The present application relates to an antenna decoupling technology, in particular, to devices and methods for reducing interference between closely collocated antennas working at the same or adjacent frequencies.
There is an irreversible trend in today's wireless communication systems that more and more communication systems of different protocols and various working frequencies are integrated into one increasingly compact physical unit. Such trend impacts not only mobile terminals but also network infrastructure equipment such as base stations and wireless routers. In a mobile unit, such as a mobile phone or a laptop computer, multiple wireless services, including GSM, UMTS, Wi-Fi, LTE, GPS and Bluetooth, coexist in a very compact space. The radio frequency interference among the systems that operate at the same or adjacent frequency bands can seriously affect the quality of service. Meanwhile, in a today's wireless base station, antennas for 2G (GSM), 3G (UMTS), 4G (LTE) as well as Wi-Fi wireless communication systems must coexist in a close vicinity, which inevitably create radio frequency interference to each other through antennas since these frequency bands are very close to each other.
Although there are many preliminary attempts from industry and academic communities to avoid such interference by adding filters and increasing spatial isolation between two antennas as far as possible, the interference among the systems operating at adjacent frequencies cannot be sufficiently suppressed if the spatial isolation is not sufficient. The coexistence interference issue among radio transceivers and antennas becomes increasingly important as the size of an integrated system decreasing and the number of wireless systems increasing.
Current solutions for reducing the interference can be divided into three categories: signaling-based solutions that require coordination between the collated transceivers, active interference suppression solutions that need complex active circuitry and control algorithm, and antenna isolation enhancement solutions by passive networks. However, none of them works for two radio systems working in two adjacent frequency bands.
According to an aspect of the present application, a device for reducing interference between antennas in a compact antenna array is proposed. According to an embodiment, the antenna array comprises a plurality of antennas for transmitting signals from and receiving signals to a plurality of transceivers respectively, and the device comprises a plurality of resonators; a first set of ports, each of which is connected to a respective one of the plurality of transceivers; and a second set of ports, each of which is connected to a respective one of the plurality of antennas; wherein each of the transceivers and the antennas is connected to a respective one of the resonators, and coupling coefficients among the resonators as well as a resonance frequency of each of the resonators are configured so that a desired isolation among the first set of ports and a desired matching at each of the first set of ports are obtained.
In an embodiment, the antenna array comprises a first antenna and a second antenna for transmitting signals from and receiving signals to a first transceiver and a second transceiver respectively, the first set of ports comprise a first port connected to the first transceiver and a second port connected to the second transceiver, the second set of ports comprise a third port connected to the first antenna and a fourth port connected to the second antenna, and the plurality of resonators comprise at least four resonators including a first resonator connected to the first port, a second resonator connected to the second port, a third resonator connected to the third port, and a fourth resonator connected to the fourth port, each of the at least four resonators is coupled with at least one remaining resonator of the at least four resonators, and wherein coupling coefficients between the at least four resonators as well as a resonance frequency of each of the at least four resonators are configured so that a desired isolation between the first port and the second port and a desired matching of each of the first port and the second port are obtained.
In an embodiment, said at least four resonators are the first resonator, the second resonator, the third resonator and the fourth resonator, and at least some of a coupling coefficient between the first resonator and the second resonator, a coupling coefficient between the third resonator and the fourth resonator, a coupling coefficient between the first resonator and the third resonator, a coupling coefficient between the second resonator and the fourth resonator, and wherein a coupling coefficient between the first resonator and the first port, a coupling coefficient between the second resonator and the second port, a coupling coefficient between the third resonator and the third port, and a coupling coefficient between the fourth resonator and the fourth port as well as the resonance frequency of each of the at least four resonators are configured so that the desired isolation is obtained.
In an embodiment, said at least four resonators are the first resonator, the second resonator, the third resonator, the fourth resonator, a fifth resonator located between and coupled with the first resonator and the third resonator, and a sixth resonator located between and coupled with the second resonator and the fourth resonator, and wherein at least some of a coupling coefficient between the first resonator and the second resonator, a coupling coefficient between the third resonator and the fourth resonator, a coupling coefficient between the first resonator and the fifth resonator, a coupling coefficient between the second resonator and the sixth resonator, a coupling coefficient between the third resonator and the fifth resonator, a coupling coefficient between the fourth resonator and the sixth resonator, a coupling coefficient between the first resonator and the first port, a coupling coefficient between the second resonator and the second port, a coupling coefficient between the third resonator and the third port, and a coupling coefficient between the fourth resonator and the fourth port are configured so that the desired isolation and the desired matching are obtained.
In an embodiment, the antenna array comprises a first antenna, a second antenna and a third antenna for transmitting signals from and receiving signals to a first transceiver, a second transceiver and a third transceiver respectively, the first set of ports comprise a first port connected to the first transceiver, a second port connected to the second transceiver, and a third port connected to the third transceiver, the second set of ports comprise a fourth port connected to the first antenna, a fifth port connected to the second antenna, and a sixth port connected to the third antenna, and the plurality of resonators comprise at least six resonators including a first resonator connected to the first port, a second resonator connected to the second port, a third resonator connected to the third port, a fourth resonator connected to the fourth port, a fifth resonator connected to the fifth port, and a sixth resonator connected to the sixth port, each of the at least six resonators is coupled with at least one remaining resonator of the at least six resonators, wherein coupling coefficients among the at least six resonators as well as a resonance frequency of each of the at least six resonators are configured so that a desired isolation between the first port and the second port and a desired isolation between the second port and the third port and a desired matching at each of the first port, the second port and the third port are obtained.
In an embodiment, the plurality of antennas are implemented as a single antenna for transmitting signals from and receiving signals to a plurality of transceivers respectively, and the device further comprises a port combining module inserted between the single antenna and the second sets of ports, wherein the port combining unit having a first port connected to the single antenna and a plurality of ports each connected to a respective one of the second sets of ports, coupling coefficients among the resonators, a resonance frequency of each of the resonators, and parameters of the port combining module are configured so that a desired isolation among the first set of ports and a desired matching at each of the first set of ports are obtained.
In an embodiment, the port combining module is implemented by a non-resonate node or a T-junction.
According to another aspect of the present application, a method for reducing interference between antennas in a compact antenna array is proposed. According to an embodiment, the antenna array comprises a plurality of antennas for transmitting signals from and receiving signals to a plurality of transceivers respectively, and the method comprises forming a resonator network comprising a plurality of resonators, a first set of ports each of which is connected to a respective one of the plurality of transceivers, and a second set of ports each of which is connected to a respective one of the plurality of antennas, so that each of the transceivers and the antennas is connected to a respective one of the resonators; and setting coupling coefficients among the resonators as well as a resonance frequency of each of the resonators so that a desired isolation among the first set of ports and a desired matching at each of the first set of ports are obtained.
In an embodiment, the antenna array comprises a first antenna and a second antenna for transmitting signals from and receiving signals to a first transceiver and a second transceiver respectively, the first set of ports comprise a first port connected to the first transceiver and a second port connected to the second transceiver, the second set of ports comprise a third port connected to the first antenna and a fourth port connected to the second antenna, and the plurality of resonators comprise at least four resonators including a first resonator connected to the first port, a second resonator connected to the second port, a third resonator connected to the third port, and a fourth resonator connected to the fourth port, each of the at least four resonators is coupled with at least one remaining resonator of the at least four resonators, and the setting step comprises setting coupling coefficients between the at least four resonators as well as a resonance frequency of each of the at least four resonators so that a desired isolation between the first port and the second port and a desired matching of each of the first port and the second port are obtained.
In an embodiment, the antenna array comprises a first antenna, a second antenna and a third antenna for transmitting signals from and receiving signals to a first transceiver, a second transceiver and a third transceiver respectively, the first set of ports comprise a first port connected to the first transceiver, a second port connected to the second transceiver, and a third port connected to the third transceiver, the second set of ports comprise a fourth port connected to the first antenna, a fifth port connected to the second antenna, and a sixth port connected to the third antenna, and the plurality of resonators comprise at least six resonators including a first resonator connected to the first port, a second resonator connected to the second port, a third resonator connected to the third port, a fourth resonator connected to the fourth port, a fifth resonator connected to the fifth port, and a sixth resonator connected to the sixth port, each of the at least six resonators is coupled with at least one remaining resonator of the at least six resonators, and the setting step comprises setting coupling coefficients among the at least six resonators as well as a resonance frequency of each of the at least six resonators so that a desired isolation between the first port and the second port and a desired isolation between the second port and the third port and a desired matching at each of the first port, the second port and the third port are obtained.
In an embodiment, the plurality of antennas are implemented as a single antenna for transmitting signals from and receiving signals to a plurality of transceivers respectively, the method further comprises inserting a port combining module between the single antenna and the second sets of ports, wherein the port combining unit having a first port connected to the single antenna and a plurality of ports each connected to a respective one of the second sets of ports; wherein the setting step comprises setting coupling coefficients among the resonators, a resonance frequency of each of the resonators, and parameters of the port combining module so that a desired isolation among the first set of ports and a desired matching at each of the first set of ports are obtained.
In an embodiment, the port combining module is implemented by a non-resonate node or a T-junction.
Hereinafter, embodiments of the present application will be described with reference to the accompanying drawings.
A routing diagram of the four-port N-order device according to the present application is shown in
Hereinafter, specific embodiments of the present application will be described in an illustrative way. Note that features in such embodiments will not limit the invention in any extent.
Although four-port devices with four, six and eight resonators are described herein, they are only taken as examples for the purpose of explanation. A four-port device comprising N resonators (N is no less than four) with the above-mentioned features could be used to implement this invention.
According to a further embodiment of the present application, a decoupling device with more than four ports is proposed for decoupling more than two antennas.
According to the present application, the antennas may work at the same or different frequencies. As long as coupling coefficients between resonators are appropriately adjusted, desired isolation and matching conditions can be satisfied.
Hereinafter, two practical design examples will be presented in an illustrative way to prove the concept of the invention. In both examples, two high gain (with peak gain around 7.6 dBi) sleeve dipole antennas, one of which operates at 2.35 GHz and the other of which operates at 2.45 GHz, are prepared as the testing vehicle. Such high gain antennas are used to imitate the characteristic of two high gain base station antennas operating in adjacent bands. The 2.35 GHz antenna is assumed to serve a TD-LTE radio system, while the 2.45 GHz antenna is targeted to serve a Wi-Fi system. Such situation reflects a popular scenario for 4G femto cells where a Wi-Fi router works in a close proximity of a TD-LTE wireless system. Since the TD-LTE band 2300˜2400 (MHz) is immediately adjacent to the ISM band 2400˜2483.5 (MHz), even if the antennas are placed 420 mm (3.36λg at 2400 MHz) apart, less than 25 dB isolation is observed. For a typical TD-LTE femto cell, whose transmitting power is around 20˜23 dBm, the unwanted power that is coupled to its neighbor Wi-Fi system can be far above the receiver sensitivity level that is around −90˜−70 dBm, even with a 60˜80 dB filter rejection.
Moreover, for TD-LTE and Wi-Fi systems, the frequency bands are contiguous, the isolation between them near the adjacent band edge are most difficult to deal with using a conventional means. To demonstrate the decoupling device in solving the coexistence problem between two radio systems, two decoupling devices are designed, fabricated and measured as examples. Each design process starts with the design of the coupled resonator circuit model. Having had the circuit model designed, a decoupling device is realized using coaxial combline resonators, which is similar to conventional filter realization, except that the decoupling device is a four-port rather than a two-port device. Additionally, the design of the decoupling device strongly depends on the S-parameters of the coupled antennas. In both design examples, the outer and inner diameters, and the height of the coaxial combine resonator are chosen to be 20.0 mm, 10.0 mm and 25.0 mm respectively. The diameter of all the tuning screws is 3.0 mm. The detailed design procedure and the performance comparison are given in the following description.
The first example is to optimize and design a 4-th order decoupling device (i.e., a device with four resonators) to improve the isolation between the two sleeve dipole antennas. A prototype of the 4-th order decoupling device is shown in
To improve the isolation between the two systems while maintaining a good port impedance matching performance, a 6-th order decoupling device is considered in this example. The design procedure is similar to that of the 4-th order decoupling device. The circuit model in
Although a specific resonator form is used in the described examples, other forms of resonators are also possible. The skilled in the art may implement the resonators and design/adjust/tune the coupling coefficient between resonators in any suitable way.
According to a further embodiment, the decoupling device may be used in an application in which a plurality of antennas are implemented as a single antenna for transmitting signals from and receiving signals to a plurality of transceivers respectively. In such applications, a port combining module is further included. For example, by combining the two ports that are connected to two separate antennas, the four port decoupling device thus forms a three-port microwave combiner or diplexer. The three port decoupling device consists of a first port connected to a first transceiver, a second port connected to a second transceiver and the third port connected to either one common antenna or other signal processing device for transmitting a signal from and receiving a signal to both transceivers. The port combining module can be realized by a resonator or a T-junction. Properly setting the parameter of the combining module, the couplings between the at least four resonators, the resonant frequency of each resonator in said four port decoupling device, in addition to the desired matching at all three ports and the isolation between the first and the second port, appropriate filtering characteristics between the first port and the port connected to the single antenna (new port 3) and the filter characteristics between the second port and the new port 3 can be obtained.
In
Although a four-port decoupling device, a six-port device and a three-port device are described, it is understood that the decoupling device may also have other numbers of ports. As long as parameters in the device are well set, desired isolation and matching can be obtained.
According to an aspect of the application, a method for reducing interference between antennas in a compact antenna array is proposed. According to an embodiment, the antenna array comprises a plurality of antennas for transmitting signals from and receiving signals to a plurality of transceivers respectively, and the method comprises forming a resonator network comprising a plurality of resonators, a first set of ports each of which is connected to a respective one of the plurality of transceivers, and a second set of ports each of which is connected to a respective one of the plurality of antennas, so that each of the transceivers and the antennas is connected to a respective one of the resonators; and setting coupling coefficients among the resonators as well as a resonance frequency of each of the resonators so that a desired isolation among the first set of ports and a desired matching at each of the first set of ports are obtained.
In an embodiment, the antenna array comprises a first antenna and a second antenna for transmitting signals from and receiving signals to a first transceiver and a second transceiver respectively, the first set of ports comprise a first port connected to the first transceiver and a second port connected to the second transceiver, the second set of ports comprise a third port connected to the first antenna and a fourth port connected to the second antenna, and the plurality of resonators comprise at least four resonators including a first resonator connected to the first port, a second resonator connected to the second port, a third resonator connected to the third port, and a fourth resonator connected to the fourth port, each of the at least four resonators is coupled with at least one remaining resonator of the at least four resonators, and the setting step comprises setting coupling coefficients between the at least four resonators as well as a resonance frequency of each of the at least four resonators so that a desired isolation between the first port and the second port and a desired matching of each of the first port and the second port are obtained.
In an embodiment, the antenna array comprises a first antenna, a second antenna and a third antenna for transmitting signals from and receiving signals to a first transceiver, a second transceiver and a third transceiver respectively, the first set of ports comprise a first port connected to the first transceiver, a second port connected to the second transceiver, and a third port connected to the third transceiver, the second set of ports comprise a fourth port connected to the first antenna, a fifth port connected to the second antenna, and a sixth port connected to the third antenna, and the plurality of resonators comprise at least six resonators including a first resonator connected to the first port, a second resonator connected to the second port, a third resonator connected to the third port, a fourth resonator connected to the fourth port, a fifth resonator connected to the fifth port, and a sixth resonator connected to the sixth port, each of the at least six resonators is coupled with at least one remaining resonator of the at least six resonators, and the setting step comprises setting coupling coefficients among the at least six resonators as well as a resonance frequency of each of the at least six resonators so that a desired isolation between the first port and the second port and a desired isolation between the second port and the third port and a desired matching at each of the first port, the second port and the third port are obtained.
In an embodiment, the plurality of antennas are implemented as a single antenna for transmitting signals from and receiving signals to a plurality of transceivers respectively, the method further comprises inserting a port combining module between the single antenna and the second sets of ports, wherein the port combining unit having a first port connected to the single antenna and a plurality of ports each connected to a respective one of the second sets of ports; wherein the setting step comprises setting coupling coefficients among the resonators, a resonance frequency of each of the resonators, and parameters of the port combining module so that a desired isolation among the first set of ports and a desired matching at each of the first set of ports are obtained.
In an embodiment, the port combining module is implemented by a non-resonate node or a T-junction.
While embodiments of the present application are described herein, it is understood that the embodiments described herein are illustrative, but not limited. Technical features disclosed in various embodiments can be modified in appropriate ways. Various modifications and variations of the described embodiments can be made within the scope and spirit of the present application.