polarisation. The distribution subnetworks 42, 44, 52, 54 are connected to second antenna elements 31 comprised in a second antenna array 30. A gap 24 is left open between the second distribution subnetwork 44 and the first distribution subnetwork 52.
(24) The first parts 22 physically traverse the distribution layer 40 through the gap 24. The first connectors 23 connect with the feeding network 14 which routs each of the signals transmitted via the first connectors 23 to one or more first antenna elements 13 comprised in the first mMIMO antenna array 12.
(25) Embodiments described herein allow the coexistence of a mMIMO system with several passive antenna arrays as it provides a way to suitably interconnect all the antenna arrays and feeding systems and networks while keeping the geometric volume of the antenna system at a minimum. The reduced size simplifies new site acquisition and site upgrades. Existing mechanical support structures may be reused as the wind load of the antenna system may be equivalent to that of previously installed antenna systems. Due to the increased number of ports, it may be suitable for site-sharing which significantly reduces the operating costs of network operators.
(26) The invention has been described in conjunction with various embodiments herein. However, other variations to the disclosed embodiments can be understood and affected by those skilled in the art in practising the claimed invention, from a study of the drawings, the disclosure, and the appended claims. In the claims, the word “comprising” does not exclude other elements or steps, and the indefinite article “a” or “an” does not exclude a plurality. The number of certain elements used in the embodiments may be changed according to the needs as determined by the skilled person, e.g. the number of antenna elements, distribution networks, antenna arrays and the numbers given herein shall not be understood to delimit the invention. The mere fact that certain measures are recited in mutually different dependent claims does not indicate that the combination of these measures cannot be used to advantage. Although the present invention and its advantages have been described in detail, it should be understood that various changes, substitutions, alterations, modifications and combinations can be made herein without departing from the spirit and scope of the invention as defined by the appended claims.
LIST OF REFERENCE NUMERALS
(27) 10 multi-band antenna system
(28) 12 first mMIMO antenna array
(29) 13 first antenna element
(30) 14 feeding network
(31) 16 transition device
(32) 18 mMIMO RF module
(33) 20 mMIMO input
(34) 22 first part
(35) 23 first connector
(36) 24 gap
(37) 26 second part
(38) 27 second connector
(39) 28 connecting part
(40) 29 delay section
(41) 30 second antenna array
(42) 31 second antenna element
(43) 32 third antenna array
(44) 34 fourth antenna array
(45) 40 distribution layer
(46) 42 first distribution sub-network
(47) 44 second distribution sub-network
(48) 46 antenna input
(49) 52 first distribution sub-network
(50) 54 second distribution sub-network
(51) 56 antenna input
(52) 62 first distribution sub-network
(53) 64 second distribution sub-network
(54) 66 antenna input