产品详情

CPU Arm Cortex-R4F Frequency (MHz) 220 Flash memory (kByte) 3072 RAM (kByte) 256 ADC type 2 12-bit MibADC Total processing (MIPS) 0.00022 Features CAN, Hercules high-performance microcontroller, SPI, UART, USB UART 2 CAN (#) 3 PWM (Ch) 40, 44 TI functional safety category Functional Safety-Compliant Number of ADC channels 24 SPI 1, 2 USB USB 2.0 Operating temperature range (°C) -40 to 105 Rating Catalog Communication interface CAN, SPI, UART, USB Operating system FreeRTOS, SafeRTOS Hardware accelerators Floating point unit Edge AI enabled No Nonvolatile memory (kByte) 3072 Number of GPIOs 64, 144
CPU Arm Cortex-R4F Frequency (MHz) 220 Flash memory (kByte) 3072 RAM (kByte) 256 ADC type 2 12-bit MibADC Total processing (MIPS) 0.00022 Features CAN, Hercules high-performance microcontroller, SPI, UART, USB UART 2 CAN (#) 3 PWM (Ch) 40, 44 TI functional safety category Functional Safety-Compliant Number of ADC channels 24 SPI 1, 2 USB USB 2.0 Operating temperature range (°C) -40 to 105 Rating Catalog Communication interface CAN, SPI, UART, USB Operating system FreeRTOS, SafeRTOS Hardware accelerators Floating point unit Edge AI enabled No Nonvolatile memory (kByte) 3072 Number of GPIOs 64, 144
LQFP (PGE) 144 484 mm² (22 mm × 22 mm) NFBGA (ZWT) 337 256 mm² (16 mm × 16 mm)
  • High-Performance Microcontroller for Safety-Critical Applications
    • Dual CPUs Running in Lockstep
    • ECC on Flash and RAM Interfaces
    • Built-In Self-Test (BIST) for CPU and On-chip RAMs
    • Error Signaling Module With Error Pin
    • Voltage and Clock Monitoring
  • ARM Cortex-R4F 32-Bit RISC CPU
    • Efficient 1.66 DMIPS/MHz With 8-Stage Pipeline
    • FPU With Single- and Double-Precision
    • 12-Region Memory Protection Unit (MPU)
    • Open Architecture With Third-Party Support
  • Operating Conditions
    • System Clock up to 220 MHz
    • Core Supply Voltage (VCC): 1.2 V Nominal
    • I/O Supply Voltage (VCCIO): 3.3 V Nominal
    • ADC Supply Voltage (VCCAD): 3.0 to 5.25 V
  • Integrated Memory
    • 3MB of Program Flash With ECC
    • 256KB of RAM With ECC
    • 64KB of Flash With ECC for Emulated EEPROM
  • 16-Bit External Memory Interface
  • Common Platform Architecture
    • Consistent Memory Map Across Family
    • Real-Time Interrupt (RTI) Timer OS Timer
    • 96-Channel Vectored Interrupt Module (VIM)
    • 2-Channel Cyclic Redundancy Checker (CRC)
  • Direct Memory Access (DMA) Controller
    • 16 Channels and 32 Peripheral Requests
    • Parity Protection for Control Packet RAM
    • DMA Accesses Protected by Dedicated MPU
  • Frequency-Modulated Phase-Locked Loop (FMPLL) With Built-In Slip Detector
  • Separate Nonmodulating PLL
  • Trace and Calibration Capabilities
    • Embedded Trace Macrocell (ETM-R4)
    • Data Modification Module (DMM)
    • RAM Trace Port (RTP)
    • Parameter Overlay Module (POM)
  • Multiple Communication Interfaces
    • 10/100 Mbps Ethernet MAC (EMAC)
      • IEEE 802.3 Compliant (3.3-V I/O Only)
      • Supports MII, RMII, and MDIO
    • USB
      • 2-Port USB Host Controller
      • One Full-Speed USB Device Port
    • Three CAN Controllers (DCANs)
      • 64 Mailboxes, Each With Parity Protection
      • Compliant to CAN Protocol Version 2.0B
    • Standard Serial Communication Interface (SCI)
    • Local Interconnect Network (LIN) Interface Controller
      • Compliant to LIN Protocol Version 2.1
      • Can be Configured as a Second SCI
    • Inter-Integrated Circuit (I2C)
    • Three Multibuffered Serial Peripheral Interfaces (MibSPIs)
      • 128 Words With Parity Protection Each
    • Two Standard Serial Peripheral Interfaces (SPIs)
  • Two Next Generation High-End Timer (N2HET) Modules
    • N2HET1: 32 Programmable Channels
    • N2HET2: 18 Programmable Channels
    • 160-Word Instruction RAM Each With Parity Protection
    • Each N2HET Includes Hardware Angle Generator
    • Dedicated High-End Transfer Unit (HTU) With MPU for Each N2HET
  • Two 12-Bit Multibuffered ADC Modules
    • ADC1: 24 Channels
    • ADC2: 16 Channels Shared With ADC1
    • 64 Result Buffers With Parity Protection Each
  • General-Purpose Input/Output (GPIO) Pins Capable of Generating Interrupts
    • 16 Pins on the ZWT Package
    • 10 Pins on the PGE Package
  • IEEE 1149.1 JTAG, Boundary Scan and ARM CoreSight Components
  • JTAG Security Module
  • Packages
    • 144-Pin Quad Flatpack (PGE) [Green]
    • 337-Ball Grid Array (ZWT) [Green]

All trademarks are the property of their respective owners.

  • High-Performance Microcontroller for Safety-Critical Applications
    • Dual CPUs Running in Lockstep
    • ECC on Flash and RAM Interfaces
    • Built-In Self-Test (BIST) for CPU and On-chip RAMs
    • Error Signaling Module With Error Pin
    • Voltage and Clock Monitoring
  • ARM Cortex-R4F 32-Bit RISC CPU
    • Efficient 1.66 DMIPS/MHz With 8-Stage Pipeline
    • FPU With Single- and Double-Precision
    • 12-Region Memory Protection Unit (MPU)
    • Open Architecture With Third-Party Support
  • Operating Conditions
    • System Clock up to 220 MHz
    • Core Supply Voltage (VCC): 1.2 V Nominal
    • I/O Supply Voltage (VCCIO): 3.3 V Nominal
    • ADC Supply Voltage (VCCAD): 3.0 to 5.25 V
  • Integrated Memory
    • 3MB of Program Flash With ECC
    • 256KB of RAM With ECC
    • 64KB of Flash With ECC for Emulated EEPROM
  • 16-Bit External Memory Interface
  • Common Platform Architecture
    • Consistent Memory Map Across Family
    • Real-Time Interrupt (RTI) Timer OS Timer
    • 96-Channel Vectored Interrupt Module (VIM)
    • 2-Channel Cyclic Redundancy Checker (CRC)
  • Direct Memory Access (DMA) Controller
    • 16 Channels and 32 Peripheral Requests
    • Parity Protection for Control Packet RAM
    • DMA Accesses Protected by Dedicated MPU
  • Frequency-Modulated Phase-Locked Loop (FMPLL) With Built-In Slip Detector
  • Separate Nonmodulating PLL
  • Trace and Calibration Capabilities
    • Embedded Trace Macrocell (ETM-R4)
    • Data Modification Module (DMM)
    • RAM Trace Port (RTP)
    • Parameter Overlay Module (POM)
  • Multiple Communication Interfaces
    • 10/100 Mbps Ethernet MAC (EMAC)
      • IEEE 802.3 Compliant (3.3-V I/O Only)
      • Supports MII, RMII, and MDIO
    • USB
      • 2-Port USB Host Controller
      • One Full-Speed USB Device Port
    • Three CAN Controllers (DCANs)
      • 64 Mailboxes, Each With Parity Protection
      • Compliant to CAN Protocol Version 2.0B
    • Standard Serial Communication Interface (SCI)
    • Local Interconnect Network (LIN) Interface Controller
      • Compliant to LIN Protocol Version 2.1
      • Can be Configured as a Second SCI
    • Inter-Integrated Circuit (I2C)
    • Three Multibuffered Serial Peripheral Interfaces (MibSPIs)
      • 128 Words With Parity Protection Each
    • Two Standard Serial Peripheral Interfaces (SPIs)
  • Two Next Generation High-End Timer (N2HET) Modules
    • N2HET1: 32 Programmable Channels
    • N2HET2: 18 Programmable Channels
    • 160-Word Instruction RAM Each With Parity Protection
    • Each N2HET Includes Hardware Angle Generator
    • Dedicated High-End Transfer Unit (HTU) With MPU for Each N2HET
  • Two 12-Bit Multibuffered ADC Modules
    • ADC1: 24 Channels
    • ADC2: 16 Channels Shared With ADC1
    • 64 Result Buffers With Parity Protection Each
  • General-Purpose Input/Output (GPIO) Pins Capable of Generating Interrupts
    • 16 Pins on the ZWT Package
    • 10 Pins on the PGE Package
  • IEEE 1149.1 JTAG, Boundary Scan and ARM CoreSight Components
  • JTAG Security Module
  • Packages
    • 144-Pin Quad Flatpack (PGE) [Green]
    • 337-Ball Grid Array (ZWT) [Green]

All trademarks are the property of their respective owners.

The RM48L952 device is a high-performance microcontroller family for safety systems. The safety architecture includes dual CPUs in lockstep, CPU and memory BIST logic, ECC on both the flash and the data SRAM, parity on peripheral memories, and loopback capability on peripheral I/Os.

The RM48L952 device integrates the ARM Cortex-R4F Floating-Point CPU. The CPU offers an efficient 1.66 DMIPS/MHz, and has configurations that can run up to 220 MHz, providing up to 365 DMIPS. The device supports the little-endian [LE] format.

The RM48L952 device has 3MB of integrated flash and 256KB of data RAM. Both the flash and RAM have single-bit error correction and double-bit error detection. The flash memory on this device is a nonvolatile, electrically erasable, and programmable memory implemented with a 64-bit-wide data bus interface. The flash operates on a 3.3-V supply input (same level as I/O supply) for all read, program, and erase operations. When in pipeline mode, the flash operates with a system clock frequency of up to 220 MHz. The SRAM supports single-cycle read and write accesses in byte, halfword, word, and double-word modes.

The RM48L952 device features peripherals for real-time control-based applications, including two Next Generation High-End Timer (N2HET) timing coprocessors and two 12-bit Analog-to-Digital Converters (ADCs) supporting up to 24 inputs.

The N2HET is an advanced intelligent timer that provides sophisticated timing functions for real-time applications. The timer is software-controlled, using a reduced instruction set, with a specialized timer micromachine and an attached I/O port. The N2HET can be used for pulse-width-modulated outputs, capture or compare inputs, or GPIO. The N2HET is especially well suited for applications requiring multiple sensor information and drive actuators with complex and accurate time pulses. A High-End Timer Transfer Unit (HTU) can perform DMA-type transactions to transfer N2HET data to or from main memory. A Memory Protection Unit (MPU) is built into the HTU.

The device has two 12-bit-resolution MibADCs with 24 channels and 64 words of parity-protected buffer RAM each. The MibADC channels can be converted individually or can be grouped by software for sequential conversion sequences. Sixteen channels are shared between the two MibADCs. There are three separate groupings. Each sequence can be converted once when triggered or configured for continuous conversion mode. The MibADC has a 10-bit mode for use when compatibility with older devices or faster conversion time is desired.

The device has multiple communication interfaces: three MibSPIs, two SPIs, one LIN, one SCI, three DCANs, one I2C module, one Ethernet, and one USB module. The SPIs provide a convenient method of serial high-speed communication between similar shift-register type devices. The LIN supports the Local Interconnect standard 2.0 and can be used as a UART in full-duplex mode using the standard Non-Return-to-Zero (NRZ) format.

The DCAN supports the CAN 2.0 (A and B) protocol standard and uses a serial, multimaster communication protocol that efficiently supports distributed real-time control with robust communication rates of up to 1 Mbps. The DCAN is ideal for systems operating in noisy and harsh environments (for example, automotive vehicle networking and industrial fieldbus) that require reliable serial communication or multiplexed wiring.

The Ethernet module supports MII, RMII, and MDIO interfaces.

The USB module includes a 2-port USB host controller. It is revision 2.0-compatible, based on the OHCI specification for USB, release 1.0. The USB module also includes a USB device controller compatible with the USB specification revision 2.0 and USB specification revision 1.1.

The I2C module is a multimaster communication module providing an interface between the microcontroller and an I2C-compatible device through the I2C serial bus. The I2C supports speeds of 100 and 400 Kbps.

The Frequency-Modulated Phase-Locked Loop (FMPLL) clock module is used to multiply the external frequency reference to a higher frequency for internal use. There are two FMPLL modules on this device. These modules, when enabled, provide two of the seven possible clock source inputs to the Global Clock Module (GCM). The GCM manages the mapping between the available clock sources and the device clock domains.

The device also has an External Clock Prescaler (ECP) module that when enabled, outputs a continuous external clock on the ECLK pin (or ball). The ECLK frequency is a user-programmable ratio of the peripheral interface clock (VCLK) frequency. This low-frequency output can be monitored externally as an indicator of the device operating frequency.

The DMA controller has 16 channels, 32 peripheral requests, and parity protection on its memory. An MPU is built into the DMA to limit the DMA to prescribed areas of memory and to protect the rest of the memory system from any malfunction of the DMA.

The Error Signaling Module (ESM) monitors all device errors and determines whether an interrupt is generated or the external ERROR pin is toggled when a fault is detected. The ERROR pin can be monitored externally as an indicator of a fault condition in the microcontroller.

The External Memory Interface (EMIF) provides off-chip expansion capability with the ability to interface to synchronous DRAM (SDRAM) devices, asynchronous memories, peripherals, or FPGA devices.

Several interfaces are implemented to enhance the debugging capabilities of application code. In addition to the built-in ARM Cortex-R4F CoreSight debug features, an External Trace Macrocell (ETM) provides instruction and data trace of program execution. For instrumentation purposes, a RAM Trace Port (RTP) module is implemented to support high-speed tracing of RAM and peripheral accesses by the CPU or any other master. A Data Modification Module (DMM) gives the ability to write external data into the device memory. Both the RTP and DMM have no or only minimum impact on the program execution time of the application code. A Parameter Overlay Module (POM) can reroute flash accesses to internal memory or to the EMIF. This rerouting allows the dynamic calibration against production code of parameters and tables without rebuilding the code to explicitly access RAM or halting the processor to reprogram the data flash.

With integrated safety features and a wide choice of communication and control peripherals, the RM48L952 device is an ideal solution for high-performance real-time control applications with safety-critical

The RM48L952 device is a high-performance microcontroller family for safety systems. The safety architecture includes dual CPUs in lockstep, CPU and memory BIST logic, ECC on both the flash and the data SRAM, parity on peripheral memories, and loopback capability on peripheral I/Os.

The RM48L952 device integrates the ARM Cortex-R4F Floating-Point CPU. The CPU offers an efficient 1.66 DMIPS/MHz, and has configurations that can run up to 220 MHz, providing up to 365 DMIPS. The device supports the little-endian [LE] format.

The RM48L952 device has 3MB of integrated flash and 256KB of data RAM. Both the flash and RAM have single-bit error correction and double-bit error detection. The flash memory on this device is a nonvolatile, electrically erasable, and programmable memory implemented with a 64-bit-wide data bus interface. The flash operates on a 3.3-V supply input (same level as I/O supply) for all read, program, and erase operations. When in pipeline mode, the flash operates with a system clock frequency of up to 220 MHz. The SRAM supports single-cycle read and write accesses in byte, halfword, word, and double-word modes.

The RM48L952 device features peripherals for real-time control-based applications, including two Next Generation High-End Timer (N2HET) timing coprocessors and two 12-bit Analog-to-Digital Converters (ADCs) supporting up to 24 inputs.

The N2HET is an advanced intelligent timer that provides sophisticated timing functions for real-time applications. The timer is software-controlled, using a reduced instruction set, with a specialized timer micromachine and an attached I/O port. The N2HET can be used for pulse-width-modulated outputs, capture or compare inputs, or GPIO. The N2HET is especially well suited for applications requiring multiple sensor information and drive actuators with complex and accurate time pulses. A High-End Timer Transfer Unit (HTU) can perform DMA-type transactions to transfer N2HET data to or from main memory. A Memory Protection Unit (MPU) is built into the HTU.

The device has two 12-bit-resolution MibADCs with 24 channels and 64 words of parity-protected buffer RAM each. The MibADC channels can be converted individually or can be grouped by software for sequential conversion sequences. Sixteen channels are shared between the two MibADCs. There are three separate groupings. Each sequence can be converted once when triggered or configured for continuous conversion mode. The MibADC has a 10-bit mode for use when compatibility with older devices or faster conversion time is desired.

The device has multiple communication interfaces: three MibSPIs, two SPIs, one LIN, one SCI, three DCANs, one I2C module, one Ethernet, and one USB module. The SPIs provide a convenient method of serial high-speed communication between similar shift-register type devices. The LIN supports the Local Interconnect standard 2.0 and can be used as a UART in full-duplex mode using the standard Non-Return-to-Zero (NRZ) format.

The DCAN supports the CAN 2.0 (A and B) protocol standard and uses a serial, multimaster communication protocol that efficiently supports distributed real-time control with robust communication rates of up to 1 Mbps. The DCAN is ideal for systems operating in noisy and harsh environments (for example, automotive vehicle networking and industrial fieldbus) that require reliable serial communication or multiplexed wiring.

The Ethernet module supports MII, RMII, and MDIO interfaces.

The USB module includes a 2-port USB host controller. It is revision 2.0-compatible, based on the OHCI specification for USB, release 1.0. The USB module also includes a USB device controller compatible with the USB specification revision 2.0 and USB specification revision 1.1.

The I2C module is a multimaster communication module providing an interface between the microcontroller and an I2C-compatible device through the I2C serial bus. The I2C supports speeds of 100 and 400 Kbps.

The Frequency-Modulated Phase-Locked Loop (FMPLL) clock module is used to multiply the external frequency reference to a higher frequency for internal use. There are two FMPLL modules on this device. These modules, when enabled, provide two of the seven possible clock source inputs to the Global Clock Module (GCM). The GCM manages the mapping between the available clock sources and the device clock domains.

The device also has an External Clock Prescaler (ECP) module that when enabled, outputs a continuous external clock on the ECLK pin (or ball). The ECLK frequency is a user-programmable ratio of the peripheral interface clock (VCLK) frequency. This low-frequency output can be monitored externally as an indicator of the device operating frequency.

The DMA controller has 16 channels, 32 peripheral requests, and parity protection on its memory. An MPU is built into the DMA to limit the DMA to prescribed areas of memory and to protect the rest of the memory system from any malfunction of the DMA.

The Error Signaling Module (ESM) monitors all device errors and determines whether an interrupt is generated or the external ERROR pin is toggled when a fault is detected. The ERROR pin can be monitored externally as an indicator of a fault condition in the microcontroller.

The External Memory Interface (EMIF) provides off-chip expansion capability with the ability to interface to synchronous DRAM (SDRAM) devices, asynchronous memories, peripherals, or FPGA devices.

Several interfaces are implemented to enhance the debugging capabilities of application code. In addition to the built-in ARM Cortex-R4F CoreSight debug features, an External Trace Macrocell (ETM) provides instruction and data trace of program execution. For instrumentation purposes, a RAM Trace Port (RTP) module is implemented to support high-speed tracing of RAM and peripheral accesses by the CPU or any other master. A Data Modification Module (DMM) gives the ability to write external data into the device memory. Both the RTP and DMM have no or only minimum impact on the program execution time of the application code. A Parameter Overlay Module (POM) can reroute flash accesses to internal memory or to the EMIF. This rerouting allows the dynamic calibration against production code of parameters and tables without rebuilding the code to explicitly access RAM or halting the processor to reprogram the data flash.

With integrated safety features and a wide choice of communication and control peripherals, the RM48L952 device is an ideal solution for high-performance real-time control applications with safety-critical

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顶层文档 类型 标题 格式选项 下载最新的英语版本 日期
* 数据表 RM48L952 16- and 32-Bit RISC Flash Microcontroller 数据表 (Rev. D) PDF | HTML 2015-6-30
* 用户指南 RM48x 16/32-Bit RISC Flash Microcontroller Technical Reference Manual (Rev. C) 2018-3-1
* 勘误表 RM48x Microcontroller Silicon Errata (Silicon Revision D) (Rev. B) 2016-5-31
* 勘误表 RM48x Microcontroller Silicon Errata (Silicon Revision C) (Rev. G) 2016-5-31
功能安全信息 Certification for Functional Safety Hardware Process (Rev. C) 2025-6-6
证书 TUEV SUED Certification for RM48x (Rev. C) 2024-6-21
更多文献资料 Hercules™ Diagnostic Library Test Automation Unit User Guide (Rev. B) PDF | HTML 2020-1-9
功能安全信息 HALCoGen-CSP Installation Guide (Rev. B) PDF | HTML 2020-1-8
功能安全信息 HALCoGen-CSP User's Guide (Rev. C) PDF | HTML 2020-1-8
功能安全信息 Hercules Diagnostic Library -TAU Installation Guide (Rev. B) PDF | HTML 2020-1-8
更多文献资料 HALCoGen-CSP 04.07.01 (Rev. C) PDF | HTML 2020-1-8
用户指南 Hercules Diagnostic Library CSP Without LDRA 2019-10-29
更多文献资料 Diagnostic Library CSP Release Notes 2019-10-17
功能安全信息 SafeTI™ Hercules™ Diagnostic Library Release Notes (Rev. A) 2019-9-24
应用手册 HALCoGen Ethernet Driver With lwIP Integration Demo and Active Webserver Demo PDF | HTML 2019-9-13
应用手册 Hercules PLL Advisory SSWF021#45 Workaround (Rev. B) PDF | HTML 2019-9-9
应用手册 CAN Bus Bootloader for Hercules Microcontrollers PDF | HTML 2019-8-21
用户指南 HALCoGen-CSP Without LDRA Installation Guide PDF | HTML 2019-8-19
用户指南 HALCoGen-CSP Without LDRA User's Guide PDF | HTML 2019-8-19
用户指南 Hercules™ Diag Lib Test Automation Unit Without LDRA User's Guide PDF | HTML 2019-8-19
用户指南 Hercules Diagnostic Library - Without LDRA Installation Guide PDF | HTML 2019-8-19
应用手册 HALCoGen CSP Without LDRA Release_Notes 2019-8-19
应用手册 Interfacing the Embedded 12-Bit ADC in a TMS570LS31x/21x and RM4x Series MCUs (Rev. A) 2018-4-20
应用手册 FreeRTOS on Hercules Devices_new 2018-4-19
应用手册 Sharing FEE Blocks Between the Bootloader and the Application 2017-11-7
应用手册 Sharing Exception Vectors on Hercules™ Based Microcontrollers 2017-3-27
应用手册 Hercules AJSM Unlock (Rev. A) PDF | HTML 2016-10-19
应用手册 How to Create a HALCoGen Based Project For CCS (Rev. B) 2016-8-9
应用手册 Using the CRC Module on Hercules™-Based Microcontrollers 2016-8-4
功能安全信息 Functional Safety Audit: SafeTI Functional Safety Hardware Development (Rev. A) 2016-4-25
应用手册 High Speed Serial Bus Using the MibSPIP Module on Hercules-Based MCUs 2016-4-22
功能安全信息 Safety Manual for RM48x Hercules ARM-Based Safety Critical MCUs (Rev. D) 2016-2-18
功能安全信息 Enabling Functional Safety Using SafeTI Diagnostic Library 2015-12-18
白皮书 德州仪器 (TI) Hercules MCU: 适合在高铁中使用的功能 英语版 2015-11-9
应用手册 Triggering ADC Using Internal Timer Events on Hercules MCUs 2015-10-19
白皮书 Extending TI’s Hercules MCUs with the integrated flexible HET 2015-9-29
应用手册 Continuous Monitor of the PLL Frequency With the DCC 2015-7-24
应用手册 PWM Generation and Input Capture Using HALCoGen N2HET Module 2015-6-30
应用手册 Sine Wave Generation Using PWM With Hercules N2HET and HTU 2015-5-12
功能安全信息 Foundational Software for Functional Safety 2015-5-12
应用手册 Triangle/Trapezoid Wave Generation Using PWM With Hercules N2HET 2015-5-1
应用手册 Nested Interrupts on Hercules ARM Cortex-R4/5-Based Microncontrollers 2015-4-23
白皮书 Latch-Up White Paper PDF | HTML 2015-4-22
应用手册 Interrupt and Exception Handling on Hercules ARM Cortex-R4/5-Based MCUs 2015-4-20
应用手册 Monitoring PWM Using N2HET 2015-4-2
应用手册 Hercules SCI With DMA 2015-3-22
证书 TÜV NORD Certificate for Functional Safety Software Development Process 2015-2-3
功能安全信息 Calculating Equivalent Power-on-Hours for Hercules Safety MCUs 2015-1-26
应用手册 Limiting Clamp Currents on TMS470/TMS570 Digital and Analog Inputs (Rev. A) 2014-12-8
功能安全信息 Migrating from RM48x or RM46x to RM42x Safety MCUs (Rev. A) 2014-9-22
功能安全信息 TUV SUD ISO-13849 Safety Architecture Concept Study 2014-7-2
更多文献资料 HaLCoGen Release Notes 2014-6-25
功能安全信息 Migrating From RM48x to RM46x Safety MCUs (Rev. A) 2014-2-19
应用手册 Interfacing TPS65381 With Hercules Microcontrollers (Rev. A) 2014-2-14
用户指南 Trace Analyzer User's Guide (Rev. B) 2013-11-18
功能安全信息 IEC 60730 and UL 1998 Safety Standard Compliance Made Easier with TI Hercules 2013-10-3
应用手册 CAN Bus Bootloader for RM48x MCU 2013-9-16
应用手册 UART Bootloader for Hercules RM48 MCU 2013-9-16
应用手册 SPI Bootloader for Hercules RM48 MCU 2013-9-16
应用手册 初始化Hercules ™ ARM® Cortex™-R4F 微控制器 (Rev. D) 英语版 (Rev.D) 2013-8-9
应用手册 Reduction of Power Consumption for RM48L950 (Rev. A) 2012-10-30
功能安全信息 Accelerating safety-certified motor control designs (Rev. A) 2012-10-4
功能安全信息 借助高端定时器传输单元 来改进系统性能 Hercules ARM 安全 MCU (Rev. A) 英语版 (Rev.A) 2012-9-13
功能安全信息 在Hercules™ ARM® 安全MCU 上配置一个CAN 节点 英语版 2012-9-13
功能安全信息 ADC 源阻抗用于Hercules™ ARM® 安全MCU (Rev. B) 英语版 (Rev.B) 2012-8-23
应用手册 Hercules Family Frequency Slewing to Reduce Voltage and Current Transients 2012-7-5
应用手册 Basic PBIST Configuration and Influence on Current Consumption (Rev. C) 2012-4-12
应用手册 Verification of Data Integrity Using CRC 2012-2-17
功能安全信息 Important ARM Ltd Application Notes for TI Hercules ARM Safety MCUs 2011-11-17
功能安全信息 Execution Time Measurement for Hercules ARM Safety MCUs (Rev. A) 2011-11-4
应用手册 Use of All 1'’s and All 0's Valid in Flash EEPROM Emulation 2011-9-27
应用手册 3.3 V I/O Considerations for Hercules Safety MCUs (Rev. A) 2011-9-6
功能安全信息 Configuring the Hercules ARM Safety MCU SCI/LIN Module for UART Communication (Rev. A) 2011-9-6
功能安全信息 Hercules™ Microcontrollers: Real-time MCUs for safety-critical products 2011-9-2
应用手册 ECC Handling in TMSx70-Based Microcontrollers 2011-2-23
用户指南 TI ICEPick Module Type C Reference Guide Public Version 2011-2-17
应用手册 NHET Getting Started (Rev. B) 2010-8-30
功能安全信息 Generating Operating System Tick Using RTI on a Hercules ARM Safety MCU 2010-7-13
功能安全信息 Usage of MPU Subregions on TI Hercules ARM Safety MCUs 2010-3-10
用户指南 TI Assembly Language Tools Enhanced High-End Timer (NHET) Assembler User's Guide 2010-3-4
白皮书 Discriminating between Soft Errors and Hard Errors in RAM White Paper 2008-6-4

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