WO2025008906A1 - System and method for providing a 4t4r 5g new radio (nr) pico small cell (psc) - Google Patents
System and method for providing a 4t4r 5g new radio (nr) pico small cell (psc) Download PDFInfo
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- WO2025008906A1 WO2025008906A1 PCT/IN2024/050802 IN2024050802W WO2025008906A1 WO 2025008906 A1 WO2025008906 A1 WO 2025008906A1 IN 2024050802 W IN2024050802 W IN 2024050802W WO 2025008906 A1 WO2025008906 A1 WO 2025008906A1
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B1/00—Details of transmission systems, not covered by a single one of groups H04B3/00 - H04B13/00; Details of transmission systems not characterised by the medium used for transmission
- H04B1/38—Transceivers, i.e. devices in which transmitter and receiver form a structural unit and in which at least one part is used for functions of transmitting and receiving
- H04B1/40—Circuits
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B1/00—Details of transmission systems, not covered by a single one of groups H04B3/00 - H04B13/00; Details of transmission systems not characterised by the medium used for transmission
- H04B1/06—Receivers
- H04B1/16—Circuits
- H04B1/18—Input circuits, e.g. for coupling to an antenna or a transmission line
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B1/00—Details of transmission systems, not covered by a single one of groups H04B3/00 - H04B13/00; Details of transmission systems not characterised by the medium used for transmission
- H04B1/02—Transmitters
- H04B1/04—Circuits
- H04B2001/0408—Circuits with power amplifiers
- H04B2001/0425—Circuits with power amplifiers with linearisation using predistortion
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W28/00—Network traffic management; Network resource management
- H04W28/02—Traffic management, e.g. flow control or congestion control
- H04W28/08—Load balancing or load distribution
Definitions
- a portion of the disclosure of this patent document contains material, which is subject to intellectual property rights such as, but are not limited to, copyright, design, trademark, Integrated Circuit (IC) layout design, and/or trade dress protection, belonging to Jio Platforms Limited (JPL) or its affiliates (herein after referred as owner).
- JPL Jio Platforms Limited
- owner has no objection to the facsimile reproduction by anyone of the patent document or the patent disclosure, as it appears in the Patent and Trademark Office patent files or records, but otherwise reserves all rights whatsoever. All rights to such intellectual property are fully reserved by the owner.
- the present disclosure relates to wireless cellular communications, and specifically to a system and a method for providing a 5G New Radio (NR) Pico Small Cell (PSC).
- NR 5G New Radio
- PSC Pico Small Cell
- a dedicated indoor solution i.e. a Distributed Antenna System (DAS) is recommended for large venues.
- DAS Distributed Antenna System
- the DAS is an array of antennas strategically placed throughout an indoor facility that distributes a coverage area of the large venues into smaller sections using a network of interconnected antennas.
- QoS Quality of Service
- PSC Planar Cost Control
- 4T4R 5G NR PSC that meets all Radio Frequency (RF) performance requirement mentioned in 3r Generation Partnership project (3GPP) standard (TS 38.141) after integrating Time Division Duplex (TDD) based 4T4R 5G NR PSC with a Crest Factor Reduction (CFR) and a Digital Pre-Distortion (DPD) modules in a digital front-end lineup.
- 3GPP 3r Generation Partnership project
- IP Ingress Protection
- SON selforganizing network
- a Four-Transmit, Four-Receive (4T4R) Fifth Generation (5G) New Radio (NR) Pico Small Cell (PSC) for managing network traffic is described.
- the 4T4R 5G NR PSC includes an Integrated Baseband and Transceiver Board (IBTB) with a clock section including a plurality of system synchronizers configured based on at least one of a Global Positioning System (GPS), a Precision Time Protocol (PTP) and a holdover.
- GPS Global Positioning System
- PTP Precision Time Protocol
- the 4T4R 5G NR PSC includes a Radio-Frequency Front End Board (RFEB) configured to connect with the IBTB to provide a pre-defined output.
- RFEB Radio-Frequency Front End Board
- the 4T4R 5G NR PSC includes a heat sink comprising a plurality of heat pipes having high thermal conductivity and vertical fins for enhancing heat dissipation.
- the 4T4R 5G NR PSC includes a plurality of temperature sensors on the IBTB to measure a temperature of each of a set of sections of the IBTB for thermal management.
- the 5G NR PSC is configured to offload heavy traffic from a plurality of macro cells and provide an enhanced signal in a high traffic indoor environment and a high traffic outdoor environment.
- the IBTB integrates an Application-Specific Integrated Circuit (ASIC) transceiver chipset for processing a first layer and a baseband processor chipset for processing a second layer and a third layer.
- ASIC Application-Specific Integrated Circuit
- the clock section includes a plurality of ultralow noise clock generation Phase-Locked Loops (PLLs) (306), a plurality of programmable oscillators, and the plurality of system synchronizers (304) to maintain synchronization with one or more external systems.
- the RFEB includes a pre-defined set of transmit chains for signal transmission, each with a matching Balun, a pre-driver amplifier, and a RF power amplifier.
- the REFE further includes a pre-defined set of receive chains for signal reception, each with a low noise amplifier, a band pass Surface Acoustic Wave (SAW) filter, and a matching network.
- the REFE further includes a pre-defined set of observation chains, each acting as a Digital PreDistortion (DPD) feedback path from power amplifiers (PAs) to the ASIC transceiver chipset for linearization.
- DPD Digital PreDistortion
- the heat sink incorporating the plurality of heat pipes are configured to provide a uniform heat distribution and is designed to enhance an overall product size and a weight efficiency.
- the RFEB in connection with the IBTB is configured to provide the pre-defined output.
- a method for designing a Four- Transmit, Four-Receive (4T4R) 5G New Radio (NR) Pico Small Cell (PSC) managing network traffic includes integrating an Integrated Baseband and Transceiver Board (IBTB) with a clock section including a plurality of system synchronizers configured based on a Global Positioning System (GPS), a Precision Time Protocol (PTP), and a holdover.
- the method includes connecting a Radio-Frequency Front End Board (RFEB) with the IBTB and to provide a pre-defined output.
- the method includes implementing a heat sink with a plurality of heat pipes having high thermal conductivity and vertical fins for enhancing heat dissipation.
- the method includes measuring via a set of temperature sensors integrated on the IBTB (122), a temperature of each of a set of sections of the IBTB for thermal management.
- the 4T4R 5G NR PSC is configured to offload heavy traffic from a plurality of macro cells and provide an enhanced signal in a pre-defined traffic indoor environment and a pre-defined traffic outdoor environment.
- the clock section includes a plurality of ultralow noise clock generation Phased-Locked Loops (PLLs), a plurality of programmable oscillators, and the plurality of system synchronizers to maintain synchronization with one or more external systems.
- PLLs Phased-Locked Loops
- the RFEB includes a pre-defined set of transmit chains for signal transmission, each with a matching Balun, a pre-driver amplifier, and a RF power amplifier, a pre-defined set of receive chains for signal reception, each with a low noise amplifier, a band pass Surface Acoustic Wave (SAW) filter, and a matching network, and a pre-defined set of observation chains, each acting as a Digital Pre-Distortion (DPD) feedback paths from power amplifiers (PAs) to the ASIC transceiver chipset for linearization.
- DPD Digital Pre-Distortion
- the heat sink incorporates the plurality of heat pipes configured to provide a uniform heat distribution and is designed to enhance an overall product size and a weight efficiency.
- the RFEB in connection with the IBTB is configured to provide the pre-defined output.
- FIG. 1A illustrates an exemplary network architecture in which or with which a system for managing for managing network traffic via a Four- Transmit, Four-Receive (4T4R) 5G New Radio (NR) Pico Small Cell (PSC) (4T4R 5G NR PSC) is implemented, in accordance with an embodiment of the present disclosure.
- 4T4R Four-Receive 5G New Radio (NR) Pico Small Cell (PSC)
- NR New Radio
- PSC Pico Small Cell
- FIG. IB illustrates a high-level architecture of the 4T4R 5G NR PSC, in accordance with an embodiment of the present disclosure.
- FIG. 2 illustrates a high-level architecture of an Integrated Baseband and Transceiver Board (IBTB), in accordance with an embodiment of the present disclosure.
- IBTB Integrated Baseband and Transceiver Board
- FIG. 5 illustrates a flow diagram of a method for designing a Four- Transmit, Four-Receive (4T4R) 5G New Radio (NR) Pico Small Cell (PSC) for managing network traffic, in accordance with an embodiment of the present disclosure.
- FIG. 6 illustrates an exemplary computer system in which or with which embodiments of the present invention may be implemented, in accordance with an embodiment of the present disclosure.
- IBTB Integrated Baseband and Transceiver Board
- LNA Low Noise Amplifiers
- TDD Time Division Duplex
- IBTB Integrated Baseband and Transceiver Board
- JTAG Joint Test Action Group
- Inter- Integrated Circuit (I2C) Device 214 Double Data Rate 4 (DDR4)
- SDHC Secure Digital High Capacity
- SERDES Serializer/Deserializer
- GPS Global Positioning System
- DC-DC power supply or a Power Management Integrated Chipset (PMIC)
- ROM Read-only memory
- Mass storage device Mass storage device
- individual embodiments may be described as a process which is depicted as a flowchart, a flow diagram, a data flow diagram, a structure diagram, or a block diagram. Although a flowchart may describe the operations as a sequential process, many of the operations can be performed in parallel or concurrently. In addition, the order of the operations may be re-arranged. A process is terminated when its operations are completed but could have additional steps not included in a figure. A process may correspond to a method, a function, a procedure, a subroutine, a subprogram, etc. When a process corresponds to a function, its termination can correspond to a return of the function to the calling function or the main function.
- exemplary and/or “demonstrative” is used herein to mean serving as an example, instance, or illustration. For the avoidance of doubt, the subject matter disclosed herein is not limited by such examples.
- any aspect or design described herein as “exemplary” and/or “demonstrative” is not necessarily to be construed as preferred or advantageous over other aspects or designs, nor is it meant to preclude equivalent exemplary structures and techniques known to those of ordinary skill in the art.
- FIG. 1A illustrates an exemplary network architecture in which or with which a system (108) for managing network traffic via a Four-Transmit, Four- Receive (4T4R) 5G New Radio (NR) Pico Small Cell (PSC) (4T4R 5G NR PSC) is implemented, in accordance with embodiments of the present disclosure.
- a system (108) for managing network traffic via a Four-Transmit, Four- Receive (4T4R) 5G New Radio (NR) Pico Small Cell (PSC) (4T4R 5G NR PSC) is implemented, in accordance with embodiments of the present disclosure.
- the network architecture (100) includes one or more computing devices or user equipments (104-1, 104-2. .. 104-N) associated with one or more users (102-1, 102-2. .. 102-N) in an environment.
- a person of ordinary skill in the art will understand that one or more users (102-1, 102-2. . . 102- N) may be individually referred to as the user (102) and collectively referred to as the users (102).
- one or more user equipments (104-1, 104-2. . . 104-N) may be individually referred to as the user equipment (104) and collectively referred to as the user equipment (104).
- computing device(s) and “user equipment” may be used interchangeably throughout the disclosure. Although three user equipments (104) are depicted in FIG. 1, however any number of the user equipments (104) may be included without departing from the scope of the ongoing description.
- the user equipment (104) includes smart devices operating in a smart environment, for example, an Internet of Things (loT) system.
- the user equipment (104) may include, but is not limited to, smart phones, smart watches, smart sensors (e.g., mechanical, thermal, electrical, magnetic, etc.), networked appliances, networked peripheral devices, networked lighting system, communication devices, networked vehicle accessories, networked vehicular devices, smart accessories, tablets, smart televisions (TVs), computers, smart security systems, smart home systems, other devices for monitoring or interacting with or for the users (102) and/or entities, or any combination thereof.
- smart phones e.g., smart phones, smart watches, smart sensors (e.g., mechanical, thermal, electrical, magnetic, etc.), networked appliances, networked peripheral devices, networked lighting system, communication devices, networked vehicle accessories, networked vehicular devices, smart accessories, tablets, smart televisions (TVs), computers, smart security systems, smart home systems, other devices for monitoring or interacting with or for the users (102) and
- the user equipment (104) may include, but is not limited to, intelligent, multi-sensing, network-connected devices, that can integrate seamlessly with each other and/or with a central server or a cloud-computing system or any other device that is network-connected .
- the user equipment (104) includes, but is not limited to, a handheld wireless communication device (e.g., a mobile phone, a smart phone, a phablet device, and so on), a wearable computer device(e.g., a headmounted display computer device, a head-mounted camera device, a wristwatch computer device, and so on), a Global Positioning System (GPS) device, a laptop computer, a tablet computer, or another type of portable computer, a media playing device, a portable gaming system, and/or any other type of computer device with wireless communication capabilities, and the like.
- a handheld wireless communication device e.g., a mobile phone, a smart phone, a phablet device, and so on
- a wearable computer device e.g., a headmounted display computer device, a head-mounted camera device, a wristwatch computer device, and so on
- GPS Global Positioning System
- the user equipment (104) includes, but is not limited to, any electrical, electronic, electromechanical, or an equipment, or a combination of one or more of the above devices such as virtual reality (VR) devices, augmented reality (AR) devices, a laptop, a general-purpose computer, a desktop, a personal digital assistant, a tablet computer, a mainframe computer, or any other computing device, wherein the user equipment (104) may include one or more in-built or externally coupled accessories including, but not limited to, a visual aid device such as a camera, an audio aid, a microphone, a keyboard, and input devices for receiving input from the user (102), or an entity such as a touch pad, a touch enabled screen, an electronic pen, and the like.
- a visual aid device such as a camera, an audio aid, a microphone, a keyboard, and input devices for receiving input from the user (102)
- an entity such as a touch pad, a touch enabled screen, an electronic pen, and the like.
- the user equipment (104) may not be restricted to the mentioned
- the user equipment (104) communicates with the system (108), for example, a network traffic management system, through a network (106).
- the network (106) includes at least one of a Fifth Generation (5G) network, 6G network, or the like.
- the network (106) enables the user equipment (104) to communicate with other devices in the network architecture (100) and/or with the system (108).
- the network (106) includes a wireless card or some other transceiver connection to facilitate this communication.
- the network (106) is implemented as, or include any of a variety of different communication technologies such as a wide area network (WAN), a local area network (LAN), a wireless network, a mobile network, a Virtual Private Network (VPN), the Internet, the Public Switched Telephone Network (PSTN), or the like.
- WAN wide area network
- LAN local area network
- VPN Virtual Private Network
- PSTN Public Switched Telephone Network
- the centralized server (112) includes or comprise, by way of example but not limitation, one or more of: a standalone server, a server blade, a server rack, a bank of servers, a server farm, a hardware supporting a part of a cloud service or a system, a home server, a hardware running a virtualized server, one or more processors executing code to function as a server, one or more machines performing server-side functionality as described herein, at least a portion of any of the above, some combination thereof.
- the system (108) includes the 4T4R 5G NR PSC.
- the 4T4R 5G NR PSC may be configured to manage the network traffic within the traffic environment having the network traffic above a pre-defined threshold.
- a network administrator may have defined the pre-defined threshold to be 80% utilization of total available bandwidth for the network environment, e.g., an office space (with an area of 4200 square feet).
- An architecture of the 4T4R 5G NR PSC configured for managing the network traffic is depicted and explained in detail in conjunction with FIG. IB.
- FIG. IB illustrates a high-level architecture of the 4T4R 5G NR PSC, in accordance with an embodiment of the present disclosure.
- FIG. IB is explained in conjunction with FIG. 1A.
- the 4T4R 5G NR PSC is a small power next generation Node B (gNB) which operates in a Pico class (typically ⁇ 33 decibel milliwatt (dBm) per antenna port).
- gNB next generation Node B
- dBm decibel milliwatt
- the disclosed architecture of the 4T4R 5G NR PSC facilitates a reduction in an operational cost for a Distributed Antenna System (DAS) application. Further, a power consumption is reduced due to implementation of simplified cables and designs. Furthermore, the disclosed architecture uses a Precision Time Protocol (PTP) in the 4T4R 5G NR PSC.
- DAS Distributed Antenna System
- PTP Precision Time Protocol
- the disclosed 4T4R 5G NR PSC is an integration of the following different major sections: a Network Processor (126) an IBTB (122) a RFEB (124) including RF Chains (i.e., an RF Chain 1, an RF Chain 2, an RF Chain 3, an RF Chain 4) a second layer (i.e., a Layer 2 (L2)), a third layer (i.e., Layer 3 (L3)) and System Control (130) a first layer (i.e., a Layer 1 (LI) Controller) (132) a Cavity Filter + External Antenna (138) a Heat Pipe Based Mechanical Housing [0049]
- the network processor (126) is configured to manage an overall system control and management process. It is responsible for establishing and maintaining network connectivity, processing data packets, and ensuring efficient communication between the IBTB (122) and one or more external networks.
- the network processor (126) interfaces with a backhaul (120) to provide connectivity to a wider network infrastructure.
- the IBTB (122) integrates a baseband processor chipset for L2 and L3 processing, as well as an ASIC transceiver chipset for LI processing.
- the IBTB (122) includes a clock section with a plurality of system synchronizers configured based on at least one of a GPS, the PTP, or a holdover to maintain precise timing and synchronization.
- the IBTB (122) also includes temperature sensors to measure the temperatures of different sections for thermal management.
- the IBTB (122) blind mates with the Radio-Frequency Front End Board (124) to provide a robust connection without a need for complex cable routing.
- the baseband processor chipset integrated in the IBTB (122) handles the L2 and L3 layer processing, which includes functions such as MAC (Medium Access Control) layer processing, scheduling, and data encryption.
- the ASIC transceiver chipset manages the LI layer processing, which includes the physical layer operations like modulation, demodulation, error correction, and bit stream generation. The combination of these chipsets on the IBTB (122) ensures efficient handling of data communication processes within the 4R4T 5G NR PSC.
- the RFEB (124) includes a predefined set of RF chains (for example, a set of four RF chains, i.e., the RF Chain 1, the RF Chain 2, the RF Chain 3, and the RF Chain 4).
- each of the predefined set of RF chains may include a pre-defined set of transmit chains (e.g., four transmit chains) for signal transmission, a pre-defined set of receive chains (e.g., four receive chains) for signal reception, and a pre-defined set of observation chains (e.g., four observation chains).
- the pre-defined set of transmit chains and the pre-defined set of receive chains may include components, such as a matching balun, a pre-driv er amplifier, and an RF power amplifier (PA), a low noise amplifier (LNA), a band pass Surface Acoustic Wave (SAW) filter, a matching network, a circulator, and a Time-Division Duplexing (TDD) switch depicted as a block (306), for transmission and reception.
- the pre-defined set of observation chains act as Digital Pre-Distortion (DPD) feedback paths from the power amplifiers (PAs) to the ASIC transceiver chipset for linearization.
- DPD Digital Pre-Distortion
- Each transmit chain within the RFEB (124) includes the matching Balun to convert between balanced and unbalanced signals, the pre-driver amplifier to boost a signal before final amplification stage, and the RF power amplifier, i.e., a final RF power amplifier to ensure the signal is strong enough for transmission.
- Each receive chain include the LNA to boost weak incoming signals, the band pass SAW filter to filter out unwanted frequencies, and a matching network to ensure impedance matching for an optimal signal transfer.
- Each observation chain is used for feedback in the DPD feedback path, which corrects nonlinearities in the PAs to improve signal quality.
- the L2, L3, and System Control manages operations of the system (108) and controls the network processor (126).
- This module handles higher-layer protocols, system configuration, and overall management functions. It ensures that the 4T4R 5G NR PSC operates smoothly and efficiently by coordinating the activities of the various components within the system.
- the system control module also interfaces with external management systems to facilitate remote monitoring and control of the 4R4T 5G NR PSC.
- the LI controller (132) performs functions, such as a Physical Layer (PHY) processing, a Digital Up-Conversion (DUC), a Digital Down-Conversion (DDC), a Crest Factor Reduction (CFR), a Digital Pre-Distortion (DPD), and a Time-Division Duplexing (TDD) control. These functions are integral to the operation of the IBTB (122), ensuring efficient signal processing and transmission.
- the LI controller (132) manages a conversion of digital baseband signals to analog RF signals and vice versa, ensuring an accurate and efficient communication between different layers of the 4R4T 5G NR PSC.
- the cavity filter (138) and an integrated or an external antenna is implemented for signal transmission and reception.
- the cavity filter (138) provides steeper roll-off outside an operating band, which helps reduce interference and improve overall signal quality.
- the integrated or the external antenna is connected to the plurality of RF chains to facilitate communication with other network devices.
- the cavity filter (138) low-loss design ensures that the signal strength is maintained while unwanted frequencies are filtered out, contributing to the overall power efficiency of the 4T4R 5G NR PSC.
- the 4T4R 5G NR PSC includes the heat pipe based mechanical housing.
- the heat pipe based mechanical housing includes a heat sink that is designed with a plurality of heat pipes of high thermal conductivity and vertical fins to enhance heat dissipation and ensure uniform heat distribution across the heat sink.
- the plurality of heat pipes in the heat sink enables a reduction in an overall product (i.e., 4T4R5G NR PSC) size and weight, making the 4T4R5G NR compact and power efficient.
- a design of the 4T4R5G NR PSC ensures that the 4T4R5G NR PSC operates efficiently even in high-temperature environments, maintaining consistent performance and reliability.
- the IBTB (122) includes a plurality of temperature sensors.
- the plurality of temperature sensors is strategically placed on the IBTB (122) to measure a temperatures of a set of sections of the IBTB (122).
- This temperature monitoring capability helps in thermal management and ensures reliability of the system (108) including the 4T4R5G NR PSC by preventing thermal failures.
- This real-time data provided by these temperature sensors allow the system (108) to make decisions in case of thermal anomalies, ensuring longevity and stable operation.
- the overall configuration of the 4T4R5G NR PSC including the integration of the IBTB (122), the RFEB (124), the cavity filter and the integrated or the external antenna (138), and the heat sink, ensures that the 4T4R 5G NR PSC can effectively offload heavy traffic from a plurality of macro cells and provide enhanced signal quality in the traffic environment with the network traffic above the pre-defined threshold (e.g., 80%), i.e., high traffic indoor and outdoor environments.
- the pre-defined threshold e.g., 80%
- This compact and lightweight design combined with advanced thermal management and high-performance RF capabilities of the 4T4R5G NR PSC, makes it an ideal solution for providing an enhanced coverage and capacity in medium to smaller buildings, commercial establishments, and high-traffic areas.
- the 4T4R 5G NR PSC can be deployed to handle a heavy traffic load.
- the ability to provide enhanced indoor coverage ensures that users experience high-quality connectivity, reducing the traffic load on the plurality of macro cells in a network and improving overall network performance.
- the IBTB (122) is designed to meet stringent power and performance requirements. It includes multiple power management integrated circuits (PMICs), DC-DC converters, and Low Dropout (LDO) regulators to efficiently convert an external -48V input DC voltage to various lower voltages needed by different devices on the IBTB (122).
- PMICs power management integrated circuits
- LDO Low Dropout
- the IBTB (122) offers two 1G Fiber Optic interfaces (SFP) for backhaul connections to networks, ensuring high-speed data transfer and connectivity.
- a system synchronization and clock operator circuit within a clock section of the IBTB (122) includes the ultra-low noise PLLs, a plurality of programmable oscillators, and a system synchronizer configured based on at least one of the GPS, the PTP, and the holdover. This setup ensures precise timing and synchronization, which are critical for maintaining seamless communication within the network.
- the plurality of temperature sensors on the IBTB (122) monitor a thermal profile of the IBTB (122), providing real-time data to a software for making decisions in case of thermal anomalies.
- This closed-loop thermal management system i.e., the clock section, ensures longevity and reliability of the 4T4R 5G NR PSC by preventing overheating and associated failures.
- FIG. 2 illustrates a high-level architecture 200 of the IBTB (122), in accordance with an embodiment of the present disclosure.
- the IBTB (122) integrates various sub-systems to perform multiple essential functions for the operation of the 4T4R 5G NR PSC.
- FIG. 2 is explained in conjunction with FIGS. 1A - IB.
- the IBTB (122) includes a baseband processor chipset for the L2 and L3 processing and the ASIC transceiver chipset for the LI processing.
- the L2 and L3 processing involves tasks such as a Medium Access Control (MAC) layer processing, a scheduling, and data encryption, while the LI processing involves physical layer operations including a modulation, a demodulation, an error correction, and a bit stream generation.
- MAC Medium Access Control
- the IBTB (122) receives an external -48V input DC voltage, which is down-converted to various lower voltages, required by different devices on the IBTB (122), from a power supply section (202). This voltage conversion is achieved through the PMIC, DC-DC converters (208), and Low Dropout (LDO) regulators, ensuring efficient power management and supplying necessary voltages to various sections of the IBTB (122).
- the IBTB (122) includes two 1G Fiber Optic interfaces (226), represented by CAGE SFP+1G Connectors (236). These 1G Fiber Optic interfaces (226) act as backhaul connections, linking the 4T4R 5G NR PSC to a broader network infrastructure. A high bandwidth provided by these 1G Fiber Optic interfaces (226) ensures that large amounts of data can be transmitted quickly and reliably, which is essential for maintaining high performance in network operations.
- the IBTB (122) includes a clock section (234), having the system synchronizer and clock operator circuit, implemented for maintaining precise timing and coordination across all components.
- the synchronizer and clock operator circuit ensures that all operations within the 4T4R 5G NR PSC are synchronized, preventing timing mismatches that could disrupt communication and data processing. Accurate synchronization is vital for maintaining an integrity and reliability of a data transmission within the network.
- a global positioning system (GPS) (232) on the IBTB (122) provides accurate timing and location information, essential for synchronization and coordination within the network. By aligning operations of the IBTB (122) with GPS data, the 4T4R 5G NR PSC can maintain accurate timing, enhancing overall network performance and reliability.
- GPS global positioning system
- the IBTB (122) includes the high-speed data interface (238) managed by the SERDES (Serializer/Deserializer) (228) and SERDES bank (246).
- This high-speed data interface (238) handles the rapid exchange of data between various components of the IBTB (122), ensuring efficient communication and data processing.
- the SERDES (228) and the SERDES bank (246) converts data between serial and parallel forms, enabling high-speed data transfer and maintaining the performance of the 4T4R 5G NR PSC, particularly in high-traffic environments.
- the I2C Device (212) on the IBTB (122) is part of the Inter- Integrated Circuit (I2C) interface, facilitating communication between different components on the IBTB (122).
- the I2C interface (212) is a multi-master, a multislave, a packet-switched, a single-ended, a serial communication bus used to attach lower-speed peripheral ICs to processors and microcontrollers.
- the IBTB (122) includes a memory interface (204) interfacing the IBTB (122) with various storage modules, such as Double Data Rate 4 (DDR4), a EEPROM (Electrically Erasable Programmable Read-Only Memory), and eMMC (Embedded Multimedia Card), which provide essential data storage and retention capabilities.
- DDR4 Double Data Rate 4
- EEPROM Electrically Erasable Programmable Read-Only Memory
- eMMC Embedded Multimedia Card
- the JTAG Debug Emulator (206) is used for debugging and testing the functionality of the IBTB (122) during development and troubleshooting phases.
- the JTAG Debug Emulator (206) provides access to internal registers and memory locations within the IBTB (122), allowing engineers to diagnose issues, verify correct operation, and update firmware.
- the DDR4 (214) is a Double Data Rate (DDR) memory module used for storing data temporarily, providing fast access to the baseband and transceiver (242).
- the baseband and transceiver (242) may correspond to the ASIC transceiver chipset and baseband processor chipset.
- the DDR4 (214) memory module enhances a performance of the IBTB (214) by enabling quick read and write operations, crucial for processing high volumes of data in real-time.
- An SDHC (216) is a Secure Digital High Capacity (SDHC) memory card interface used for additional data storage, enabling large amounts of data to be stored and accessed quickly.
- SDHC (216) supports high-capacity memory cards, making it suitable for storing extensive logs, firmware updates, and other critical data.
- Flash Memories (218) are non-volatile memory modules used for storing firmware, configuration data, and other critical information that needs to be retained even when the power is off. The flash memories (218) ensure that essential software and settings are preserved, providing stability and reliability to the IBTB (122).
- the PWR denote power supply points, which are crucial for providing a necessary power to various components of the IBTB (122). These power supply points ensure that each component receives a stable and regulated power source, supporting their proper functioning and longevity.
- the IBTB (122) enables the 4T4R 5G NR PSC to handle large volumes of data traffic efficiently.
- the plurality of temperature sensors continuously monitor the thermal profile of the IBTB (122), ensuring it operates within safe temperature limits.
- the high-speed data interfaces and backhaul connections ensure that data is transmitted quickly and reliably, providing users with high-quality connectivity.
- the PWR ensure the IBTB (122) operates efficiently, converting the external -48V DC voltage to a required lower voltage and supplying them to different devices on the IBTB (122).
- the synchronization circuit ensures all components operate in harmony, maintaining precise timing and coordination necessary for seamless communication within the network.
- FIG. 3 illustrates an architecture of a clock section (300) in accordance with an embodiment of the present disclosure.
- the clock section (300) ensures synchronization both within the IBTB (122) and with external systems using a sophisticated clock and the system synchronization.
- the clock section (300) integrates various components to maintain precise timing across the 4T4R 5G NR PSC.
- FIG. 3 is explained in conjunction with FIGS. 1A - 2.
- a GPS module (302) (same as the GPS module (232)) provides accurate timing and location information essential for synchronization the 4T4R 5G NR PSC. It receives signals from global positioning satellites, delivering highly precise and reliable time references crucial for network synchronization.
- the timing information from the GPS module (302) is distributed to various components to ensure the 4T4R 5G NR PSC remains synchronized with global time standards. This is particularly important for maintaining the integrity and timing of data communications, ensuring that all transmitted and received signals are correctly aligned in time.
- a system synchronizer (304) utilizes the GPS timing information to synchronize the 4T4R 5G NR PSC.
- the system synchronizer (304) is implemented for maintaining precise timing across all components of the IBTB (122). It ensures the system remains synchronized even during temporary GPS signal loss by leveraging the PTP and holdover mechanisms.
- the PTP allows for network-based time synchronization, ensuring the system can maintain accurate timing even without a direct GPS signal.
- the holdover mechanism maintains the clock's accuracy using stored timing information, ensuring continuous operation during brief disruptions.
- An ultra-low noise Phase-Locked Loops are incorporated within a clock generator circuit (306) to produce stable and low-jitter clock signals.
- the ultra-low noise PLLs are vital for high-speed data processing and communication, providing the necessary clock signals with minimal phase noise.
- Low phase noise is critical in high-frequency applications, as it ensures signal integrity and reduces errors in data transmission and processing.
- the ultra-low noise PLLs are designed to filter out noise and stabilize the frequency of the clock signals, providing a reliable timing source for the entire system.
- a programmable oscillator allows for flexible frequency adjustments, enabling the system to adapt to various operational requirements and maintain synchronization across all components.
- the programmable oscillator can be configured to generate different frequencies as needed, allowing the system to dynamically adjust to different network conditions and requirements. This flexibility is essential for supporting a wide range of communication standards and protocols, ensuring the 4T4R 5G NR PSC can operate effectively in diverse environments.
- the network processor (308) is responsible for managing data communication and processing within the 4T4R 5G NR PSC. It interfaces with the system synchronizer (304) and the clock operator circuit (306) to ensure all data transactions are precisely timed.
- the network processor (308) handles the scheduling, routing, and management of data packets, working closely with the baseband processor chipset to execute higher-layer protocols. By managing these tasks, the network processor (308) ensures that data is transmitted and received efficiently, minimizing delays and maximizing throughput.
- a Field Programmable Gate Array (FPGA) (310) (same as the ASIC transceiver chipset) is integrated into the to perform custom logic functions and signal processing tasks.
- the FPGA (310) operates in sync with the clock signals generated by the ultra-low noise PLLs and coordinated by the system synchronizer (304). It plays a critical role in handling high-speed data operations, such as modulation, demodulation, and error correction, ensuring efficient and accurate data transmission.
- Reconfigurable nature of the FPGA (310) allows it to be programmed for specific tasks, making it highly versatile and capable of supporting various communication protocols and standards. [0087] Together, these components form a robust and highly synchronized clock section that is essential for the reliable operation of the 4T4R 5G NR PSC.
- the GPS module (302) provides the initial timing reference, while the system synchronizer (304) and the clock operator circuit (306) ensure continuous synchronization even in the event of GPS signal loss.
- the ultra-low noise PLLs and the programmable oscillator generate precise and stable clock signals, which are distributed to the network processor (308) and the FPGA (310) to coordinate data processing and communication tasks.
- this clock section (300) is crucial for maintaining high-quality communication in high-traffic environments. For example, in a busy urban area with multiple users accessing the network simultaneously, precise timing ensures that data packets are transmitted and received without collision, reducing latency and improving overall network performance.
- the flexibility provided by the programmable oscillator allows the system to adapt to changing network conditions, ensuring reliable operation even in challenging environments.
- the RFEB (124) blind mates with the IBTB (122) thus removing complexity of cable routing to avoid RF signal oscillations.
- the mating bullets provide a robust connection between the IBTB (122) and the RFEB (124). It is a unique and complexly implemented telecom solution and is configured to provide its target 8W output.
- FIG. 4 illustrates a block diagram 400 of a single chain of the RFEB (124), in accordance with an embodiment of the present disclosure.
- FIG. 4 is explained in conjunction with FIGS. 1A - 3.
- the RFEB (124) is implemented for interfacing with the IBTB (122).
- the RFEB (124) includes various elements designed for signal transmission, reception, and feedback, which work together to ensure the efficient operation of the 4T4R 5G NR PSC.
- Each transmit chain includes a filter (402, 416, 426), gain blocks (404, 422), DSAs (406, 418, 424).
- Each transmit chain begins with the matching balun, which ensures impedance matching between different components. This matching balun converts unbalanced signals to balanced signals, optimizing the signal for further amplification and minimizing signal reflections and losses.
- a pre-driver amplifier (408) boosts the signal to a level suitable for final stage amplification.
- the pre-driver amplifier (408) is implemented for maintaining the integrity and strength of a transmitted signal, preparing it for a final amplification stage.
- Each observation chain includes several key components for feedback and monitoring.
- a directional coupler (412) samples a portion of the transmitted signal for feedback purposes. This sampled signal is used for monitoring and controlling the transmit power, ensuring it remains within the desired range. The sampled signal then passes through DS A (418), which adjusts the signal level, allowing precise control over the feedback signal. This ensures that the feedback signal is within the required range for accurate monitoring.
- the observation chain also includes a matching network similar to the receive chain, ensuring proper impedance matching and facilitating accurate signal feedback for DPD.
- a switch (420), e.g., an RF TDD switch is a component that combines each transmit-receive pair, allowing the same antenna to be used for both transmission and reception.
- the switch (420) enables seamless switching between transmit and receive modes, optimizing the use of the antenna and enhancing the system's efficiency.
- a circulator (414) and cavity filter play important roles.
- the circulator (414) directs the signal flow between a transmitter, a receiver, and an antenna, ensuring that the transmitted and received signals do not interfere with each other and maintaining signal integrity.
- the cavity filter provides additional filtering to ensure signal purity and reduce interference, with a steep roll-off outside the operating band. This enhances the overall signal quality, ensuring that the transmitted and received signals are clear and free from unwanted frequencies.
- the RFEB (124) is designed to blind mate with the IBTB (122), removing the complexity of cable routing and avoiding RF signal oscillations.
- the mating bullets provide a robust connection between the IBTB (122) and the RFEB (124), ensuring reliable signal transmission and reception.
- This design is configured to provide its target 8W output (i.e., the pre-defined output), optimizing the power consumption of the 4T4R 5G NR PSC.
- the efficient design of the PAs further enhances the overall performance, ensuring that the 4T4R 5G NR PSC operates within its optimal parameters.
- the RFEB (124) incorporates advanced cooling techniques to manage the heat generated by the high-power components.
- Heat pipes with high thermal conductivity are implemented to distribute localized heat across a heat sink with vertical fins. This enhances heat dissipation, ensuring that the components operate within safe temperature ranges.
- the integration of the plurality of heat pipes into the heat sink reduces the overall size and weight, making it a compact and power-efficient solution.
- the 4T4R 5G NR PSC is thus quick to deploy and delivers high performance with low power consumption.
- the cavity filter consists of 4-port cavity filter for 4T4R configuration which provides steeper roll-off outside an operating band.
- the cavity filter design of low loss cavity filter also contributes to reduction of overall power consumption of the product.
- the plurality of heat pipes of highly effective thermal conductivity is implemented in the 4T4R 5G NR PSC to distribute localized heat across the heat sink.
- the heat sink with vertical fins enhances the heat dissipation.
- the plurality of heat pipes into the heat sink enables reduction in overall size and weight of the 4T4R 5G NR PSC.
- the 4T4R 5G NR PSC is quick to deploy and delivers high performance with low power consumption.
- Differentiating features of the 4T4R 5G NR PSC with respect to the Optical Domain Service Channel (ODSC) or the Integrated Media Gateway (IMG) include: (a) primary timing synchronization may be based on the PTP due to usage in the indoor which is not there in the ODSC and IMG since both are used primarily in an outdoor application, where the GPS source is a primary timing reference, (b) necessary embedded software addition and updated configurations may be done in a clock synchronization circuitry and board support package of the 4T4R 5G NR PSC, (c) have added wall mounting provision for indoor applications, and (d) cost and weight efficient.
- ODSC Optical Domain Service Channel
- IMG Integrated Media Gateway
- Disclosed system and method provide developed complete array of 5G radio products in different frequency bands which complies with a 3rd Generation Partnership Project (3GPP) standards together with its own indigenous 5G core.
- the disclosed radio products have been successfully tested at 100 MHz channel bandwidth in 3.5 GHz with peak data rates of 1.0 Gbps.
- the disclosed 4T4R 5G NR PSC solutions provide increased indoor coverage and performance which may enhance user experience in data download rates.
- the usage of the 4T4R 5G NR PSC may be implemented in a hyper local architecture where each floor may be served by a low power radio and may lead to a major reduction in the DAS’s cost.
- the disclosed 4T4R 5G NR PSC solutions address consumer and enterprise customers in a wide range of indoor environments. Combined with a low weight compact form-factor, it may also offer deployment flexibility across a wide range of use cases. As the 5G use cases increase, the need for improved coverage, capacity and performance arises. This disclosed solution will facilitate to serve a vast customer base and deliver superior connectivity.
- FIG. 5 illustrates a flow diagram of a method for designing a Four- Transmit, Four-Receive (4T4R) 5G New Radio (NR) Pico Small Cell (PSC) for managing network traffic, in accordance with some embodiments of the present disclosure.
- FIG. 5 is explained in conjunction with FIGS. 1A - 4.
- the IBTB (122) is integrated with the clock section 300 including a plurality of system synchronizers (same the system synchronizer (304)) configured based on the GPS, the PTP, and the holdover.
- the IBTB (122) may integrate the ASIC transceiver chipset for processing the first layer (i.e., the LI) and the baseband processor chipset for processing the second layer (i.e., the L2) and the third layer (i.e., the L3).
- a plurality of ultra-low noise clock generation PLLs i.e., the ultra-low noise clock generation PLLs
- a plurality of programmable oscillators i.e., the programmable oscillators
- the plurality of system synchronizers (same as the system synchronizer (304)) to maintain synchronization with one or more external systems.
- the RFEB (124) may be connected with the IBTB (122) and to provide a pre-defined output, i.e., the target 8Watt output.
- the RFEB may include the pre-defined set of transmit chains (i.e., the four transmit chains) for signal transmission. Each transmit chain includes the matching Balun, the pre-driver amplifier, and the RF power amplifier.
- the RFEB (124) may include the pre-defined set of receive chains (i.e., the four receive chains) for signal reception. Each receive chain includes the low noise amplifier, the band pass SAW filter, and the matching network.
- the RFEB (124) may include the predefined set of observation chains (i.e., the four observation chains). Each observation chain acts as the DPD feedback paths from the PAs to the ASIC transceiver chipset for linearization.
- the heat sink may be implemented.
- the heat sink may include the plurality of heat pipes having high thermal conductivity and vertical fins for enhancing heat dissipation.
- the heat sink incorporates the plurality of heat pipes configured to provide a uniform heat distribution and is designed to enhance an overall product (i.e., the 4T4R 5G NR PSC) size and weight efficiency.
- the temperature of each of the set of sections of the IBTB (122) may be measured via the set of temperature sensors integrated on the IBTB (122), for thermal management.
- the 4T4R 5G NR PSC is configured to offload heavy traffic from the plurality of macro cells and provide an enhanced signal in the traffic environment above the pre-defined threshold (e.g., 70% above the total bandwidth available).
- FIG. 6 illustrates an example computer system (600) in which or with which the embodiments of the present disclosure may be implemented.
- the computer system (600) may include an external storage device (610), a bus (620), a main memory (630), a read-only memory (640), a mass storage device (650), communication port(s) (660), and a processor (670).
- the processor (670) may include various modules associated with embodiments of the present disclosure.
- the communication port(s) (660) may be any of an RS-232 port for use with a modem-based dialup connection, a 10/100 Ethernet port, a Gigabit or 10 Gigabit port using copper or fiber, a serial port, a parallel port, or other existing or future ports.
- the communication ports(s) (660) may be chosen depending on a network, such as a Local Area Network (LAN), Wide Area Network (WAN), or any network to which the computer system (600) connects.
- the main memory (630) may be Random Access Memory (RAM), or any other dynamic storage device commonly known in the art.
- the read-only memory (640) may be any static storage device(s) e.g., but not limited to, a Programmable Read Only Memory (PROM) chip for storing static information e.g., start-up or basic input/output system (BIOS) instructions for the processor (670).
- the mass storage device (650) may be any current or future mass storage solution, which can be used to store information and/or instructions.
- Exemplary mass storage solutions include, but are not limited to, Parallel Advanced Technology Attachment (PATA) or Serial Advanced Technology Attachment (SATA) hard disk drives or solid-state drives (internal or external, e.g., having Universal Serial Bus (USB) and/or Firewire interfaces).
- PATA Parallel Advanced Technology Attachment
- SATA Serial Advanced Technology Attachment
- USB Universal Serial Bus
- the bus (620) may communicatively couple the processor(s) (670) with the other memory, storage, and communication blocks.
- the bus (620) may be, e.g. a Peripheral Component Interconnect PCI) / PCI Extended (PCI-X) bus, Small Computer System Interface (SCSI), Universal Serial Bus (USB), or the like, for connecting expansion cards, drives, and other subsystems as well as other buses, such a front side bus (FSB), which connects the processor (670) to the computer system (600).
- PCI Peripheral Component Interconnect
- PCI-X PCI Extended
- SCSI Small Computer System Interface
- USB Universal Serial Bus
- operator and administrative interfaces e.g., a display, keyboard, and a cursor control device may also be coupled to the bus (620) to support direct operator interaction with the computer system (600).
- Other operator and administrative interfaces can be provided through network connections connected through the communication port(s) (660).
- Components described above are meant only to exemplify various possibilities. In no way should the aforementioned-exemplary computer system (600) limit the scope of the present disclosure.
- the present disclosure provides a system and a method to provide a 5G NR Pico Small Cell (PSC) including 4T4R.
- PSC Pico Small Cell
- the present disclosure provides a cost-effective solution that provides good coverage as well as capacity within building environments.
- the present disclosure provides a PSC (i.e., the 4T4R 5G NR PSC) that meets all Radio Frequency (RF) performance requirement mentioned in 3 GPP standard (TS 38.141) after integrating TDD based 5G NR PSC with the CFR and the DPD modules in the digital front-end line-up.
- a PSC i.e., the 4T4R 5G NR PSC
- RF Radio Frequency
- the present disclosure provides the 4T4R 5G NR PSC that has the low power consumption and is thermally handled properly by the IP65 mechanical housing with heat pipes.
- the present disclosure provides the 4T4R 5G NR PSC that supports the zero touch, the plug-and-play integration process, and the self-organizing network (SON) features.
- SON self-organizing network
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Abstract
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| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| EP24835627.1A EP4740539A1 (en) | 2023-07-04 | 2024-06-13 | System and method for providing a 4t4r 5g new radio (nr) pico small cell (psc) |
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| IN202321044729 | 2023-07-04 | ||
| IN202321044729 | 2023-07-04 |
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|---|---|---|---|
| PCT/IN2024/050802 Ceased WO2025008906A1 (en) | 2023-07-04 | 2024-06-13 | System and method for providing a 4t4r 5g new radio (nr) pico small cell (psc) |
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| EP (1) | EP4740539A1 (en) |
| WO (1) | WO2025008906A1 (en) |
Citations (4)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| AU2004206564B2 (en) * | 2003-01-22 | 2009-11-19 | Extreme Networks, Inc. | System and method for indicating the presence or physical location of persons or devices in a site specific representation of a physical environment |
| CN102075955A (en) * | 2009-11-24 | 2011-05-25 | 中兴通讯股份有限公司 | Networking system for indoor coverage of time division duplex synchronous system |
| US8761051B2 (en) * | 2009-03-30 | 2014-06-24 | At&T Mobility Ii Llc | Indoor competitive survey of wireless networks |
| CN111770505B (en) * | 2020-07-08 | 2021-09-14 | 展讯通信(上海)有限公司 | Communication control unit, near-end connection module, far-end covering module and indoor distribution system |
-
2024
- 2024-06-13 WO PCT/IN2024/050802 patent/WO2025008906A1/en not_active Ceased
- 2024-06-13 EP EP24835627.1A patent/EP4740539A1/en active Pending
Patent Citations (4)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| AU2004206564B2 (en) * | 2003-01-22 | 2009-11-19 | Extreme Networks, Inc. | System and method for indicating the presence or physical location of persons or devices in a site specific representation of a physical environment |
| US8761051B2 (en) * | 2009-03-30 | 2014-06-24 | At&T Mobility Ii Llc | Indoor competitive survey of wireless networks |
| CN102075955A (en) * | 2009-11-24 | 2011-05-25 | 中兴通讯股份有限公司 | Networking system for indoor coverage of time division duplex synchronous system |
| CN111770505B (en) * | 2020-07-08 | 2021-09-14 | 展讯通信(上海)有限公司 | Communication control unit, near-end connection module, far-end covering module and indoor distribution system |
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| EP4740539A1 (en) | 2026-05-13 |
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