Systems and methods for multi-beamforming front-end architectures for wireless transceivers

The front-end antenna system addresses inefficiencies in millimeter wave communications by providing multi-beam beamforming with independent control over radiation parameters, enhancing spectral and power efficiency and communication capacity.

JP7772382B2Active Publication Date: 2025-11-18SKYGIG LLC
View PDF 2 Cites 0 Cited by

Patent Information

Application Number
JP2022576822
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-06-11
Filing Date
2021-06-11
Publication Date
2025-11-18
Estimated Expiration
2041-06-11

AI Technical Summary

Technical Problem

Current wireless technologies face challenges in implementing high-gain front-end systems with advanced beamforming mechanisms for millimeter wave communications due to spectral inefficiency, power inefficiency, and limited capacity, especially in large apertures and high RF losses, with phased array and metamaterial approaches being impractical for multi-beam operations.

Method used

A front-end antenna system with multi-beam beamforming capabilities, incorporating beam networks and transceivers to form multiple beams with independent control over radiation parameters, including direction, pattern, power, and polarization, utilizing a combination of analog and digital stages to enhance efficiency and scalability.

Benefits of technology

The system achieves increased spectral and power efficiency, supports multi-beam operations, reduces complexity and size, and improves communication capacity and latency by enabling simultaneous connectivity with multiple nodes and reducing charging time for wireless devices.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007772382000001
    Figure 0007772382000001
  • Figure 0007772382000002
    Figure 0007772382000002
  • Figure 0007772382000003
    Figure 0007772382000003
Patent Text Reader

Abstract

A front-end antenna system for transmitting and receiving one or more beams, including at least one of a radio frequency (RF) stage, an intermediate frequency (IF) stage, and a digital stage, comprising one or more beam networks configured to form one or more signal streams into one or more beams, each beam network of the one or more beam networks comprising a beamformer network, a switching network, or a combination thereof. The front-end antenna system includes an array of antennas configured to output each of the beams in a spatial region selected from a plurality of spatial regions, one or more antennas of the array of antennas being multi-port antennas. The front-end antenna system includes a plurality of transceivers electrically coupling the array of antennas and the one or more beam networks.
Need to check novelty before this filing date? Find Prior Art

Description

[Technical Field]

[0001] This application claims priority to and benefits from U.S. Provisional Application No. 63 / 038,043, filed June 11, 2020, the disclosure of which is incorporated herein by reference. This application is related to a commonly assigned U.S. application entitled "ANTENNA SYSTEM FOR A MULTI-BEAM BEAMFORMING FRONT-END WIRELESS TRANSCEIVER," filed concurrently with this application, the contents of which are incorporated herein by reference.

[0002] The present disclosure relates to radio frequency transceivers, and more particularly to multi-beam beamforming front-end antenna systems. [Background technology]

[0003] The statements in this section merely provide background information related to the present disclosure and may not necessarily constitute prior art.

[0004] Radio wave wireless technology is ubiquitous and is used in a variety of applications, including but not limited to: the telecommunications and satellite communications industries, sensors and navigation systems in mobile platforms (e.g., self-driving cars in the automotive industry), and so on.

[0005] Wireless communication technologies are moving to higher millimeter wave frequency bands. These frequency bands offer the advantage of greater bandwidth and therefore higher communication speeds. However, despite these advantages, current wireless technologies often implement more advanced approaches and architectures than traditional wireless technologies. Summary of the Invention [Problem to be solved by the invention]

[0006] For example, a radio-frequency (RF) device may include antennas, radio frequency (RF) circuits, analog and digital circuits, and a system architecture that controls the operation and connection of various components. The radio front-end system defines the performance and functionality of a radio device. High-data-rate wireless communications, particularly those in the millimeter wave band, often require high-gain front-end systems with narrow beams, high transmit power levels, and high receive sensitivity levels to compensate for signal propagation losses within practical ranges. Therefore, high-gain front-end systems with advanced beamforming mechanisms may be required to enable this wireless communications technology.

[0007] There are many approaches to implementing beamforming in radio front-ends, with phased array systems and tunable metamaterial antennas often considered as common approaches. Both approaches are based on distributing radiating elements over an aperture by controlling the phase and / or amplitude of individual elements to create desired beamforming characteristics. However, phased array and metamaterial technologies can have high spectral inefficiency, limited capacity, and high power inefficiency (especially with large apertures and / or large numbers of elements). More specifically, current analog phased array and metamaterial approaches are often limited to single-beam operation for signal transmission and / or reception, which hinders their capacity, aggregate throughput (for communication systems), and overall performance. Furthermore, for large apertures, high RF losses (especially with a large number of elements in high-gain front-ends) make these systems less power efficient. On the other hand, digital beamforming approaches are capable of multi-beam operation. However, for large component counts and wide operating bands (especially in the mmWave frequency band), these approaches may be impractical due to excessive power consumption and poor power efficiency of the digital and RF / analog circuits (e.g., DACs and ADCs). [Means for solving the problem]

[0008] This section provides a general overview of the disclosure and is not an exhaustive disclosure of its entire scope or all of its features.

[0009] The present disclosure provides a front-end antenna system for transmitting and receiving one or more beams, the front-end antenna system including at least one of a radio frequency (RF) stage, an intermediate frequency (IF) stage, and a digital stage. The front-end antenna system includes one or more beam networks configured to form one or more signal streams into one or more beams, each beam network of the one or more beam networks comprising a beamformer network, a switching network, or a combination thereof. The front-end antenna system includes an array of antennas configured to output each of the beams in a spatial region selected from a plurality of spatial regions, one or more antennas of the array of antennas being multiport antennas. The front-end antenna system includes a plurality of transceivers electrically coupling the array of antennas and the one or more beam networks.

[0010] In one aspect, the front-end antenna system further comprises a controller configured to independently control a radiation parameter and a beam type of the one or more beams, the radiation parameter including a direction, a pattern, a power, a polarization, a phase angle, a frequency band, or a combination thereof, and the beam type including one of a transmit-type beam, a receive-type beam, and a simultaneous receive-transmit-type beam.

[0011] In one aspect, the one or more beams include multiple beams, and the multi-port antenna is operable to transmit multiple beams, receive multiple beams, or a combination thereof, such that the multiple beams have the same polarization, the same frequency band, or a combination thereof.

[0012] In one aspect, the one or more beam networks include a beamformer network, which includes one or more phase shifters, one or more time delay circuits, one or more combiners, one or more variable gain amplifiers, one or more splitters, or combinations thereof.

[0013] In one embodiment, the one or more beam networks are configured to form one or more beams at an RF stage, an IF stage, a digital stage, a local oscillator stage, or a combination thereof.

[0014] In one aspect, the one or more beam networks include a switching network electrically coupled to the array of antennas and the plurality of transceivers, the switching network configured to selectively provide one or more signal streams to one or more ports of the multi-port antenna.

[0015] In one embodiment, the one or more beam networks include a plurality of switching networks, and the number of the plurality of transceivers is less than the number of ports of the multi-port antenna.

[0016] In one aspect, the one or more beam networks include a switching network that includes one or more switches, one or more combiners, one or more splitters, one or more coupled lines, one or more filters, or a combination thereof.

[0017] In one aspect, the one or more beams include at least two beams, and the one or more beam networks include a plurality of beamformer networks. Each beamformer network of the plurality of beamformer networks includes at least two delay elements, and the at least two delay elements include a phase shifter, a time delay circuit, or a combination thereof. Each antenna port of the multi-port antenna is coupled to at least two delay elements of a corresponding beamformer network of the plurality of beamformer networks.

[0018] In one embodiment, the beam network is a hybrid beam network having an analog beam network portion and a digital beam network portion, and the plurality of transceivers include an analog-to-digital converter and a digital-to-analog converter, and in a transmit mode, (i) the digital beam network portion is configured to split one or more signal streams, (ii) the digital beam network portion is configured to select one or more signal streams, (iii) the digital-to-analog converter is configured to convert the one or more signal streams to one or more analog signal streams, and the analog beam network is configured to split one or more signal streams, select one or more signal streams, or a combination thereof, (iv) or a combination of (i), (ii), and (iii). In a receive mode, (v) the analog beam network section is configured to combine one or more signal streams, (vi) the analog beam network section is configured to select one or more signal streams, (vii) the analog-to-digital converter is configured to convert one or more signal streams to one or more digital signal streams, and the digital beam network section is configured to combine one or more signal streams, select one or more signal streams, or a combination thereof, (viii) or a combination of (v), (vi), and (vii).

[0019] In one aspect, the front-end antenna system further comprises a plurality of subarrays, each of which includes one or more substrate layers, one or more electronic chips, or a combination thereof, one or more antennas from the array of antennas, and a set of transceivers from the plurality of transceivers, and the plurality of subarrays are coupled to one another via a signal distribution network, one or more beam networks, the plurality of transceivers, or a combination thereof.

[0020] In one aspect, the plurality of subarrays have one of a planar and a non-planar arrangement, a first subarray of the plurality of subarrays has a first set of geometric parameters, a second subarray of the plurality of subarrays has a second set of geometric parameters, and at least one geometric parameter of the first set of geometric parameters is different from at least one geometric parameter of the second set of geometric parameters.

[0021] In one aspect, the plurality of subarrays have one of a planar and a non-planar arrangement, a first subarray of the plurality of subarrays has a first set of geometric parameters, a second subarray of the plurality of subarrays has a second set of geometric parameters, and each geometric parameter of the first set of geometric parameters is the same as each geometric parameter of the second set of geometric parameters.

[0022] The present disclosure provides a front-end antenna system for transmitting and receiving one or more beams, the front-end antenna system including at least one of a radio frequency (RF) stage, an intermediate frequency (IF) stage, and a digital stage. The front-end antenna system includes one or more beam networks configured to form one or more signal streams on one or more beams, each beam network including a beamformer network, a switching network, or a combination thereof. The front-end antenna system includes an array of antennas configured to output each of the beams in a spatial region selected from a plurality of spatial regions, and one or more antennas in the array of antennas are single-port antennas. The front-end antenna system includes a plurality of transceivers electrically coupling the array of antennas and the one or more beam networks.

[0023] In one aspect, the single-port antenna is a passive antenna, the one or more beams include at least two beams, and the one or more beam networks include a plurality of beamformer networks, each of the plurality of beamformer networks including at least two delay elements, the at least two delay elements including a phase shifter, a time delay circuit, or a combination thereof, and the single-port antenna is coupled to the at least two delay elements of a corresponding beamformer network of the plurality of beamformer networks.

[0024] In one form, a single port antenna is an active antenna made up of one or more tunable components.

[0025] In one embodiment, the one or more beams include at least two beams, and the one or more beam networks include a plurality of such beamformer networks, each beamformer network of the plurality of beamformer networks including at least two delay elements, the at least two delay elements including a phase shifter, a time delay circuit, or a combination thereof, and the single-port antenna is coupled to the at least two delay elements of a corresponding beamformer network of the plurality of beamformer networks.

[0026] In one aspect, the front-end antenna system further comprises a controller configured to independently control a radiation parameter and a beam type of one or more beams, the radiation parameter including a direction, a pattern, a power, a polarization, a phase angle, a frequency band, or a combination thereof, and the beam type including one of a transmit-type beam, a receive-type beam, and a simultaneous receive-transmit-type beam.

[0027] In one aspect, the one or more beam networks include a switching network, which includes one or more switches, one or more combiners, one or more splitters, one or more coupled lines, one or more filters, or a combination thereof.

[0028] In one aspect, the one or more beam networks are configured to form one or more beams at an RF stage, an IF stage, a digital stage, a local oscillator stage, or a combination thereof.

[0029] Further areas of applicability will become apparent from the description provided herein. It should be understood that the description and specific examples are for purposes of illustration only and are not intended to limit the scope of the present disclosure.

[0030] In order that the present disclosure may be better understood, various forms thereof will now be described, given by way of example only, with reference to the accompanying drawings, which are briefly described below. [Brief explanation of the drawings]

[0031] [Figure 1] FIG. 1 is a schematic diagram of an exemplary embodiment front-end antenna system in accordance with the teachings of the present disclosure.

[0032] [Figure 2] FIG. 1 is a schematic diagram of a subarray of a front-end antenna system in accordance with the teachings of the present disclosure.

[0033] [Figure 3] FIG. 2 is a schematic diagram of another exemplary front-end antenna system in accordance with the teachings of the present disclosure.

[0034] [Figure 4] FIG. 2 is a schematic diagram of an example switching network connected to a set of beamformers in accordance with the teachings of the present disclosure.

[0035] [Figure 5] 1 is a schematic diagram of a radio frequency integrated circuit according to the teachings of the present disclosure.

[0036] [Figure 6] FIG. 1 is a schematic diagram of an exemplary multi-port antenna in accordance with the teachings of the present disclosure.

[0037] [Figure 7] FIG. 1 is a schematic diagram of an exemplary active antenna in accordance with the teachings of the present disclosure.

[0038] [Figure 8A] FIG. 1 is a schematic diagram of a front-end antenna system according to the teachings of the present disclosure.

[0039] [Figure 8B] FIG. 2 is another schematic diagram of a front-end antenna system in accordance with the teachings of the present disclosure.

[0040] [Figure 8C] FIG. 2 is another schematic diagram of a front-end antenna system in accordance with the teachings of the present disclosure.

[0041] [Figure 9A] FIG. 1 is a schematic diagram of an exemplary set of antennas in accordance with the teachings of the present disclosure.

[0042] [Figure 9B] FIG. 10 is a schematic diagram of another exemplary set of antennas in accordance with the teachings of the present disclosure.

[0043] [Figure 9C] FIG. 10 is a schematic diagram of yet another exemplary set of antennas in accordance with the teachings of the present disclosure.

[0044] [Figure 10] FIG. 1 is a schematic diagram of a front-end antenna system including a set of multi-port antennas in accordance with the teachings of the present disclosure.

[0045] [Figure 11] 1 is a schematic diagram of a system including a pair of antennas according to the teachings of the present disclosure.

[0046] [Figure 12A] FIG. 1 is a functional block diagram of a front-end antenna system according to the teachings of the present disclosure.

[0047] [Figure 12B] FIG. 1 is a functional block diagram of another front-end antenna system in accordance with the teachings of the present disclosure.

[0048] [Figure 12C] FIG. 10 is a functional block diagram of yet another front-end antenna system in accordance with the teachings of the present disclosure.

[0049] [Figure 13] FIG. 1 is a functional block diagram of a front-end antenna system and controller according to the teachings of the present disclosure.

[0050] The drawings described herein are for illustrative purposes only and are not intended to limit the scope of the present disclosure in any way. DETAILED DESCRIPTION OF THE INVENTION

[0051] The following description is merely exemplary and is not intended to limit the present disclosure, its application, or uses. It should be understood that throughout the drawings, corresponding reference numerals indicate like or corresponding parts and features.

[0052] The present disclosure provides front-end antenna system architecture techniques for wireless front-end transceivers that offer a unique combination of multiple beamforming, high power efficiency, high spectral efficiency, and scalability in operating frequency and size. The front-end antenna system operates as a radio front-end system, enabling beam generation and / or reception and electronic control of radio frequency (RF) patterns and beams with precise and independent control of various radiation parameters, such as beam direction, pattern, power, polarization, and / or phase angle. In one embodiment, the front-end antenna system transmits, receives, or simultaneously transmits and receives one beam (e.g., single-beam operation / mode) or more simultaneous beams (e.g., multi-beam operation / mode). In one aspect, the front-end antenna system includes at least one of a radio frequency (RF) stage, an intermediate frequency (IF) stage, and a digital stage. While specific stages are provided, the front-end antenna system may also include other stages, such as a local oscillator stage.

[0053] The front-end antenna systems of the present disclosure may be implemented for transmitting and / or receiving various types of signals or power waves, such as front-end antenna systems, wireless sensing and imaging systems, and wireless power transfer systems, among others. Examples of front-end antenna systems include, but are not limited to, satellite signals, wireless communications for network operators and Internet Service Providers (ISPs), broadband, and / or general telecommunications. Exemplary wireless sensing and imaging systems include, but are not limited to, automotive radar sensor systems, security and safety imaging and screening sensor systems, medical imaging systems, etc. Exemplary wireless power transfer systems include, but are not limited to, systems that use radio waves to transfer power / energy for wireless charging of electronic and electrical devices.

[0054] In one form, a front-end antenna system may be implemented for millimeter wave frequency band communications (e.g., 5G / 6G communications) to mitigate excessive signal propagation losses due to a large aperture and / or a large number of radiating elements (and associated transceiver and beamforming circuitry). As a result of the large number of radiating elements, conventional front-end antenna systems consume excessive power (e.g., power consumption due to digital beamforming methods), are limited in their functionality (e.g., number of beams, antenna gain, beamforming capability, among other things), and / or require complex beamforming networks that limit aperture size (e.g., large die size and number, complex wiring and synchronization between elements, among other things).

[0055] The front-end antenna system of the present disclosure may further be implemented in telecommunications frequency bands, including mid-band and / or low-band 5G signal bands, satellite communication bands (e.g., X-band, Ku-band, Ka-band, V-band, W-band), automotive radar bands (e.g., W-band), or other licensed or unlicensed frequency bands (e.g., 60 GHz). The front-end antenna system may also be implemented in other frequency bands (e.g., RF, microwave, millimeter wave, submillimeter wave, terahertz, among others).

[0056] In multi-beam mode, the phased array front-end antenna system can function as a multiple-input / multiple-output (MIMO) signal system, enabling simultaneous and sequential transmission (and / or reception) of multiple RF beams, each of which can contain independent or correlated signals for enhanced communication and / or detection purposes. Multiple beams can also transmit power to multiple charging devices in a wireless power transfer system. The antenna system provides precise shaping and control of each beam's shape (e.g., pattern), pointing direction, power level, polarization, etc., allowing operators to custom define desired characteristics.

[0057] The front-end antenna system may provide various advantages. The systems and methods are not limited to always providing such advantages, and are presented only as exemplary representations of how the systems and methods may be used. The list of advantages is not intended to be exhaustive, and other advantages may additionally or alternatively exist.

[0058] As an example, a front-end antenna system provides increased information load capacity (e.g., aggregate throughput or data rate) in wireless communications. Multiple beams can provide increased information transmission over a particular frequency band, thereby increasing spectral efficiency and power efficiency.

[0059] As another example, the front-end antenna system provides multiple beams that may provide continuous and simultaneous connectivity with multiple nodes, thereby improving speed and enabling complex multi-node communications or more efficient wireless communication topologies.

[0060] As yet another example, the front-end antenna system provides multi-beam MIMO operation for communications, thereby enabling spatial multiplexing methods in the front-end antenna system for frequency reuse, increased capacity of the wireless link, and improved spectral efficiency.

[0061] Furthermore, conventional phased array antennas only have a single beam of signal communication with multiple locations, which requires beam hopping. The multi-beam capability provided by the phased array antenna of the present disclosure provides continuous communication with multiple locations, thereby eliminating the need for beam hopping.

[0062] The front-end antenna system of the present disclosure also provides for tracking moving signal sources such as cell phone users, airplanes, satellites, cars, etc. The continuous connection provided by the front-end antenna system of the present disclosure allows for continuous signal tracking and eliminates the delay required to track any signal, thereby minimizing connection latency.

[0063] The front-end antenna system of the present disclosure may also provide overlapping signal beams in a given direction or between given nodes in a communication network, thus providing additional redundancy in the communication network.

[0064] As another example, a front-end antenna system may provide simultaneous transmission and reception for one or more nodes, thereby reducing latency in the communication system and increasing data rates in the communication network.

[0065] For imaging systems, the front-end antenna system of the present disclosure increases detection resolution (e.g., angular and / or range resolution). Additionally, the multi-beam operation of the front-end antenna system allows for faster imaging and detection, as opposed to, for example, single-beam beam steering systems.

[0066] For wireless power transfer systems, the front-end antenna system of the present disclosure provides for the generation of multiple beams for simultaneous charging of multiple wireless devices, thereby reducing charging time and improving efficiency for each device.

[0067] As another example, the disclosed front-end antenna system reduces complexity, size, and power for any given aperture size and for both single-beam and multi-beam operation. Furthermore, the disclosed front-end antenna system reduces overall die circuit size and count requirements for a given aperture dimension. As a result, the disclosed front-end antenna system provides smaller system size, lighter weight, and reduced power consumption.

[0068] In one embodiment, as shown in FIG. 1 , a front-end antenna system 1 includes multiple antennas 10, multiple transceivers 30, and multiple beam networks 50. In one configuration, the transceivers 30 electrically couple the antennas 10 to the beam networks 50. In one configuration, the front-end antenna system 1 is operable as a multiple-input / multiple-output (MIMO) system to provide multiple simultaneous beams and is operable to independently control signal beam radiation parameters such as beam direction, pattern, power, polarization, and phase angle. In one configuration, the front-end antenna system 1 is operable to independently control beam types, such as transmit-type beams, receive-type beams, and simultaneous receive and transmit type beams, where the beam types include one of transmit-type beams, receive-type beams, and simultaneous receive and transmit type beams. In one embodiment, the front-end antenna system 1 can be used for both digital and analog signals.

[0069] In one embodiment, the front-end antenna system 1 is configured to transmit and receive a beam of radio waves. In one embodiment, the front-end antenna system 1 transmits and / or receives multiple beams of radio waves having various directions, patterns, and power levels, among other radiation parameters defined by a beam management control routine. In one embodiment, the front-end antenna system 1 simultaneously transmits and receives one or more beams of radio waves.

[0070] In one embodiment, the front-end antenna system 1 may be implemented as an array (e.g., a dynamic array, a fixed array, an active array, a passive array, a digital array, an analog array, or a hybrid array, among others). By way of example and as shown in FIG. 2 , the front-end antenna system 1 may include one or more subarrays 70-1, 70-2, 70-3, 70-4, 70-5, and 70-6 (collectively referred to herein as subarrays 70) that collectively form the array 2. Each of the subarrays 70 includes a set of one or more antennas 10 of the plurality of antennas 10. By way of example, the subarray 70-1 may include a set of antennas including antennas 10-1, 10-2, 10-3, and 10-4 of the plurality of antennas 10. In one embodiment, the subarrays 70 are coupled to one another via a signal distribution network (described in more detail below), multiple beam networks 50, multiple transceivers 30, or a combination thereof.

[0071] In one embodiment, one or more subarrays 70 may be identical to one another or may be different. As an example, each subarray 70 may have the same geometric parameters (e.g., shape, size, orientation, length, width, depth, etc.) as shown in FIG. 2B. As another example, two or more of the arrays 70 may have different sets of geometric parameters as shown in FIG. 2A. In one embodiment, the subarrays 70 are randomly arranged or arranged in a grid or line pattern. In one embodiment, one or more subarrays 70 may have various planar, non-planar, or conformal shapes (e.g., rectangular, circular, hexagonal, etc.). Furthermore, one or more subarrays 70 may be integrated with one another in a planar, non-planar, or conformal configuration. In one embodiment, one or more subarrays 70 may be interleaved or overlapping with one another. In one embodiment, one or more subarrays 70 form a sparse configuration to expand the front-end aperture, and one or more subarrays 70 may be rotated and shifted relative to one another to suppress sidelobes.

[0072] In one embodiment, the size and geometry of the front-end antenna system 1 may be based on the number of array antennas, the number of elements in each antenna, and / or the dimensions of the continuous aperture antenna. In one aspect, the size and geometry of the front-end antenna system 1 are based on signal transmission and / or reception parameters, such as desired signal strength, frequency bandwidth, signal load capacity, and number of incoming / outgoing signals, among others. As an example, in a 5G implementation, the front-end antenna system 1 includes an array 2 having 236 elements (e.g., a 16×16 array) or 1024 elements (a 32×32 array). As another example, in a long-range communications implementation, the array 2 includes 2000 elements (or the equivalent size of 2000 elements if the antenna 10 is implemented with a continuous aperture antenna subarray).

[0073] 1-2, an antenna 10 is configured to control radiation parameters such as wave / signal beam pattern and direction, among other radiation parameters, of a front-end antenna system 1. Exemplary antennas 10 include, but are not limited to, planar antennas (patch, slot, ring, spiral, bowtie, etc.), cavity-backed antennas, and membrane antennas.

[0074] In one embodiment, the set of antennas 10 of the subarray 70 may include a single antenna element, a set of radiating elements, or a continuous radiating aperture. By way of example, the set of antennas 10 may include an aperture antenna, a continuous aperture antenna, a planar antenna, a lens antenna (e.g., an elliptical lens, a Lunenberg lens, etc.), a planar lens antenna (e.g., a Rotman lens), a wire antenna, and / or a reflector antenna. By way of further example, the set of antennas 10 may include a metamaterial antenna, a leaky wave antenna, a Fabry-Perot antenna, a slot array antenna, a waveguide antenna, etc. As a specific example, the grouped elements may include a metamaterial antenna with metamaterial elements or metapixels arranged to generate a desired pattern and radiation characteristics for each subset antenna.

[0075] In one aspect, the set of antennas 10 further includes a signal distribution network. Exemplary signal distribution networks include, but are not limited to, leaky-wave or slot-coupled waveguide structures (e.g., air-filled waveguides, substrate-integrated waveguides, etc.), cavity structures (e.g., air-filled or dielectric-filled with custom shapes), beamforming matrix structures (e.g., Butler matrices, hybrid couplers, quadrature couplers, Braz matrices, beam switch matrices, etc.), microstrip structures, H-tree structures, etc.

[0076] In one embodiment, the set of antennas 10 may include single-port or multi-port antennas, or any number / combination of single-port and multi-port antennas. As an example, in a multi-port implementation of antenna 10, each port may excite and generate a beam in a specific region, such that the beams collectively span a selected 3D field of view (FoV) space. In one aspect, the beams of the multi-port antennas may have overlapping regions / patterns. The generation of the multi-beam pattern of front-end antenna system 1 may be performed by a set of multi-port antennas, an array of antennas, or a combination thereof, via beam network 50.

[0077] In one aspect, antenna 10 can be a passive antenna or an active antenna. By way of example, antenna 10 can include an active antenna having tunable components (e.g., varactors, diodes, etc.) and / or tunable materials (e.g., barium strontium titanate (BST), liquid crystal, etc.) integrated therein for dynamic control of predetermined antenna characteristics (e.g., antenna pattern, beam pattern, etc.). In some forms, the active antenna is electronically controlled by a controller to provide desired radiation characteristics, as described in more detail below.

[0078] In one embodiment, the antenna 10 may be configured to perform additional beamforming operations. By way of example, if the antenna 10 is a multi-port antenna, the front-end antenna system 1 may include at least one switching network connecting the set of antennas and other system components, thereby enabling port control functionality of the multi-port antenna, as described in further detail below. By way of example, the multi-port antenna may be operable to transmit multiple beams, receive multiple beams, or a combination thereof, such that the multiple beams have the same polarization, the same frequency band, or a combination thereof. An example of the antenna 10 is provided in Applicant's co-pending U.S. application entitled "ANTENNA SYSTEM FOR A MULTI-BEAM BEAMFORMING FRONT-END WIRELESS TRANSCEIVER," the contents of which are incorporated herein by reference in their entirety.

[0079] 1 , the transceivers 30 are configured to selectively enable the antennas 10 to transmit / receive signals, directional beams, and / or multi-dimensional beams by connecting the antennas 10 to the beam network 50. In one form, the transceivers 30 are implemented as a set of transceivers 30, with at least one transceiver 30 of a given set connecting one antenna 10 of the set of antennas to the set of beam networks 50. In one form, at least one transceiver 30 of a given set of transceivers connecting one antenna 10 of the set of antennas to the set of beam networks 50. In one aspect, the number of transceivers 30 connecting to each antenna 10 is equal to the number of ports on the antenna 10. In one variation, the number of transceivers 30 connecting to each antenna 10 may not be equal to the number of ports on the antenna 10.

[0080] In one embodiment, the transceiver 30 includes two or more amplifiers for amplifying input and output signals, such as a power amplifier 32 and a low-noise amplifier 34. In a variation of one embodiment, the transceiver 30 may include one or more switches 36 that allow switching between the power amplifier 32 and the low-noise amplifier 34, and thus between receiving and transmitting signals. Alternatively, the power amplifier 32 and the low-noise amplifier 34 may be connected to the antenna port of the antenna 10 without the switch 36 to allow simultaneous Tx / Rx and / or to eliminate losses associated with the switch 36.

[0081] In one embodiment, the low-noise amplifier 34 is configured to amplify the signal received by the antenna 10 while adding minimal noise / distortion. The low-noise amplifier 34 can have various gain, noise figure, linearity, and impedance matching characteristics. In one embodiment, the power amplifier 32 is configured to amplify the signal to a predetermined power level relative to the antenna port. Thus, the power amplifier 32 can have gain and power characteristics to amplify the signal to a given power level according to a desired equivalent isotropic radiated power (EIRP) in a given direction / beam. In some embodiments, the power amplifier 32 has high linearity and power efficiency to support various modulation signals, such as orthogonal frequency division multiplexing modulation. In some embodiments, the output by the power amplifier 32 can be enhanced using various techniques, including, but not limited to, impedance transformation approaches, power combining techniques, and transistor stacking. These techniques can be implemented off-chip or on-chip in advanced silicon-based processes (e.g., bulk CMOS submicron, silicon-on-insulator (SOI), and / or SiGe BiCMOS technologies).

[0082] As an example, the power amplifier 32 may be a Doherty power amplifier, an outphasing power amplifier, a Chireix outphasing power amplifier, or a combination thereof. As another example, the power amplifier 32 may be a linear type power amplifier (e.g., a class A amplifier, a class B amplifier) ​​or a switching type power amplifier (e.g., a class E amplifier, a class F amplifier). -1 As a further example, the power amplifier 32 may be a high power amplifier that compensates for signal propagation attenuation losses and high RF losses of the front-end antenna system 1, for example, when implemented in a high frequency millimeter wave system (i.e., high frequency includes 30-300 GHz).

[0083] In one embodiment, the power amplifier 32 may include a predistortion circuit to improve the linearity of the output signal. The predistortion circuit may be implemented in a digital stage, an analog stage, or a combination thereof. In one example, the predistortion circuit is a digital predistortion circuit (DPD circuit) implemented in a digital stage. In one embodiment, the DPD circuit may be based on a memoryless model (e.g., a memoryless polynomial algorithm and / or a look-up table (LUT)-based algorithm) or a model with memory (e.g., a memory polynomial model). In another example, the DPD circuit is implemented based on information from one or more beams of the front-end antenna system 1 rather than information from each power amplifier 32.

[0084] In one form, the beam network 50 includes a beamformer network 51 and / or a switching network 58 configured to generate, provide, and modify signal streams (both input and output) by constructive and destructive combining, selecting, and / or manipulating signals to and from the antennas 10. The beam network 50 is configured to specify specific signal phases, amplitudes, and / or selection alternations in each signal path from each antenna 10 and / or set of antennas 10 for beamforming combining / processing for a desired signal stream / beam. While the beam network 50 is shown as including both the beamformer network 51 and the switching network 58, it should be understood that in some variations, the beam network 50 may include only one of the beamformer network 51 or the switching network 58.

[0085] In one embodiment, the beam networks 50 are provided in sets. Each set of beam networks 50 is configured to generate multi-directional and / or multi-dimensional beams for transmitting and / or receiving multi-beam, multi-stream signals. The set of beam networks 50 is connected to each antenna 10 of a given set via the transceiver 30. In some embodiments, the beam networks 50 and / or their components may be implemented in various stages, including an RF stage, an IF stage, a baseband stage, a digital stage, or a combination thereof. In some embodiments, if the antenna 10 includes an active antenna, the beam networks 50 may be combined with the antenna 10 for a hybrid beam network.

[0086] In one embodiment, the beamformer network 51 includes a network of phase shifter (PS) circuits 52, a network of time delay circuits 54, an amplifier network 56, splitters, combiners, or a combination thereof. In one embodiment, the network of phase shifter circuits 52 (hereinafter referred to as "phase shifters 52") is configured to receive an input signal and change the phase and amplitude of a beam associated with the input signal. In one embodiment, the phase shifters 52 may be implemented using analog circuits, digital circuits, or a combination thereof (e.g., a hybrid model). The phase shifters 52 may include active components (e.g., vector modulator-based phase shifters 52), passive components, or a combination thereof. As an example, the phase shifters 52 may include a reflection-type phase shifter (RTPS), a switched-transmission line phase shifter (STPS), a load-line-based passive phase shifter, or a combination thereof. In one aspect, delay variation cancellation techniques may be implemented to suppress delay variations above a predetermined fractional bandwidth (eg, a fractional bandwidth of 20% or more).

[0087] In one embodiment, a network of time delay circuits 54 (hereinafter "time delayers 54") is also configured to receive the input signal and modify the phase of the beam associated with the input signal. By way of example, the time delayers 54 are configured to delay the signal by a controllable time delay that is defined and / or dynamically adjusted by a controller. In one embodiment, the time delayers 54 may be implemented with analog circuitry, digital circuitry, or a combination thereof (e.g., a hybrid model).

[0088] In one aspect, the phase shifters 52 and / or the time delays 54 are implemented as true time delays (TTDs) to minimize beam squint or beam distortion of the beamformer network 51. In one aspect, the phase shifters 52 and the time delays 54 may be collectively referred to herein as "delay elements."

[0089] In one embodiment, the beamformer network 51 includes an amplifier network 56 when the beamformer network 51 is implemented using analog circuitry. The amplifier network 56 is configured to modify the amplitude of the received or transmitted signals so that the signals reach a predetermined strength before or after signal combining, splitting, and / or manipulation. By way of example, the amplifier network 56 may include one or more variable gain amplifiers implemented as analog circuitry, digital circuitry, or a combination thereof (e.g., a hybrid model).

[0090] In some embodiments, the beam network 50 includes a switching network 58, for example, when the antenna 10 includes a multi-port antenna. As an example, for each multi-port antenna, the front-end antenna system 1 includes a switching network 58 that connects a subset of the multi-port antenna ports to a set of transceivers 30. Additionally or alternatively, the front-end antenna system 1 may include a switching network 58 that connects a set of transceivers to a set of beamformer networks 51. In some embodiments, the switching network 58 connects all ports of a single-port / multi-port antenna to the transceivers 30 without switching circuitry. The switching network 58 is configured to provide different levels of component connectivity / activity, thereby combining or splitting beams and controlling beam direction. The switching network 58 can simplify the complexity of the beamformer and / or significantly increase the beamforming multi-beam, multi-stream capabilities of the front-end antenna system 1. The switching network 58 can be implemented in various stages, such as the RF stage, the IF stage, the baseband stage, the digital stage, or a combination thereof. In one form, the switching network 58 includes one or more switches, one or more combiners, one or more splitters, one or more filters, one or more coupled lines, or a combination thereof.

[0091] In one embodiment, the beamformer network 51 may be an analog beamformer, a digital beamformer, or a combination thereof (e.g., a hybrid beamformer). As an example, for a large antenna aperture with a large number of antenna elements / sets, the beamformer network 51 may be an analog beamformer or a hybrid beamformer because a digital beamformer would consume excessive power. As another example, in higher frequency bands (e.g., millimeter wave bands), the beamformer network 51 may include an analog beamformer in the IF stage to reduce losses and / or the size of the RF components and distribution / combining network in higher frequency bands. In some embodiments employing an IF implementation or a digital beamformer, mixers may be implemented at the antenna set and / or subset level, and local oscillator (LO) signal synchronization may be performed for all antenna elements and / or antenna sets. In some embodiments, LO signal synchronization may be performed by a reference signal, a phase-locked loop (PLL) circuit, an amplifier circuit, a mixer, or a combination thereof implemented at the antenna element, antenna set, and / or antenna subset level.

[0092] In some aspects, the front-end antenna system 1 may include a controller 90. The controller 90 is configured to operate the components of the front-end antenna system 1 to achieve a desired output power. In one embodiment, the controller 90 is connected to all active components and configured to execute beam management control routines, beam tracking routines, and user management routines, among other things. As an example, the controller 90 may independently set the power level, bandwidth, beam direction, beam width, polarization, number of streams / users, communication range, and modulation for one or more of the beams, among other things. In one embodiment, the controller 90 may be automated so that the system responds in a specific manner to input and output signals to and from the front-end antenna system 1. In one embodiment, the controller 90 enables user management of any and / or all desired front-end antenna system parameters (e.g., signal amplification level, configured beam configuration, and direction). In one embodiment, the controller 90 enables management of signal flow in a communication network.

[0093] In an exemplary variation, components of the front-end antenna system 1 (e.g., antenna 10, transceiver 30, beam network 50, and / or controller 90) are disposed on one or more electronic chips (e.g., integrated circuit (IC) chips) and / or one or more substrate layers thereof. The IC chips may include baseband, digital, modem, and / or control circuitry in a system-on-chip (SoC) configuration for performing the functions described herein. In one embodiment, each IC chip is associated with a single antenna element and / or a set of antennas 10. In one embodiment, each IC chip is associated with multiple antenna elements or subarrays 70. In one aspect, one IC chip is associated with all antenna elements or a set of antennas 10.

[0094] Referring to Figure 3, a front-end antenna system 1-1 is shown. Front-end antenna system 1-1 is similar to front-end antenna system 1, except that in this variation, front-end antenna system 1-1 includes one or more subarrays 72 including a multiport antenna 10-1 having ports 16-1, 16-2, ..., 16-k connected to a set of transceivers 30-1, 30-2, ..., 30-k'. Thus, each subarray 72 includes a multiport antenna 10-5 having k ports, and each subarray 72 includes a set of k' transceivers.

[0095] In one embodiment, each subarray 72 is connected to a beamformer network 51-1, 51-2, ... 51-M of the beam network 50. In one embodiment, a set of transceivers 30 is connected to each of the beamformer networks 51 via a switching network 58 to generate M signal streams, thereby enabling the front-end antenna system 1-1 to perform beam combining, splitting, and switching routines. In one embodiment, the multiport antenna 10-5 may be connected to the set of transceivers 30 by a switching network 110 similar to the switching network 58, thereby enabling the front-end antenna system 1-1 to switch the active port of the multiport antenna 10-5 (e.g., select the beam direction).

[0096] In one embodiment, each subarray 72 includes n elements or its equivalent based on the type of antenna (e.g., metamaterial antenna or continuous aperture antenna). If each subarray 72 is identical, the front-end antenna system 1-1 has a total size of N=n×m elements (or an equivalent array system of N elements), where m represents the number of subarrays 72 or sets of antennas in the front-end antenna system 1-1. In other words, an array of N elements can be grouped into n-element subarrays 72. These subarrays 72 can have features that add exemplary groupings to array components for system manufacturing. For example, in some exemplary variations, the drivers for the subarrays 72 can be fabricated into a single RFIC or set of RFICs.

[0097] In one embodiment, the multiport antenna 10-5 (or single-port antenna) has various functionalities (e.g., active, passive, high gain or low gain, pencil beam, fan beam, or broad beam, etc.) and / or types (e.g., metamaterial antenna). When the multiport antenna 10-5 (or single-port antenna) is a passive antenna, the number of elements n in each array may correspond to the number of antenna ports k, and as an example, n and k may be equal or of the same order of magnitude. As another example, k may be on the order of √n.

[0098] In some embodiments, the set of transceivers 30 of the front-end antenna system 1-1 includes one or more transceivers 30. In some embodiments, the number of transceivers 30 is equal to or less than the number of antenna ports k.

[0099] Referring to FIG. 4, a beamformer network 51 and switching networks 58-1, 58-2, ..., 58-M (collectively referred to as "switching networks 58") are shown. In one embodiment, the beamformer network 51 and the switching network 58 are connected to k' transceivers 30. In one embodiment, for the M beams and k' transceivers 30, the switching network 58 includes switches 60-1, 60-2, ..., 60-k' (collectively referred to as "switches 60"), respectively. In one embodiment, each beam is connected to one of the switching networks 58, and one switching network 58 is connected to each of the k' transceivers 30 via the switches 60. As an example, switch 60-1 of switching network 58-1 is connected to transceiver 30-1, switch 60-2 of switching network 58-1 is connected to transceiver 30-2, and switch 60-k' of switching network 58-1 is connected to transceiver 30-k'. In one form, the front-end antenna system 1 includes k' switching networks 58 each having M switches 60, each of which is connected to one of the transceivers 30 and to all of the phase shifters 52 by switches located therein.

[0100] In one embodiment, the beamformer network 51 may have different characteristics at different stages, making it suitable for particular frequency bands (e.g., millimeter wave bands). As an example, an analog beamformer may be implemented with a radio frequency (RF) stage, an intermediate frequency (IF) stage, an LO stage, or a combination thereof.

[0101] In one embodiment, if the beamformer network 51 is implemented with an RF stage (i.e., RF beamforming), one of a phase shifter 52, a time delay circuit 54, a variable gain amplifier 62, and a signal combiner 64 may be provided for each beam of each signal path. In one embodiment, each phase shifter 52 and variable gain amplifier 62 changes the RF signal to a desired phase and amplitude within the RF band. The signal combiner 64 then combines the changed signals for each beam and port.

[0102] In one embodiment, when the beamformer network 51 is implemented with an IF stage (i.e., IF beamforming), one of a phase shifter 52, a time delay circuit 54, a variable gain amplifier 62, a signal combiner 64, and a mixer 66 may be provided for each beam in each signal path. The phase shifter 52 and the variable gain amplifier 62 convert the RF signal to the IF band and change the resulting IF signal to the desired phase and amplitude. The signal combiner 64 then combines the converted signal for each beam and port, and the mixer 66 combines the input signal with an LO signal and converts the signal to the IF band. The LO signal is distributed and synchronized to all antennas and / or beamformers.

[0103] In one embodiment, when the beamformer network 51 is implemented with an LO stage (i.e., LO beamforming), one of a phase shifter 52 (e.g., a phase rotator or a vector modulator-based phase shifter), a time delay circuit 54, a variable gain amplifier 62, and a mixer 66 may be provided for each beam in each signal path. The phase shifter 52 and the variable gain amplifier 62 modify the phase and / or amplitude of the LO signal for each beam in each port, and the mixer 66 mixes the modified LO signal with the RF signal to translate it to the IF band according to the desired phase and amplitude. In one embodiment, the variable gain amplifier 62 is provided in the IF path or the LO path. In one embodiment, the phase shifter 52 may be integrated with the mixer 66.

[0104] In one embodiment, if the beamformer network 51 is implemented with digital stages (i.e., digital beamforming), one of a phase shifter 52, a time delay circuit 54, a variable gain amplifier 62, a signal combiner 64, a mixer 66, a digital-to-analog converter (DAC) 68, and an analog-to-digital converter (ADC) 69 may be provided for each beam in each signal path. In one embodiment, the IF signal is converted from an analog signal to a digital signal using the ADC 69 during receive mode, and the phase shifter 52, the time delay circuit 54, and the variable gain amplifier 62 vary at least one of the phase, time delay, and / or amplitude of the digital signal. The signal combiner 64 then combines the converted digital signals for each beam and port. Similarly, during transmit mode, the DAC 68 converts the digital signal to an analog signal, and the phase shifter 52, the time delay circuit 54, and the variable gain amplifier 62 vary at least one of the phase, time delay, and / or amplitude of the analog signal. A signal combiner 64 then combines the modified analog signals for each beam and port.

[0105] In one embodiment, when the beamformer network 51 is implemented with a combination of IF and digital stages of a hybrid beamformer, one of a phase shifter 52, a time delay circuit 54, a variable gain amplifier 62, a signal combiner 64, and a mixer 66 may be provided for each beam of each signal path in the IF stage. Inputs and outputs from the IF beamformer are connected to the digital beamformer, and one of a DAC 68, an ADC 69, a phase shifter 52, a variable gain amplifier 62, and / or a signal combiner 64 may be provided for each beam of each signal path. In each stage of the hybrid beamformer, the phase shifter 52 and the variable gain amplifier 62 are configured to vary at least one of the phase, time delay, and / or amplitude of the signal. The signal combiner 64 then combines the varied signals for each beam and port.

[0106] 5, an RFIC 100 is shown that includes M beam networks 50 and k' transceivers 30'. In one embodiment, the RFIC 100 includes N elements (or equivalents of the N elements of the front-end antenna system 1). In one embodiment, the M beam networks 50 are connected to antenna ports and / or elements of the subarrays 70, thereby providing a modular, tileable front-end antenna system that is customizable and reduces complexity and cost.

[0107] Referring to FIG. 6, a schematic diagram of beams 18, 20, and 22 output by antenna 10-6, which may be a passive multiport antenna having ports 16-1, 16-2 through 16-k (collectively referred to as "ports 16"). In one embodiment, exciting one of ports 16 generates a corresponding beam having predetermined radiation parameters, such as pattern and direction. In one embodiment, beams 18, 20, and 22 overlap; in another embodiment, beams 18, 20, and 22 do not overlap. In one embodiment, beams 18, 20, and 22 span a desired spatial region (e.g., a 2D or 3D FOV). In one embodiment, the radiation parameters of beams 18, 20, and 22 are independently controlled by beam network 50 and / or controller 90. In another embodiment, antenna 10-6 may be a single-port antenna that always generates a single beam with specific radiation parameters.

[0108] Referring to FIG. 7, a schematic diagram of beams 24, 26, and 28 output by antenna 10-7, which may be an active multiport antenna having ports 17-1, 17-2 through 17-k (collectively referred to as "ports 17"). In one embodiment, antenna 10-7 includes electrically controlled adjustable mechanisms, and controller 90 is configured to change the radiation parameters of beams 24, 26, and 28 by adjusting the adjustable mechanisms of antenna 10-7. Accordingly, controller 90 may include external and / or digital control circuitry for performing the functions described herein. In one embodiment, antenna 10-7 includes integrated active elements, thereby enabling controller 90 to perform beam correction and control routines. While one controller 90 is shown, front-end antenna system 1 may include multiple controllers 90 (e.g., one controller 90 for each antenna 10) in other embodiments.

[0109] 8A-8C, various exemplary beam networks 50 of front-end antenna systems are shown. Specifically, FIG. 8A illustrates a digital beam network as the beam network 50 of front-end antenna system 1-2, FIG. 8B illustrates a hybrid beam network (e.g., an analog beam network and a digital beam network) as the beam network 50 of front-end antenna system 1-3, and FIG. 8C illustrates a hybrid beam network (e.g., an analog beam network and a digital beam network) as the beam network 50 of front-end antenna system 1-4.

[0110] 8A , the front-end antenna system 1-2 includes a set of digital beam networks 200 (as beam networks 50), a converter network 202 (e.g., DACs 68 and / or ADCs 69), an intermediate frequency (IF) converter network 204, a set of transceivers 30, and an array of antennas 10. In one embodiment, the front-end antenna system 1-2 includes k beams (each beam including one or more signal streams), k digital beam networks 200, and an array of N antennas 10. The digital beam networks 200 are coupled to the converter networks 202, which are coupled to an IF converter network 204 (e.g., a set of up / down frequency converters) for converting the beams to desired frequencies in the IF band. The IF stages described herein may correspond to the IF converter network 204, the digital beam networks 200 described herein may correspond to the digital stages, and the RF stages may correspond to the converter network 202.

[0111] 8B, the front-end antenna system 1-3 includes a set of analog beam networks 206 (as beam network 50). The front-end antenna system 1-3 further includes a converter network 202, an IF converter network 204, a set of transceivers 30, and an array of antennas 10. In one embodiment, the front-end antenna system 1-3 includes k beams (each beam including one or more signal streams), k analog beam networks 206, and an array of N antennas 10. The converter network 202 is coupled to the analog beam network 206 to generate analog signals. The analog beam network 206 is coupled to an IF converter network 204 (e.g., a set of up / down frequency converters) to convert the beams to desired frequencies in the IF band. The components of the front-end antenna system 1-3 may have different arrangements in other embodiments. As an example, the converter network 202 may be coupled to an IF converter network 204 to convert the beams to a desired frequency in the RF band, and the IF converter network 204 may be coupled to a collection of analog beam networks 206 to generate RF signals.

[0112] Referring to FIG. 8C, the front-end antenna system 1-4 includes a set of digital beam networks 200 (as beamformer networks 50) and a set of analog beam networks 206. The front-end antenna system 1-4 further includes a converter network 202, an IF converter network 204, a set of transceivers 30, an array of antennas 10, and an array of antennas 208 (e.g., an array of active antennas). In one embodiment, the front-end antenna system 1-4 includes k beams (each beam including one or more signal streams), k digital beam networks 200, M analog beam networks 206, an array of N antennas 208, and N′ connection ports of the antennas 208. In one embodiment, the N′ connection ports may include connections to ports of a set of multi-port antennas or a set of single-port antennas, as described in more detail below with reference to FIGS. 9A-9C. In one aspect, the number of connection ports (N′) is less than or equal to the number of antennas 208 in the array (N). In one embodiment, the number of beams (k) is less than or equal to the number of analog beam networks 206 (M).

[0113] In one embodiment, the digital beam network 200 is coupled to a converter network 202, which is coupled to an analog beam network 206 to generate an analog signal. The analog beam network 206 is coupled to an IF converter network 204 (e.g., a set of up / down frequency converters) to convert the beams to a desired frequency in the IF band. It should be understood that the components of the front-end antenna systems 1-4 may have different arrangements in other embodiments. As an example, the converter network 202 may be coupled to an IF converter network 204 to convert the beams to a desired frequency in the RF band, and the IF converter network 204 may be coupled to a set of analog beam networks 206 to generate an RF signal.

[0114] In one embodiment, the front-end antenna systems 1-4 are operable in a transmit mode, a receive mode, or both a transmit mode and a receive mode simultaneously. As an example, in a transmit mode, the digital beam network 200 is configured to split and / or select one or more signal streams, the DAC 68 is configured to convert one or more signal streams to one or more analog signal streams, and the analog beam network 206 is configured to split and / or select one or more signal streams, or a combination thereof. As another example, in a receive mode, the analog beam network 206 is configured to combine and / or select one or more signal streams, the ADC 69 is configured to convert one or more signal streams to one or more digital signal streams, and the digital beam network 200 is configured to combine and / or select one or more signal streams, or a combination thereof.

[0115] 9A , an example of a set of antennas 208-1 (as antennas 208) of front-end antenna systems 1-4 is shown. In one embodiment, the set of antennas 208-1 may include a multi-port antenna 210 having x′ ports and may be coupled to a switching network 58. In one embodiment, the switching network 58 is configured to independently control the x′ ports of the multi-port antenna 210 and control various radiation parameters of the multi-port antenna 210, such as beam direction, polarization, and power. The switching network 58 may be implemented in one or more stages of the front-end antenna systems 1-4, such as a digital stage, an IF stage, an RF stage, or a combination thereof. In one aspect, the set of beamformer networks 51 may be implemented in one or more stages of the front-end antenna systems 1-4, such as a digital stage (DBF), an analog stage (ABF), or a combination thereof.

[0116] Referring to FIG. 9B , an example set of antennas 208-2 (as antennas 208) of front-end antenna systems 1-4 is shown. In one embodiment, the set of antennas 208-2 includes multiple multiport antennas 212-1, ..., 212-n (collectively referred to as multiport antennas 212) that collectively form y' ports. It should be understood that each of the multiport antennas 212 may have the same number of ports or a different number of ports. In one embodiment, the number of ports (y') is equal to the number of connections (J) to antenna 208-2. It should be understood that the set of antennas 208-2 may be coupled to a switching network 58 to independently control the y' ports of the multiport antenna 212 to control various radiation parameters of the multiport antenna 212, such as beam direction, polarization, and power. In one embodiment, the set of switching networks 58 may be implemented in one or more stages of the front-end antenna systems 1-4, such as a digital stage, an IF stage, an RF stage, or a combination thereof. Similarly, a set of beamformer networks 51 may be implemented in one or more stages of the front-end antenna system 1-4, such as DBF, ABF, or a combination thereof.

[0117] 9C , an example of a set of antennas 208-3 (as antennas 208) of front-end antenna systems 1-4 is shown. In one embodiment, the set of antennas 208-3 includes a plurality of active antennas 214-1,..., 214-n (collectively referred to as active antennas 214) that collectively form z' ports that can be coupled to a switching network 58, which includes a number of switches 60. The switching network 58 is configured to independently control the z' ports of the active antennas 214 to control various radiation parameters, such as beam direction, power, polarization, and beam shape. In one embodiment, the set of switching networks 58 may be implemented in one or more stages of the front-end antenna systems 1-4, such as a digital stage, an IF stage, an RF stage, or a combination thereof. Similarly, the set of beamformer networks 51 may be implemented in one or more stages of the front-end antenna systems 1-4, such as a DBF, an ABF, or a combination thereof.

[0118] 10, exemplary multiport antennas 220-1, 220-2, ..., 220-n (collectively "multiport antennas 220") are shown (as one of the multiport antennas 210, 212 shown in FIGS. 9A-9B). In one embodiment, each multiport antenna 220 includes k' ports and is connected to a set of k" beamformer networks 51. In one embodiment, each multiport antenna 220 is connected to a given transceiver 30, although each multiport antenna 220 may be connected to multiple transceivers 30 in the set of transceivers 30. In one embodiment, the set of transceivers 30 is connected to a set of k" beamformer networks 51. Thus, the k" beamformer networks 51 can form k beams, where k = k' x k". In one embodiment, each antenna port of the multi-port antenna 220 is coupled to at least two delay elements (ie, phase shifters 52 and / or time delay circuits 54 ) of a given beamformer network 51 .

[0119] Referring to FIG. 11 , N′ active antennas 214 (as antennas 208) are shown. In one embodiment, the active antennas 214 include single-port antennas, multi-port antennas, or a combination thereof, with the active antennas 214 collectively forming k′ ports. In one embodiment, each active antenna 214 is connected to a set of k″ beamformer networks 51 and to a given transceiver 30, although it should be understood that each active antenna 214 may be connected to multiple transceivers 30 in the set of transceivers 30. In one embodiment, the set of transceivers 30 is connected to a set of k″ beamformer networks 51. Thus, the k″ beamformer networks 51 form k beams, where k=k″, k=k′×k″, or k″≦k≦k′×k″. In one embodiment, each antenna port of the active antenna 214 is coupled to at least two delay elements (i.e., phase shifters 52 and / or time delay circuits 54) of a given beamformer network 51.

[0120] 12A, an example of a functional block diagram of a front-end antenna system (e.g., front-end antenna systems 1-4) configured to perform hybrid beam network processing is shown. In one aspect, the layers of the functional block diagram correspond to various stages / functions of the front-end antenna systems 1-4. Although the layers are shown separately, it should be understood that any of the layers may be combined with each other in other configurations and are not limited to the arrangements described herein.

[0121] In one embodiment, the front-end antenna systems 1-4 include an antenna layer 300, an analog layer 310 (interchangeably referred to herein as an RF layer 310), and a digital layer 320. In one embodiment, the antenna layer 300 includes a distribution network layer 302 including antenna interfaces / ports, a feed layer 304 including antenna structures, and a radiation layer 306 including tunable components of the antenna 10. In one embodiment, the analog layer 310 includes an IF beam network layer 312, an RF beam network layer 314, and a TRX layer 316 for performing the functions described herein. In one embodiment, the digital layer 320 includes a baseband layer 322 for performing baseband processing, a digital beam network layer 324, and a DAC / ADC layer 326 for performing analog-to-digital / digital-to-analog conversion. It should be understood that the digital layer 320 may include a modem and other digital system components. In one aspect, the separation of analog and digital groups can provide for the integration of analog circuits and blocks on a single die or set of dies having the same technology node.

[0122] 12B, there is shown another exemplary functional block diagram of the front-end antenna systems 1-4. The functional block diagram shown in FIG. 12B is similar to the functional block diagram shown in FIG. 12A, except that the IF beamforming layer 312 is located within the digital layer 320.

[0123] 12C, an additional exemplary functional block diagram of front-end antenna systems 1-4 is shown. The functional block diagram illustrated in FIG. 12C is similar to the functional block diagram illustrated in FIG. 12C, except that RF layer 310 and digital layer 320 are provided within integrated circuit layer 330.

[0124] In one aspect, the antenna layer 300, the analog layer 310, the digital layer 320, and / or the integrated circuit layer 330 may be disposed on and / or include, among other things, printed circuit boards (PCBs), 3D or 2.5D molded and / or machined structures; dielectric, metal, and / or air-filled structures and materials; passive and / or active electronic devices (e.g., varactors, diodes, transistors, thin film transistors (TFTs), etc.), tunable materials (e.g., barium strontium titanate (BST)-based materials, liquid crystals, etc.) and / or structures. In one aspect, the antenna layer 300, the analog layer 310, the digital layer 320, and / or the integrated circuit layer 330 may be disposed on and / or include, among other things, RFICs, application-specific integrated circuits (ASICs), SoCs, and / or sets of such blocks (e.g., components, interconnects, etc.) integrated on a PCB.

[0125] 13, an exemplary computer architecture diagram of one implementation of computing system 1000 and front-end antenna system 1 is shown. In some implementations, computing system 1000 is implemented in multiple devices communicatively coupled via a communication channel and / or network. In some forms, components of computing system 1000 are implemented in separate computing and / or sensor devices. In some forms, two or more components of computing system 1000 are implemented in the same device. Computing system 1000, or portions thereof, may be integrated into computing and / or wireless devices.

[0126] In one embodiment, the communication channel 1001 interfaces with processors 1002A-1002N, memory components (e.g., random access memory (RAM) 1003, read-only memory (ROM) 1004, and / or processor-readable storage media 1005), a display device 1006, a user input device 1007, a network device 1008, the front-end antenna system 1 described herein, and / or other suitable computing devices.

[0127] In one form, the processors 1002A-1002N may include a central processing unit (CPU), a graphics processing unit (GPU), a microprocessor, a machine learning / deep learning (ML / DL) processing unit (e.g., a tensor processing unit), a field programmable gate array (FPGA), a custom processor, and / or any suitable type of processor.

[0128] In one form, the processors 1002A-1002N and the memory component 1003 collectively form a processing unit 1010. In some embodiments, the processing unit 1010 includes one or more processors communicatively coupled via a bus to one or more of the memory component 1003, the ROM 1004, and the processor-readable storage medium 1005 to execute instructions stored thereon. In one aspect, the processing unit 1010 is an ASIC, a SoC, or a combination thereof.

[0129] In one form, the network device 1008 provides one or more wired or wireless interfaces for exchanging information between the computing system 1000 and / or other devices, such as external devices. Exemplary network devices 1008 include, but are not limited to, a Universal Serial Bus (USB) interface, a BLUETOOTH® interface, a Wireless Fidelity (Wi-Fi) interface, an Ethernet interface, a Near Field Communication (NFC) interface, a cellular interface, etc.

[0130] In one form, the processor-readable storage medium 1005 is a hard drive, a flash drive, a DVD, a CD, an optical disk, a floppy disk, flash storage, a solid-state drive, a ROM, an EEPROM, an electronic circuit, a semiconductor memory device, or a combination thereof. The processor-readable storage medium 1005 may include an operating system, software programs, device drivers, and / or other suitable subsystems or software.

[0131] Unless otherwise expressly stated herein, all numerical values ​​expressing mechanical / thermal properties, compositional proportions, dimensions and / or tolerances, or other characteristics, when describing the scope of this disclosure, should be understood as being modified by the word "about" or "approximately." This modification is desirable for various reasons, including industrial practices, material, manufacturing, and assembly tolerances, and testing capabilities.

[0132] As used herein, the phrases "at least one of A, B, and C" and "combinations thereof" should be construed to mean a logical non-exclusive OR (A OR B OR C), and not to mean "at least one of A, at least one of B, and at least one of C."

[0133] As used herein, the terms "controller" and / or "module" may refer to, be part of, or include: an ASIC (application-specific integrated circuit); digital, analog, or mixed analog-digital discrete circuitry; digital, analog, or mixed analog-digital integrated circuitry; combinatorial logic circuitry; an FPGA (field-programmable gate array); processor circuitry (shared, dedicated, or group) that executes code; memory circuitry (shared, dedicated, or group) that stores code to be executed by the processor circuitry; other suitable hardware components that provide the functionality described herein; or a combination of some or all of the above, such as a system-on-chip.

[0134] The term memory is a subset of the term computer-readable medium. As used herein, the term computer-readable medium does not encompass transient electrical or electromagnetic signals propagating through a medium (such as on a carrier wave); therefore, the term computer-readable medium may be tangible and non-transitory. Non-limiting examples of non-transitory, tangible computer-readable media are non-volatile memory circuits (such as flash memory circuits, erasable programmable read-only memory circuits, or masked read-only circuits), volatile memory circuits (such as static random access memory circuits or dynamic random access memory circuits), magnetic storage media (such as analog or digital magnetic tape or hard disk drives), and optical storage media (such as CDs, DVDs, or Blu-ray discs).

[0135] The apparatus and methods described herein may be implemented partially or completely by a special-purpose computer created by configuring a general-purpose computer to perform one or more specific functions embodied in a computer program. The functional blocks, flowchart components, and other elements described above function as software specifications and may be converted into a computer program by the routine work of a skilled engineer or programmer.

[0136] The description of the present disclosure is merely exemplary in nature and, thus, variations that do not depart from the essence of the disclosure are intended to be within the scope of the disclosure. Such variations are not to be regarded as a departure from the spirit and scope of the disclosure.

Claims

1. 1. A front-end antenna system for transmitting and receiving one or more beams, comprising at least one of a radio frequency (RF) stage, an intermediate frequency (IF) stage, and a digital stage, one or more beam networks configured to form one or more signal streams on the one or more beams, each beam network of the one or more beam networks comprising a beamformer network and a switching network; an array of multiport antennas configured to output or receive each of the beams, each multiport antenna of the array of multiport antennas including a plurality of ports, each port of the multiport antenna operable to output or receive one of the one or more beams in a desired beam direction; and a plurality of transceivers electrically coupling the array of multi-port antennas to the one or more beam networks; Equipped with the switching network selectively provides the one or more signal streams via the plurality of transceivers to one or more selected ports of the plurality of ports of a multi-port antenna of the array of multi-port antennas.

2. a controller configured to independently control the radiation parameters and beam type of the one or more beams; the radiation parameters include beam direction, pattern, power, polarization, phase angle, frequency band, or a combination thereof; 10. The front end antenna system of claim 1, wherein the beam type comprises one of a transmit type beam, a receive type beam, and a simultaneous receive and transmit type beam.

3. the one or more beams include at least two beams having the same polarization; 2. The front-end antenna system of claim 1, wherein one multi-port antenna of the array of multi-port antennas is operable to transmit, receive, or transceive the at least two beams having the same polarization from at least two ports of the plurality of ports, the at least two ports being associated with different beam directions.

4. 10. The front-end antenna system of claim 1, wherein the beamformer network includes one or more phase shifters, one or more time delay circuits, one or more combiners, one or more variable gain amplifiers, one or more splitters, or combinations thereof.

5. 2. The front-end antenna system of claim 1, wherein the one or more beam networks are configured to form the one or more beams at the RF stage, the IF stage, the digital stage, a local oscillator stage, or a combination thereof.

6. 2. The front end antenna system of claim 1, wherein the number of the plurality of transceivers is less than the number of ports of the multi-port antenna in the array of multi-port antennas.

7. 10. The front-end antenna system of claim 1, wherein the switching network comprises one or more switches, one or more combiners, one or more splitters, one or more coupled lines, one or more filters, or a combination thereof.

8. the one or more beams include at least two beams; the one or more beam networks include a plurality of beamformer networks for outputting a plurality of signal streams; 2. The front-end antenna system of claim 1, wherein at least two signal streams of the plurality of signal streams output by at least two beamformer networks of the plurality of beamformer networks are combined and transmitted or received and split via one transceiver of the plurality of transceivers and one multiport antenna of the array of multiport antennas.

9. the beam network is a hybrid beam network having an analog beam network portion and a digital beam network portion; the plurality of transceivers include an analog-to-digital converter and a digital-to-analog converter; In a transmit mode, (i) the digital beam network section is configured to split the one or more signal streams; (ii) the digital beam network section is configured to select the one or more signal streams; (iii) the digital-to-analog converter is configured to convert the one or more signal streams into one or more analog signal streams, and the analog beam network section is configured to split the one or more signal streams, select the one or more signal streams, or a combination thereof; or (iv) a combination of some or all of (i), (ii), and (iii); In a receive mode, (v) the analog beam network section is configured to combine the one or more signal streams; (vi) the analog beam network section is configured to select the one or more signal streams; (vii) the analog-to-digital converter converts the one or more signal streams into one or more digital signal streams; and the digital beam network section is configured to combine the one or more signal streams, select the one or more signal streams, or perform a combination thereof; or (viii) perform a combination of some or all of (v), (vi), and (vii).

10. The front end antenna system of claim 1.

10. further comprising a plurality of sub-arrays; Each subarray of the plurality of subarrays comprises: one or more substrate layers, one or more electronic chips, or a combination thereof; one or more multi-port antennas in the array of multi-port antennas; a set of transceivers of the plurality of transceivers; 10. The front-end antenna system of claim 1, wherein the plurality of sub-arrays are coupled to one another via a signal distribution network, the one or more beam networks, the plurality of transceivers, or a combination thereof.

11. the plurality of subarrays having one of a planar arrangement and a non-planar arrangement; a first subarray of the plurality of subarrays having a first set of geometric parameters; a second subarray of the plurality of subarrays having a second set of geometric parameters; 11. The front-end antenna system of claim 10, wherein at least one geometric parameter of the first set of geometric parameters is made different from at least one geometric parameter of the second set of geometric parameters.

12. 10. The front-end antenna system of claim 1, wherein at least one multi-port antenna of the array of multi-port antennas is an active antenna having one or more tunable components.

Citation Information

Patent Citations

  • Radio frequency emission pattern shaping

    US20170222334A1

  • Active distributed antenna system with frequency translation and switch matrix

    US20200366000A1