AWR2544

ACTIVO

Sensor de radar en chip satelital FMCW de 76-81 GHz

Detalles del producto

Frequency range 76 - 81 GHz Number of receivers 4 Number of transmitters 4 ADC sampling rate (max) (Msps) 45 Arm CPU Arm Cortex-R5F at 300 MHz Interface type Ethernet, I2C, SPI Hardware accelerators Radar hardware accelerator Edge AI enabled Yes RAM (kByte) 2048 Rating Automotive Operating temperature range (°C) -40 to 140 Power supply solution LP87725-Q1 Security Cryptographic acceleration, Device attestation & anti-counterfeit, Hardware-enforced isolation, Secure boot, Secure firmware & software update, Software IP protection
Frequency range 76 - 81 GHz Number of receivers 4 Number of transmitters 4 ADC sampling rate (max) (Msps) 45 Arm CPU Arm Cortex-R5F at 300 MHz Interface type Ethernet, I2C, SPI Hardware accelerators Radar hardware accelerator Edge AI enabled Yes RAM (kByte) 2048 Rating Automotive Operating temperature range (°C) -40 to 140 Power supply solution LP87725-Q1 Security Cryptographic acceleration, Device attestation & anti-counterfeit, Hardware-enforced isolation, Secure boot, Secure firmware & software update, Software IP protection
FCCSP (AMQ) 248 148.8 mm² 12.4 x 12
  • FMCW transceiver
    • Integrated PLL, transmitter, receiver, baseband and ADC
    • 76 to 81GHz coverage with greater than 4GHz available bandwidth
    • 4 receive and 4 transmit channels withLaunch-on-Package (LOP) interface to antennas
    • Per transmit phase shifter
    • Ultra-accurate chirp engine based on fractional PLL
    • TX power
      • +12.5dBm
    • RX noise figure
      • +12.5dB
    • Phase noise (@ 1MHz)
      • -96dBc/Hz (76 to 77GHz)
      • -95dBc/Hz (76 to 81GHz)
  • Built-in calibration and self-test

    • Built in firmware (ROM)
    • Self-calibrating system across process and temperature
  • Processing elements
    • Arm Cortex-R5F core (supports lock step operation) at 300MHz
    • TI radar hardware accelerator (HWA1.5) for operations like FFT, interference mitigation, and memory compression
    • Multiple EDMA instances for data movement
  • Host interface
    • 10/100/1000Mbps RGMII/RMII/MII Ethernet
    • 25MHz clock output for Ethernet PHY clocking

  • Supports a serial flash memory interface (loading user application from QSPI flash memory)
  • Other interfaces available to user application
    • Up to 4 ADC channels
    • 1 SPI
    • 2 UARTs
    • I2C
    • GPIOs
    • 3 EPWMs
    • 2-lane LVDS interface for raw ADC data and debug instrumentation
  • On-Chip RAM
    • 2MB
    • Memory space split between MCU and shared L3
  • Device security (on select part numbers)
    • Programmable embedded hardware security module (HSM)
    • Secure authenticated and encrypted boot support
    • Customer programmable root keys, symmetric keys (256 bit), asymmetric keys (up to RSA-4K or ECC-512) with key revocation capability
    • Cryptographic hardware accelerators: PKA with ECC, AES (up to 256 bit), SHA (up to 512 bit), TRNG/DRBG
  • Functional safety compliant targeted
    • Developed for functional safety applications
    • Documentation available to aid ISO26262 functional safety system design
    • Hardware integrity up to ASIL B targeted
  • AEC-Q100 qualified
  • Advanced features
    • Embedded self-monitoring with no external processor involvement
    • Embedded interference detection capability
  • Power management
    • On-die LDO network for enhanced PSRR
    • LVCMOS IO supports dual voltage 3.3V and 1.8V
  • Clock source
    • 40MHz or 50MHz crystal with internal oscillator
    • Supports external oscillator/driven clock at 40MHz or 50 MHz
  • Power Management
    • Recommended LP8772-Q1 Power Management IC (PMIC)
      • Companion PMIC specially designed to meet device power supply requirements
      • Flexible mapping and factory programmed configurations to support different use cases
  • Cost-reduced hardware design
    • 0.65mm pitch, 12.4mm × 12mm FCCSP package
    • Small size
  • Supports automotive temperature operating range
    • Operating junction temperature range: –40°C to +140°C
  • FMCW transceiver
    • Integrated PLL, transmitter, receiver, baseband and ADC
    • 76 to 81GHz coverage with greater than 4GHz available bandwidth
    • 4 receive and 4 transmit channels withLaunch-on-Package (LOP) interface to antennas
    • Per transmit phase shifter
    • Ultra-accurate chirp engine based on fractional PLL
    • TX power
      • +12.5dBm
    • RX noise figure
      • +12.5dB
    • Phase noise (@ 1MHz)
      • -96dBc/Hz (76 to 77GHz)
      • -95dBc/Hz (76 to 81GHz)
  • Built-in calibration and self-test

    • Built in firmware (ROM)
    • Self-calibrating system across process and temperature
  • Processing elements
    • Arm Cortex-R5F core (supports lock step operation) at 300MHz
    • TI radar hardware accelerator (HWA1.5) for operations like FFT, interference mitigation, and memory compression
    • Multiple EDMA instances for data movement
  • Host interface
    • 10/100/1000Mbps RGMII/RMII/MII Ethernet
    • 25MHz clock output for Ethernet PHY clocking

  • Supports a serial flash memory interface (loading user application from QSPI flash memory)
  • Other interfaces available to user application
    • Up to 4 ADC channels
    • 1 SPI
    • 2 UARTs
    • I2C
    • GPIOs
    • 3 EPWMs
    • 2-lane LVDS interface for raw ADC data and debug instrumentation
  • On-Chip RAM
    • 2MB
    • Memory space split between MCU and shared L3
  • Device security (on select part numbers)
    • Programmable embedded hardware security module (HSM)
    • Secure authenticated and encrypted boot support
    • Customer programmable root keys, symmetric keys (256 bit), asymmetric keys (up to RSA-4K or ECC-512) with key revocation capability
    • Cryptographic hardware accelerators: PKA with ECC, AES (up to 256 bit), SHA (up to 512 bit), TRNG/DRBG
  • Functional safety compliant targeted
    • Developed for functional safety applications
    • Documentation available to aid ISO26262 functional safety system design
    • Hardware integrity up to ASIL B targeted
  • AEC-Q100 qualified
  • Advanced features
    • Embedded self-monitoring with no external processor involvement
    • Embedded interference detection capability
  • Power management
    • On-die LDO network for enhanced PSRR
    • LVCMOS IO supports dual voltage 3.3V and 1.8V
  • Clock source
    • 40MHz or 50MHz crystal with internal oscillator
    • Supports external oscillator/driven clock at 40MHz or 50 MHz
  • Power Management
    • Recommended LP8772-Q1 Power Management IC (PMIC)
      • Companion PMIC specially designed to meet device power supply requirements
      • Flexible mapping and factory programmed configurations to support different use cases
  • Cost-reduced hardware design
    • 0.65mm pitch, 12.4mm × 12mm FCCSP package
    • Small size
  • Supports automotive temperature operating range
    • Operating junction temperature range: –40°C to +140°C

The AWR2544 is a single-chip mmWave sensor composed of a FMCW transceiver. The device is capable of operation in the 76 to 81GHz (EHF) band, includes radar data processing elements, and a rich set of peripherals for in-vehicle networking. AWR2544 provides customers with an additional Launch on package (LOP) antenna feature which facilitates the attachment of antennas directly on to the package. The AWR2544 is built with TI’s low-power 45nm RFCMOS process and enables unprecedented levels of integration in a small form factor and minimal BOM. The AWR2544 is designed for low-power, self-monitored, ultra-accurate radar systems in the automotive space.

TI’s low-power 45nm RFCMOS process enables a monolithic implementation of a 4 TX, 4 RX system with integrated PLL, VCO, mixer, and baseband ADC. The device includes a Radio Processor Subsystem (RSS), which is responsible for radar front-end configuration, control, and calibration. Within the Main Subsystem (MSS), the device implements a user-programmable Arm Cortex-R5F processor allowing for custom control and automotive interface applications. The hardware accelerator block (HWA 1.5) supplements the MSS by offloading common radar processing such as FFT, scaling, and compression. This saves MIPS on the external processor, opening up resources for custom applications and implementation of higher-level post-processing algorithms.

A Hardware Security Module (HSM) is also provisioned in the device (available for only secure part variants). The HSM consists of a programmable Arm Cortex-M4 core and the necessary infrastructure to provide a secure zone of operation within the device.

Simple programming model changes can enable a wide variety of sensor implementation (Short, Mid, Long) with the possibility of dynamic reconfiguration for implementing a multimode sensor.

TI has designed the AWR2544 specifically for satellite architecture. Satellite architecture adds value through a sensor fusion algorithm and the larger computing capability in the central ECU. Simplified satellite sensors and differentiation through software can help reduce system complexity and offer new ways of creating value.

Using satellite radars gives automakers the option to use over-the-air software updates to improve system performance and enhance security. These multiple benefits – performance, scalability and simplicity – all contribute the prominence of the satellite architecture in the automotive industry.

Additionally, the AWR2544 is provided as a complete platform including TI hardware and software reference designs, software drivers, sample configurations, API guides, and user documentation.

The AWR2544 is a single-chip mmWave sensor composed of a FMCW transceiver. The device is capable of operation in the 76 to 81GHz (EHF) band, includes radar data processing elements, and a rich set of peripherals for in-vehicle networking. AWR2544 provides customers with an additional Launch on package (LOP) antenna feature which facilitates the attachment of antennas directly on to the package. The AWR2544 is built with TI’s low-power 45nm RFCMOS process and enables unprecedented levels of integration in a small form factor and minimal BOM. The AWR2544 is designed for low-power, self-monitored, ultra-accurate radar systems in the automotive space.

TI’s low-power 45nm RFCMOS process enables a monolithic implementation of a 4 TX, 4 RX system with integrated PLL, VCO, mixer, and baseband ADC. The device includes a Radio Processor Subsystem (RSS), which is responsible for radar front-end configuration, control, and calibration. Within the Main Subsystem (MSS), the device implements a user-programmable Arm Cortex-R5F processor allowing for custom control and automotive interface applications. The hardware accelerator block (HWA 1.5) supplements the MSS by offloading common radar processing such as FFT, scaling, and compression. This saves MIPS on the external processor, opening up resources for custom applications and implementation of higher-level post-processing algorithms.

A Hardware Security Module (HSM) is also provisioned in the device (available for only secure part variants). The HSM consists of a programmable Arm Cortex-M4 core and the necessary infrastructure to provide a secure zone of operation within the device.

Simple programming model changes can enable a wide variety of sensor implementation (Short, Mid, Long) with the possibility of dynamic reconfiguration for implementing a multimode sensor.

TI has designed the AWR2544 specifically for satellite architecture. Satellite architecture adds value through a sensor fusion algorithm and the larger computing capability in the central ECU. Simplified satellite sensors and differentiation through software can help reduce system complexity and offer new ways of creating value.

Using satellite radars gives automakers the option to use over-the-air software updates to improve system performance and enhance security. These multiple benefits – performance, scalability and simplicity – all contribute the prominence of the satellite architecture in the automotive industry.

Additionally, the AWR2544 is provided as a complete platform including TI hardware and software reference designs, software drivers, sample configurations, API guides, and user documentation.

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Más información

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Documentación técnica

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Documentación principal Tipo Título Opciones de formato Fecha
* Data sheet AWR2544 Single-Chip 76-81GHz FMCW Radar SoC with Launch-On-Package (LOP) Waveguide Interface for ADAS Applications datasheet (Rev. B) PDF | HTML 11 dic 2024
* Errata AWR2544 Errata (Rev. A) PDF | HTML 21 oct 2025
* User guide AWR2544 Technical Reference Manual (Rev. A) 19 may 2025
Application note Getting Started with mmWave Sensors PDF | HTML 12 mar 2025
Application note Flash Variants Supported by the mmWave Sensor (Rev. G) PDF | HTML 17 dic 2024
Application note AWR294x, AWR2544 Primary and Secondary Bootloader (Rev. B) PDF | HTML 13 dic 2024
White paper Enhanced Detections and Compute for ADAS systems with Next Gen Radar Sensors PDF | HTML 05 dic 2024
White paper Advancements in mmWave Technology: Launch on Package for Automotive Radars PDF | HTML 30 ene 2024
Application note Flash Variants Supported by the mmWave Sensor (Rev. E) PDF | HTML 24 ene 2024
Technical article Are you ready for the emerging automotive radar satellite architecture? PDF | HTML 05 ene 2024
Technical article Addressing 3 power design challenges for corner radar systems PDF | HTML 22 dic 2023

Diseño y desarrollo

Soluciones de alimentación

Busque las soluciones de alimentación disponibles para el AWR2544. TI ofrece soluciones de alimentación para sistemas en chip (SoC), procesadores, microcontroladores, sensores y matrices de compuertas programables de campo (FPGA), sean o no de TI.

Placa de evaluación

AWR2544LOPEVM — Módulo de evaluación AWR2544LOP para SoC de automoción de segunda generación, de 76 GHz a 81 GHz, de

La AWR2544LOPEVM es una placa de evaluación fácil de usar para el dispositivo sensor AWR254x mmWave, con conectividad directa al DCA1000EVM. Este kit EVM contiene todo lo necesario para comenzar a desarrollar software para el controlador ARM Cortex-R5F en chip y el acelerador de hardware ( HWA (...)
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Sonda de depuración

TSK-3P-BLUEBOX — TASKING BlueBox hardware debugger

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Herramienta de programación de hardware

HS-3P-77-3D-WGA-LOP-4X4 — Diseño de antena para sensores de radar ADAS de HUBER+SUHNER

Antena de guías de ondas 3D de 77 GHz 4Tx4R: familia de soluciones independientes de sustratos RF

HUBER+SUHNER ha desarrollado y fabrica una antena de guías de ondas de plástico metalizada 3D de segunda generación diseñada para soluciones independientes del sustrato de radiofrecuencia (RF). Esta (...)

Third-party accessory

GAPW-3P-ANTENNA — Diseño de antena para sensores de radar ADAS de GapWaves

Gapwaves offers high-performance, low-loss, and cost-efficient waveguide antennas for short-, mid- and long-range automotive radars and industrial applications. Our antennas feature a flexible design and a compact form factor, robust contact-free PCB integration and support contact-free LoP (...)

Desde: Gapwaves
Kit de desarrollo de software (SDK)

MMWAVE-MCUPLUS-SDK mmWave SDK for AWR2944 and AM2732

The mmWave microcontroller (MCU) plus software development kit (SDK) is a collection of software packages that enable application evaluation and development on TI mmWave sensors. This tool includes the MMWAVE-MCUPLUS-SDK and companion packages to support your design needs.

MMWAVE-MCUPLUS-SDK is a (...)

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Software de aplicación y estructura

PVIZ-3P-MIMSO — Software de radar Provizio 5D MIMSO®

Provizio MIMSO es una solución de mejora de imágenes de radar que transforma datos de radar de alta resolución en una percepción ambiental 3D densa y de alta fidelidad. Mediante el uso de una arquitectura de antena activa y técnicas avanzadas de procesamiento de señales, MIMSO aumenta (...)
Desde: Provizio Ltd
Software de aplicación y estructura

ZEN-3P-DARSW — Radar de apertura distribuida Zendar | Radar de alta resolución con una red de sensores coherente

El software de radar de apertura distribuida (DAR) de Zendar fusiona dos o tres sensores de radar de medio alcance (MRR) que funcionan de forma coherente para brindar una resolución de radar superior. El uso de dos sensores desplazados físicamente crea una gran apertura virtual que permite mejorar (...)
Desde: Zendar Inc.
Primeros pasos

TI-DEVELOPER-ZONE Start embedded development on your desktop or in the cloud

From evaluation to deployment the TI Developer Zone provides a comprehensive range of software, tools and training to ensure that you have everything you need for each stage of the development process.
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IDE, configuración, compilador o depurador

CCSTUDIO Code Composer Studio™ integrated development environment (IDE)

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IDE, configuración, compilador o depurador

MMWAVE-STUDIO-2G mmWave studio GUI tools for 2nd-generation parts (xWR2243)

MMWAVE-STUDIO is a stand-alone Windows® GUI that provides the ability to configure and control mmWave sensor modules and collect analog-to-digital (ADC) data for offline analysis. ADC data capture is intended to enable evaluation and characterization of radio-frequency (RF) performance, (...)

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SYSCONFIG Standalone desktop version of SysConfig

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Capacitación en línea

RADAR-ACADEMY mmWave Radar Academy

The Radar Academy is a documentation package intended to provide educational resources related to mmWave radar technology
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Herramienta de programación de software

UNIFLASH UniFlash for most TI microcontrollers (MCUs) and mmWave sensors

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RADAR-TOOLBOX Radar evaluation and development support package with example projects, documentation and tools

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Herramienta de diseño

AWR2544-HARDWARE-DESIGN-CHECKLIST Hardware design checklist for the AWR2544 mmWave sensor.

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Encapsulado Pines Símbolos CAD, huellas y modelos 3D
FCCSP (AMQ) 248 Ultra Librarian

Pedidos y calidad

Información incluida:
  • RoHS
  • REACH
  • Marcado del dispositivo
  • Acabado de plomo/material de la bola
  • Clasificación de nivel de sensibilidad a la humedad (MSL)/reflujo máximo
  • Estimaciones de tiempo medio entre fallas (MTBF)/fallas en el tiempo (FIT)
  • Contenido del material
  • Resumen de calificaciones
  • Monitoreo continuo de confiabilidad
Información incluida:
  • Lugar de fabricación
  • Lugar de ensamblaje

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Soporte y capacitación

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