TMS320F28P659SH-Q1

現行

車用 C2000 32 位元 MCU、400 MIPS、1xC28x + 1xCLA、FPU64、768kB 快閃記憶體、16-b ADC

TMS320F28P659SH-Q1

現行

產品詳細資料

ADC type 1 12-bit SAR, 2 16-bit SAR TI functional safety category Functional Safety-Compliant USB 1 Operating temperature range (°C) -40 to 125 Rating Automotive Operating system FreeRTOS Hardware accelerators Control law accelerator, Trigonometric math accelerator Nonvolatile memory (kByte) 1024 Number of GPIOs 185 Number of I2Cs 2 Security Cryptographic acceleration, Secure storage
ADC type 1 12-bit SAR, 2 16-bit SAR TI functional safety category Functional Safety-Compliant USB 1 Operating temperature range (°C) -40 to 125 Rating Automotive Operating system FreeRTOS Hardware accelerators Control law accelerator, Trigonometric math accelerator Nonvolatile memory (kByte) 1024 Number of GPIOs 185 Number of I2Cs 2 Security Cryptographic acceleration, Secure storage
HLQFP (PTP) 176 676 mm² 26 x 26 HTQFP (PZP) 100 256 mm² 16 x 16

Real-time Processing

  • Contains up to three CPUs: two 32-bit C28x DSP CPUs and one CLA CPU, all running at 200MHz
  • Delivers a total processing power equivalent to 1000MHz Arm Cortex-M7 based device on real-time signal chain performance (see the Real-time Benchmarks Showcasing C2000™ Control MCU’s Optimized Signal Chain Application Note)
  • C28x DSP architecture
    • IEEE 754 double-precision (64-bit) Floating-Point Unit (FPU)
    • Trigonometric Math Unit (TMU)
    • Fast Integer Division (FINTDIV)
    • CRC engine and instructions (VCRC)
  • Control Law Accelerator (CLA) CPU
    • IEEE 754 single-precision floating-point
    • Executes code independently of C28x CPUs

Memory

  • 1.28MB of CPU-mappable flash (ECC-protected) with 5 flash banks
  • 248KB of RAM (Enhanced Parity-protected)
  • External Memory Interface (EMIF) with ASRAM, SDRAM support or ASIC/FPGA

Analog Subsystem

  • Three Analog-to-Digital Converters (ADCs)
    • 16-bit mode, 1.19MSPS each
    • 12-bit mode, 3.92MSPS each
    • Up to 40 single-ended or 19 differential inputs
    • Separate sample-and-hold (S/H) on each ADC to enable simultaneous measurements
    • Hardware post-processing of conversions
    • Hardware oversampling (up to 128x) and undersampling modes, with accumulation, averaging and outlier rejection
    • 24 redundant input channels for flexibility
    • Automatic comparison of conversion results for functional safety applications
  • 11 windowed comparators with 12-bit Digital-to-Analog Converter (DAC) references
    • DAC with slope compensation – enabling peak current and valley current mode control
    • Connection options for internal temperature sensor and ADC reference
  • Two 12-bit buffered DAC outputs

Control Peripherals

  • 36 Pulse Width Modulator (PWM) channels, all with 150ps high-resolution capability (HRPWM)
    • Minimum Dead-Band Logic (MINDB), Illegal Combo Logic (ICL), and other special features (that is, Diode Emulation [DE]) support
    • Enable Matrix Converters, Multilevel Converters, and Resonant Converters support without additional external logic
  • Seven Enhanced Capture (eCAP) modules
    • High-resolution Capture (HRCAP) available on two of the seven eCAP modules
    • Two new monitor units for edge, pulse width, and period that can be coupled with ePWM strobes and trip events
    • Increased 256 inputs for more capture options
    • New ADC SOC generation capability
    • eCAP can also be used for additional PWM
    • Six Enhanced Quadrature Encoder Pulse (eQEP) modules
    • 16 Sigma-Delta Filter Module (SDFM) input channels, 2 independent filters per channel
    • Embedded Pattern Generator (EPG)
  • Configurable Logic Block
    • Six logic tiles to augment existing peripheral capability or define customized logic to reduce or remove external CPLD/FPGA
    • Supports Encoder interfaces without the need of FPGA
    • Enables customized PWM generation for power conversion

Communications Peripherals

  • EtherCAT SubordinateDevice (or SubDevice) Controller (ESC)
  • USB 2.0 (MAC + PHY)
  • Fast Serial Interface (FSI) enabling up to 200Mbps data exchange across isolation
  • Four high-speed (up to 50MHz) SPI ports
  • Two Serial Communications Interfaces (SCI) (support UART)
  • Two high-speed (25Mbps) Universal Asynchronous Receiver/Transmitters (UARTs)
  • Two I2C interfaces (400Kbps)
  • External boot option via SPI/ SCI/I2C
  • Two UART-compatible Local Interconnect Network (LIN) Modules (support SCI)
  • Power-Management Bus (PMBus) interface (supports I2C)
  • One Controller Area Network (CAN/DCAN)
  • Two CAN FD/MCAN Controller Area Networks with Flexible Data Rate

System Peripherals

  • Two 6-channel Direct Memory Access (DMA) controllers
  • 185 individually programmable multiplexed General-Purpose Input/Output (GPIO) pins
  • Expanded Peripheral Interrupt controller (ePIE)
  • Low-power mode (LPM) support
  • Embedded Real-time Analysis and Diagnostic (ERAD)
  • Background CRC (BGCRC)

Security Peripherals

  • Advanced Encryption Standard (AES-128, 192, 256) accelerator
  • Security
    • JTAGLOCK
    • Zero-pin boot
    • Dual-zone security
  • Unique Identification (UID) number

Safety Peripherals

Clock and System Control

  • Two internal 10MHz oscillators
  • On-chip crystal oscillator
  • 2*APLL, BOR, Redundant interrupt vector RAM
  • Windowed watchdog timer module
  • Missing clock detection circuitry
  • Dual-clock Comparator (DCC)
  • Live Firmware Update (LFU)
    • Fast context switching from old to new firmware with or without a power cycle
  • 1.2V core, 3.3V I/O design
    • Internal VREG for 1.2V generation
    • Brownout reset (BOR) circuit

Package options:

  • Lead-free, green packaging
  • 256-ball New Fine Pitch Ball Grid Array (nFBGA) [ZEJ suffix], 13mm × 13mm/0.8mm pitch
  • 176-pin PowerPAD™ Thermally Enhanced Low-profile Quad Flatpack (HLQFP) [PTP suffix],26mm × 26mm/0.5mm pitch
  • 169-ball New Fine Pitch Ball Grid Array (nFBGA) [NMR suffix], 9mm × 9mm/0.65mm pitch
  • 100-pin PowerPAD™ Thermally Enhanced Thin Quad Flatpack (HTQFP) [PZP suffix], 16mm × 16mm/0.5mm pitch

Temperature

  • Ambient (TA ): –40°C to 125°C (industrial and automotive qualified)

Real-time Processing

  • Contains up to three CPUs: two 32-bit C28x DSP CPUs and one CLA CPU, all running at 200MHz
  • Delivers a total processing power equivalent to 1000MHz Arm Cortex-M7 based device on real-time signal chain performance (see the Real-time Benchmarks Showcasing C2000™ Control MCU’s Optimized Signal Chain Application Note)
  • C28x DSP architecture
    • IEEE 754 double-precision (64-bit) Floating-Point Unit (FPU)
    • Trigonometric Math Unit (TMU)
    • Fast Integer Division (FINTDIV)
    • CRC engine and instructions (VCRC)
  • Control Law Accelerator (CLA) CPU
    • IEEE 754 single-precision floating-point
    • Executes code independently of C28x CPUs

Memory

  • 1.28MB of CPU-mappable flash (ECC-protected) with 5 flash banks
  • 248KB of RAM (Enhanced Parity-protected)
  • External Memory Interface (EMIF) with ASRAM, SDRAM support or ASIC/FPGA

Analog Subsystem

  • Three Analog-to-Digital Converters (ADCs)
    • 16-bit mode, 1.19MSPS each
    • 12-bit mode, 3.92MSPS each
    • Up to 40 single-ended or 19 differential inputs
    • Separate sample-and-hold (S/H) on each ADC to enable simultaneous measurements
    • Hardware post-processing of conversions
    • Hardware oversampling (up to 128x) and undersampling modes, with accumulation, averaging and outlier rejection
    • 24 redundant input channels for flexibility
    • Automatic comparison of conversion results for functional safety applications
  • 11 windowed comparators with 12-bit Digital-to-Analog Converter (DAC) references
    • DAC with slope compensation – enabling peak current and valley current mode control
    • Connection options for internal temperature sensor and ADC reference
  • Two 12-bit buffered DAC outputs

Control Peripherals

  • 36 Pulse Width Modulator (PWM) channels, all with 150ps high-resolution capability (HRPWM)
    • Minimum Dead-Band Logic (MINDB), Illegal Combo Logic (ICL), and other special features (that is, Diode Emulation [DE]) support
    • Enable Matrix Converters, Multilevel Converters, and Resonant Converters support without additional external logic
  • Seven Enhanced Capture (eCAP) modules
    • High-resolution Capture (HRCAP) available on two of the seven eCAP modules
    • Two new monitor units for edge, pulse width, and period that can be coupled with ePWM strobes and trip events
    • Increased 256 inputs for more capture options
    • New ADC SOC generation capability
    • eCAP can also be used for additional PWM
    • Six Enhanced Quadrature Encoder Pulse (eQEP) modules
    • 16 Sigma-Delta Filter Module (SDFM) input channels, 2 independent filters per channel
    • Embedded Pattern Generator (EPG)
  • Configurable Logic Block
    • Six logic tiles to augment existing peripheral capability or define customized logic to reduce or remove external CPLD/FPGA
    • Supports Encoder interfaces without the need of FPGA
    • Enables customized PWM generation for power conversion

Communications Peripherals

  • EtherCAT SubordinateDevice (or SubDevice) Controller (ESC)
  • USB 2.0 (MAC + PHY)
  • Fast Serial Interface (FSI) enabling up to 200Mbps data exchange across isolation
  • Four high-speed (up to 50MHz) SPI ports
  • Two Serial Communications Interfaces (SCI) (support UART)
  • Two high-speed (25Mbps) Universal Asynchronous Receiver/Transmitters (UARTs)
  • Two I2C interfaces (400Kbps)
  • External boot option via SPI/ SCI/I2C
  • Two UART-compatible Local Interconnect Network (LIN) Modules (support SCI)
  • Power-Management Bus (PMBus) interface (supports I2C)
  • One Controller Area Network (CAN/DCAN)
  • Two CAN FD/MCAN Controller Area Networks with Flexible Data Rate

System Peripherals

  • Two 6-channel Direct Memory Access (DMA) controllers
  • 185 individually programmable multiplexed General-Purpose Input/Output (GPIO) pins
  • Expanded Peripheral Interrupt controller (ePIE)
  • Low-power mode (LPM) support
  • Embedded Real-time Analysis and Diagnostic (ERAD)
  • Background CRC (BGCRC)

Security Peripherals

  • Advanced Encryption Standard (AES-128, 192, 256) accelerator
  • Security
    • JTAGLOCK
    • Zero-pin boot
    • Dual-zone security
  • Unique Identification (UID) number

Safety Peripherals

Clock and System Control

  • Two internal 10MHz oscillators
  • On-chip crystal oscillator
  • 2*APLL, BOR, Redundant interrupt vector RAM
  • Windowed watchdog timer module
  • Missing clock detection circuitry
  • Dual-clock Comparator (DCC)
  • Live Firmware Update (LFU)
    • Fast context switching from old to new firmware with or without a power cycle
  • 1.2V core, 3.3V I/O design
    • Internal VREG for 1.2V generation
    • Brownout reset (BOR) circuit

Package options:

  • Lead-free, green packaging
  • 256-ball New Fine Pitch Ball Grid Array (nFBGA) [ZEJ suffix], 13mm × 13mm/0.8mm pitch
  • 176-pin PowerPAD™ Thermally Enhanced Low-profile Quad Flatpack (HLQFP) [PTP suffix],26mm × 26mm/0.5mm pitch
  • 169-ball New Fine Pitch Ball Grid Array (nFBGA) [NMR suffix], 9mm × 9mm/0.65mm pitch
  • 100-pin PowerPAD™ Thermally Enhanced Thin Quad Flatpack (HTQFP) [PZP suffix], 16mm × 16mm/0.5mm pitch

Temperature

  • Ambient (TA ): –40°C to 125°C (industrial and automotive qualified)

The TMS320F28P65x (F28P65x) is a member of the C2000™ real-time microcontroller family of scalable, ultra-low latency devices designed for efficiency in power electronics, including but not limited to: high power density, high switching frequencies, and supporting the use of IGBT, GaN, and SiC technologies.

These include such applications as:

The real-time control subsystem is based on TI’s 32-bit C28x DSP core, which provides 200MIPS of signal-processing performance in each core for floating- or fixed-point code running from either on-chip flash or SRAM. This is equivalent to the 400MHz processing power on a Cortex®-M7 based device (C28x DSP core gives two times more performance than the Cortex®-M7 core).The C28x CPU is further boosted by the Trigonometric Math Unit (TMU) and VCRC (Cyclical Redundancy Check) extended instruction sets, speeding up common algorithms key to real-time control systems. Extended instruction sets enable IEEE double-precision 64-bit floating-point math. Finally, the Control Law Accelerator (CLA) enables an additional 200MIPS per core of independent processing ability. This is equivalent to the 280MHz processing power on a Cortex®-M7 based device (CLA CPU gives 40% more performance than the Cortex®-M7 core).

The lockstep dual-CPU comparator option has been added in the secondary C28x CPU along with ePIE and DMA for detection of permanent and transient faults. To allow fast context switching from existing to new firmware, hardware enhancements for Live Firmware Update (LFU) have been added to F28P65x.

High-performance analog blocks are tightly integrated with the processing and control units to provide optimal real-time signal chain performance. The Analog-to-Digital Converter (ADC) has been enhanced with up to 40 analog channels, 22 of which have general-purpose input/output (GPIO) capability. Implementation of oversampling is greatly simplified with hardware improvement. For safety-critical ADC conversions, a hardware redundancy checker has been added that provides the ability to compare ADC conversion results from multiple ADC modules for consistency without additional CPU cycles. Thirty-six frequency-independent PWMs, all with high-resolution capability, enable control of multiple power stages, from 3-phase inverters to advanced multilevel power topologies. The PWMs have been enhanced with Minimum Dead-Band Logic (MINDL) and Illegal Combo Logic (ICL) features.

The inclusion of the Configurable Logic Block (CLB) allows the user to add custom logic and potentially integrate FPGA-like functions into the C2000 real-time MCU.

An EtherCAT SubDevice Controller and other industry-standard protocols like CAN FD and USB 2.0 are available on this device. The Fast Serial Interface (FSI) enables up to 200Mbps of robust communications across an isolation boundary.

As a highly connected device, the F28P65x also offers various security enablers to help designers implement their cyber security strategy and support features like hardware encryption, secure JTAG and secure Boot.

From a safety standpoint, F28P65x supports numerous safety enablers. For more details, see Industrial Functional Safety for C2000™ Real-Time Microcontrollers and Automotive Functional Safety for C2000™ Real-Time Microcontrollers.

Want to learn more about features that make C2000 MCUs the right choice for your real-time control system? Check out The Essential Guide for Developing With C2000™ Real-Time Microcontrollers and visit the C2000™ real-time control MCUs page.

The Getting Started With C2000™ Real-Time Control Microcontrollers (MCUs) Getting Started Guide covers all aspects of development with C2000 devices from hardware to support resources. In addition to key reference documents, each section provides relevant links and resources to further expand on the information covered.

Ready to get started? Check out the TMDSCNCD28P65X evaluation board and download C2000Ware.

The TMS320F28P65x (F28P65x) is a member of the C2000™ real-time microcontroller family of scalable, ultra-low latency devices designed for efficiency in power electronics, including but not limited to: high power density, high switching frequencies, and supporting the use of IGBT, GaN, and SiC technologies.

These include such applications as:

The real-time control subsystem is based on TI’s 32-bit C28x DSP core, which provides 200MIPS of signal-processing performance in each core for floating- or fixed-point code running from either on-chip flash or SRAM. This is equivalent to the 400MHz processing power on a Cortex®-M7 based device (C28x DSP core gives two times more performance than the Cortex®-M7 core).The C28x CPU is further boosted by the Trigonometric Math Unit (TMU) and VCRC (Cyclical Redundancy Check) extended instruction sets, speeding up common algorithms key to real-time control systems. Extended instruction sets enable IEEE double-precision 64-bit floating-point math. Finally, the Control Law Accelerator (CLA) enables an additional 200MIPS per core of independent processing ability. This is equivalent to the 280MHz processing power on a Cortex®-M7 based device (CLA CPU gives 40% more performance than the Cortex®-M7 core).

The lockstep dual-CPU comparator option has been added in the secondary C28x CPU along with ePIE and DMA for detection of permanent and transient faults. To allow fast context switching from existing to new firmware, hardware enhancements for Live Firmware Update (LFU) have been added to F28P65x.

High-performance analog blocks are tightly integrated with the processing and control units to provide optimal real-time signal chain performance. The Analog-to-Digital Converter (ADC) has been enhanced with up to 40 analog channels, 22 of which have general-purpose input/output (GPIO) capability. Implementation of oversampling is greatly simplified with hardware improvement. For safety-critical ADC conversions, a hardware redundancy checker has been added that provides the ability to compare ADC conversion results from multiple ADC modules for consistency without additional CPU cycles. Thirty-six frequency-independent PWMs, all with high-resolution capability, enable control of multiple power stages, from 3-phase inverters to advanced multilevel power topologies. The PWMs have been enhanced with Minimum Dead-Band Logic (MINDL) and Illegal Combo Logic (ICL) features.

The inclusion of the Configurable Logic Block (CLB) allows the user to add custom logic and potentially integrate FPGA-like functions into the C2000 real-time MCU.

An EtherCAT SubDevice Controller and other industry-standard protocols like CAN FD and USB 2.0 are available on this device. The Fast Serial Interface (FSI) enables up to 200Mbps of robust communications across an isolation boundary.

As a highly connected device, the F28P65x also offers various security enablers to help designers implement their cyber security strategy and support features like hardware encryption, secure JTAG and secure Boot.

From a safety standpoint, F28P65x supports numerous safety enablers. For more details, see Industrial Functional Safety for C2000™ Real-Time Microcontrollers and Automotive Functional Safety for C2000™ Real-Time Microcontrollers.

Want to learn more about features that make C2000 MCUs the right choice for your real-time control system? Check out The Essential Guide for Developing With C2000™ Real-Time Microcontrollers and visit the C2000™ real-time control MCUs page.

The Getting Started With C2000™ Real-Time Control Microcontrollers (MCUs) Getting Started Guide covers all aspects of development with C2000 devices from hardware to support resources. In addition to key reference documents, each section provides relevant links and resources to further expand on the information covered.

Ready to get started? Check out the TMDSCNCD28P65X evaluation board and download C2000Ware.

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重要文件 類型 標題 格式選項 日期
* Data sheet TMS320F28P65x Real-Time Microcontrollers datasheet (Rev. D) PDF | HTML 2025年 8月 19日
* Errata TMS320F28P65x Real-Time MCUs Silicon Errata (Rev. D) PDF | HTML 2025年 4月 8日
* User guide TMS320F28P65x Real-Time Microcontrollers Technical Reference Manual (Rev. B) PDF | HTML 2024年 8月 20日
Application note EEPROM Emulation for Generation 3 C2000 Real-Time Controllers (Rev. B) PDF | HTML 2025年 8月 13日
Application note MCU Control Center Tool Developer's Guide PDF | HTML 2025年 8月 4日
Application note MCU Signal Sight Tool Developer's Guide PDF | HTML 2025年 8月 1日
User guide C2000 Real-Time Control Peripheral Reference Guide (Rev. U) PDF | HTML 2025年 7月 11日
Application note C2000-IDE Assist Tool Migration Feature Guide PDF | HTML 2025年 4月 23日
Product overview Industrial Functional Safety for C2000™ Real-Time Microcontrollers (Rev. F) 2025年 4月 23日
User guide Getting Started with Bootloading on C2000™ Microcontrollers PDF | HTML 2025年 4月 8日
Functional safety information VDE Safety Certification Document for F280013x, F280015x, F28002x, F28004x, F2838x, F28003x, F28P65x, F28P55x 2025年 3月 19日
Application brief How to Debug Interrupt Abnormalities PDF | HTML 2025年 2月 25日
Application brief 人形機器人的馬達控制 PDF | HTML 2025年 2月 5日
Application note C2000 IDE Assist Tool Features Guide (Rev. A) PDF | HTML 2025年 1月 29日
Application note Development Tool Versions for C2000™ Support (Rev. A) PDF | HTML 2024年 6月 26日
Product overview Implementing IEC 60730 / UL 1998 Compliance for C2000 Real-Time Microcontrollers (Rev. A) PDF | HTML 2024年 6月 25日
Application note Obtain UL/IEC 60730-1/60335-1 Class B Certification Based on C2000™ MCU Diagnostic Library in Appliances PDF | HTML 2024年 5月 30日
Functional safety information Functional Safety Manual for TMS320F28P65x Real-Time Microcontrollers PDF | HTML 2024年 5月 29日
Functional safety information TMS320F28P65x TUV SUD Functional Safety Certificate 2024年 5月 29日
Application note Clock Edge Delay Compensation With Isolated Modulators Digital Interface to MCUs (Rev. A) PDF | HTML 2024年 1月 12日
User guide Migration Between TMS320F2837x and TMS320F28P65x PDF | HTML 2023年 8月 2日
User guide Migration Between TMS320F2838x and TMS320F28P65x PDF | HTML 2023年 7月 31日
White paper Achieving High Efficiency and Enabling Integration in EV Powertrain Subsystems (Rev. A) PDF | HTML 2023年 7月 17日
Application note CRC Engines in C2000 Devices (Rev. A) PDF | HTML 2023年 5月 1日
Application note Migrating Software From 8-Bit (Byte) Addressable CPU’s to C28x CPU (Rev. A) PDF | HTML 2023年 4月 19日
Application note ADC Input Circuit Evaluation for C2000 MCUs (using TINA-TI simulation tool) (Rev. A) PDF | HTML 2023年 3月 24日
Application note ADC Input Circuit Evaluation for C2000 Real-Time MCUs (using PSPICE-FOR-TI) PDF | HTML 2023年 3月 24日
Application note Charge-Sharing Driving Circuits for C2000 ADCs (using PSPICE-FOR-TI) (Rev. A) PDF | HTML 2023年 3月 24日
Application note Charge-Sharing Driving Circuits for C2000 ADCs (using TINA-TI simulation tool) (Rev. A) PDF | HTML 2023年 3月 24日
Application note Methods for Mitigating ADC Memory Cross-Talk (Rev. A) PDF | HTML 2023年 3月 24日
Application note Using SMI of C2000 EtherCAT Slave Controller for Ethernet PHY Configuration PDF | HTML 2023年 2月 27日
Application note C2000 ePWM Developer’s Guide (Rev. A) PDF | HTML 2023年 2月 24日
Application note How to Implement Custom Serial Interfaces Using Configurable Logic Block (CLB) PDF | HTML 2023年 2月 3日
Application note C2000 SysConfig Linker Command Tool PDF | HTML 2023年 1月 26日
Application note Using the Fast Serial Interface (FSI) With Multiple Devices in an Application (Rev. E) PDF | HTML 2023年 1月 25日
Application note Diagnosing Delta-Sigma Modulator Bitstream Using C2000™ Configurable Logic Block PDF | HTML 2022年 12月 19日
Application note Software Examples to Showcase Unique Capabilities of TI’s C2000™ CLA (Rev. A) PDF | HTML 2022年 11月 17日
User guide Getting Started With C2000™ Real-Time Control Microcontrollers (MCUs) (Rev. C) PDF | HTML 2022年 6月 29日
Application note Implement three-phase interleaved LLC on C2000 Type-4 PWM PDF | HTML 2022年 3月 30日
Application note The Essential Guide for Developing With C2000 Real-Time Microcontrollers (Rev. F) PDF | HTML 2022年 3月 3日
Application note Real-Time Benchmarks Showcasing C2000™ Control MCU's Optimized Signal Chain (Rev. A) PDF | HTML 2021年 12月 15日
Application note Achieve Delayed Protection for Three-Level Inverter With Type 4 EPWM PDF | HTML 2021年 10月 29日
Application note C2000 SysConfig PDF | HTML 2021年 10月 20日
Application note Getting Started with the MCAN (CAN FD) Module PDF | HTML 2021年 10月 20日
Application note Achieve Delayed Protection for Three-Level Inverter With CLB PDF | HTML 2021年 6月 28日
Application note Programming Examples for the DCAN Module (Rev. A) PDF | HTML 2021年 5月 20日
Application note Leverage New Type ePWM Features for Multiple Phase Control PDF | HTML 2021年 5月 11日
Application note C2000™ DCSM Security Tool (Rev. A) PDF | HTML 2021年 5月 10日
White paper 結合 TI GaN FETs 與 C2000™ 即時 MCU,實現功率密集與有效率的數位電源系統 2021年 3月 18日
Application note CRM/ZVS PFC Implementation Based on C2000 Type-4 PWM Module PDF | HTML 2021年 2月 18日
More literature Maximize density, power, and reliability with TI GaN and C2000™ real-time MCUs 2020年 12月 15日
Application note C2000™ Unique Device Number (Rev. B) PDF | HTML 2020年 9月 17日
Application note Secure BOOT On C2000 Device 2020年 7月 21日
Application note How to Migrate Custom Logic From an FPGA/CPLD to C2000 Microcontrollers (Rev. A) 2020年 6月 15日
Application note Enhancing Device Security by Using JTAGLOCK Feature PDF | HTML 2020年 5月 27日
Application note EtherCAT Based Connected Servo Drive using Fast Current Loop on PMSM (Rev. B) PDF | HTML 2020年 2月 19日
White paper Distributed Power Control Architecture w/ C2000 MCUs Over Fast Serial Interface PDF | HTML 2020年 2月 14日
E-book E-book: An engineer’s guide to industrial robot designs 2020年 2月 12日
Application note Configurable Error Generator for Controller Area Network PDF | HTML 2019年 12月 19日
User guide TMS320C28x Extended Instruction Sets Technical Reference Manual (Rev. C) 2019年 10月 29日
Application note Leveraging High Resolution Capture (HRCAP) for Single Wire Data Transfer PDF | HTML 2019年 8月 28日
Application note Fast Integer Division – A Differentiated Offering From C2000 Product Family PDF | HTML 2019年 6月 14日
Application note Calculating Useful Lifetimes of Embedded Processors (Rev. B) PDF | HTML 2019年 5月 7日
Application note Embedded Real-Time Analysis and Response for Control Applications PDF | HTML 2019年 3月 29日
Application note Designing With The C2000 Configurable Logic Block 2019年 2月 5日
Application note MSL Ratings and Reflow Profiles (Rev. A) 2018年 12月 13日
Application note Fast Serial Interface (FSI) Skew Compensation 2018年 11月 8日
White paper Maximizing power for Level 3 EV charging stations 2018年 6月 12日
User guide TMS320C28x DSP CPU and Instruction Set (Rev. F) 2015年 4月 10日
Application note Calculating FIT for a Mission Profile 2015年 3月 24日

設計與開發

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開發板

LAUNCHXL-F28P65X — C2000™ 即時 MCU F28P65x LaunchPad™ 開發套件

LAUNCHXL-F28P65X 是適用 TI C2000™ 即時微控制器 F28P65x 裝置系列的低成本開發電路板。其適合進行初始評估與原型設計,提供標準化且使用方便的平台,可讓您開發下一個應用。此擴充版本 LaunchPad™ 開發套件提供額外針腳以助開發,並支援連接兩個 BoosterPack™ 外掛模組。屬於 TI MCU LaunchPad 龐大生態系統的一部分,也與各種外掛程式模組交互相容。

使用指南: PDF | HTML
TI.com 無法提供
開發板

TMDSCNCD28P65X — TMS320F28P65X controlCARD 評估模組

TMDSCNCD28P65X 是一款用於 TI C2000™ MCU 系列 F28P65x 裝置的低成本評估和開發板。其隨附 HSEC180 (180 針腳高速邊緣連接器),並且為 controlCARD,因此是初始評估和原型設計的理想之選。若要評估 TMDSCNCD28P65X,需要 180 針腳的擴充站 TMDSHSECDOCK,並且可單獨或以搭售套件的方式購買。

使用指南: PDF | HTML
TI.com 無法提供
開發板

XDS110ISO-EVM — 適用於 C2000 和 Sitara™ controlSOM 的 XDS110 隔離插入式評估模組

XDS110 隔離插入式電路板是一款適用於 C2000 和 Sitara controlSOM 的即時偵錯及 Flash 編程評估模組。可透過非隔離式 120 針腳連接器或電氣隔離式 16 針腳連接器連接 C2000 及 Sitara controlSOM。兩種接頭皆具備 JTAG/cJTAG/SWD 支援和全雙工 UART 埠。電路板支援兩個額外功能,可在目標電路板偵錯中使用:序列周邊介面 (SPI) 至四個隔離式數位類比轉換器 (DAC) 通道,以及最多六個數位和四個類比非隔離通道。
使用指南: PDF | HTML
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開發板

ALGO-3P-UISP1-TI — 適用於德州儀器裝置的 Algocraft μISP1 編程器

μISP 可以連接到主機 PC (內建 RS-232、USB、LAN 連接) 或獨立模式工作。

在單機模式下,只要按下「開始」按鈕或透過一些 TTL 控制線,就可以執行編程週期。

其緊湊的尺寸和多功能性可輕鬆整合到生產環境、手動和自動化程序中。

從:Algocraft
子卡

TMDSHSECDOCK — HSEC180 controlCARD 基板擴充站

TMDSHSECDOCK 為一塊基板,可為相容的 HSEC180 架構 controlCARD 提供關鍵訊號的接頭針腳存取。提供模擬板區域以快速進行原型設計。電路板電源可由 USB 纜線或 5-V 桶式電源供應器供電。

使用指南: PDF | HTML
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偵錯探測器

TMDSEMU110-U — XDS110 JTAG 偵錯探測器

德州儀器 XDS110 是一種全新的偵錯探測器 (模擬器) 類別,適用於 TI 嵌入式處理器。XDS110 取代 XDS100 系列,可在單一 Pod 中支援更廣泛的標準 (IEEE1149.1、IEEE1149.7、SWD)。同時,所有 XDS 偵錯探針在所有配備嵌入式追蹤緩衝器 (ETB) 的 Arm® 與 DSP 處理器中均支援核心與系統追蹤。  對於針腳上的核心追蹤,則需要 XDS560v2 PRO TRACE

德州儀器 XDS110 透過 TI 20 針腳連接器(具有用於 TI 14 針腳和 Arm 10 針腳和 Arm 20 針腳的多轉接器)連接到目標電路板,並透過 USB2.0 (...)

使用指南: PDF
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偵錯探測器

TMDSEMU200-U — XDS200 USB 偵錯探測器

XDS200 是為 TI 嵌入式裝置偵錯的偵錯探測器(模擬器)。對於大多數裝置,建議使用較新、成本較低的 XDS110 (www.ti.com/tool/TMDSEMU110-U)。XDS200 支援單一 Pod 中廣泛的標準(IEEE1149.1、IEEE1149.7、SWD)。所有 XDS 偵錯探針在所有配備嵌入式追蹤緩衝器 (ETB) 的 Arm® 與 DSP 處理器中均支援核心與系統追蹤。

XDS200 透過 TI 20 接腳連接器(配備適用 TI 14 接腳、Arm Cortex® 10 接腳和 Arm 20 接腳的多重轉接器)連接到目標電路板,並透過 USB2.0 高速 (...)

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硬體程式設計工具

ALGO-3P-WRITENOW — Algocraft WriteNow!程式設計工具

WriteNow! 系統內編程器系列是可編程產業的一大突破。此編程器支援多家製造商的眾多裝置 (例如微控制器、記憶體、CPLD 與其他可編程裝置)。其尺寸精巧,便於整合至 ATE 與固定裝置。編程器可單機運作,或透過內建的 RS-232、LAN 與 USB 連接埠與主機電腦連線,並隨附操作簡易的工具軟體。

從:Algocraft
軟體開發套件 (SDK)

C2000WARE C2000Ware for C2000 Microcontrollers

C2000Ware is a cohesive set of software and documentation created to minimize development time. It includes device-specific drivers, libraries, and peripheral examples.

  • Hardware design schematics, BOM, gerber files, and documentation for C2000 controlCARDS, Experimenter Kits, and LaunchPads.
  • (...)
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軟體開發套件 (SDK)

C2000WARE-DIGITALPOWER-SDK DigitalPower SDK for C2000 Real-time Controllers

    • DigitalPower SDK for C2000™ microcontrollers (MCU) is a cohesive set of software infrastructure, tools, and documentation designed to minimize C2000 MCU based digital power system development time targeted for various AC-DC, DC-DC and DC-AC power supply applications. The software includes (...)
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軟體開發套件 (SDK)

C2000WARE-MOTORCONTROL-SDK MotorControl software development kit (SDK) for C2000™ MCUs

MotorControl SDK for C2000™ microcontrollers (MCU) is a cohesive set of software infrastructure, tools, and documentation designed to minimize C2000 real-time controller based motor control system development time targeted for various three-phase motor control applications. The software (...)

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快速入門

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、配置、編譯器或偵錯程式

C2000_CLA_SAFETI_CQKIT_RV C2000™ and CLA safety compiler qualification kit (leverages compiler release validations)

The Safety Compiler Qualification Kit was developed to assist customers in qualifying their use of the TI ARM, C6000, C7000 or C2000/CLA C/C++ Compiler to functional safety standards such as IEC 61508 and ISO 26262.

The Safety Compiler Qualification Kit:

  • is free of charge for TI customers
  • does (...)
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IDE、配置、編譯器或偵錯程式

CCSTUDIO Code Composer Studio™ integrated development environment (IDE)

Code Composer Studio is an integrated development environment (IDE) for TI's microcontrollers and processors. It is comprised of a rich suite of tools used to build, debug, analyze and optimize embedded applications. Code Composer Studio is available across Windows®, Linux® and macOS® platforms.

(...)

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IDE、配置、編譯器或偵錯程式

EDGE-AI-STUDIO Edge AI Studio

Edge AI Studio is a collection of graphical and command line tools designed to accelerate edge AI development on TI processors, microcontrollers and radar sensors. Whether developing a proof of concept using a model from the TI Model Zoo or leveraging your own model, Edge AI Studio provides the (...)

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IDE、配置、編譯器或偵錯程式

EDGE-AI-STUDIO-MCU Edge AI Studio for Microcontrollers

Edge AI Studio is a collection of graphical and command line tools designed to accelerate edge AI development on TI processors, microcontrollers and radar sensors. Whether developing a proof of concept using a model from the TI Model Zoo or leveraging your own model, Edge AI Studio provides the (...)

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IDE、配置、編譯器或偵錯程式

SYSCONFIG Standalone desktop version of SysConfig

SysConfig is a configuration tool designed to simplify hardware and software configuration challenges to accelerate software development.

SysConfig is available as part of the Code Composer Studio™ integrated development environment as well as a standalone application. Additionally SysConfig (...)

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線上培訓

C28X-ACADEMY C28X-ACADEMY

The C28x Academy is a great resource for developers to learn about C28x-based C2000 real-time microcontrollers. The Academy delivers informational training modules as well as hands-on lab exercises that span a variety of topics.
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作業系統 (OS)

WHIS-3P-SAFERTOS — WITTENSTEIN SAFERTOS 預先認證的安全 RTOS

SAFERTOS® 是專為嵌入式處理器設計的獨特即時作業系統。經 TÜV SÜD 預先認證,符合 IEC 61508 SIL3 與 ISO 26262 ASILD 標準。SAFERTOS® 是由 WHIS 專家團隊專為安全而打造,適用於全球重要安全應用。WHIS 與德州儀器的合作已經超過十年。在此期間,WHIS 已將 SAFERTOS® 移植至各種 TI 處理器,支援所有熱門核心,並可依要求提供其他架構。SAFERTOS® 專為您的特定處理器/編譯器組合量身打造,隨附完整的原始程式碼與設計保證包,可完全一目了然整個設計生命週期。許多 WHIS 客戶開始使用 FreeRTOS (...)
軟體程式設計工具

PLEXIM-3P-PLECS-CODER — 具有 TI C2000 目標支援套件的 Plexim PLECS Coder

配備 TI C2000 目標支援套件的 PLECS Coder,簡化了電力電子和電力驅動應用的 C2000 微控制器編程程序。PLECS Coder 旨在讓嵌入式軟體開發容易取得並提升效率,彌補控制設計與硬體實作之間的差距。無論您是經驗豐富的開發人員,或是微控制器編程新手,PLECS Coder 都能以最快方式將控制電路圖轉換為有效的 MCU 程式碼。這包括以標準 PLECS 函式庫元件建置的使用者定義控制演算法本身之程式碼,以及感測、致動及通訊所需的各種晶片內建週邊設備和通訊協定介面配置。除了直接從 PLECS 對目標裝置進行編程外,還可以建置為範本 Coder Composer (...)
從:Plexim GmbH
模擬型號

TMS320F28P65x IBIS Model Files

SPRM887.ZIP (697 KB) - IBIS Model
設計工具

CDNS-3P-MIDAS-SAFETY — MIDAS Safety Platform and Report Creator

The Midas Safety Platform provides early phase exploration of functional safety architectures and leverages native chip design data to perform accurate safety analysis efficiently. The platform is a unified solution available across Cadence products, and with its modular architecture, it supports (...)
封裝 針腳 CAD 符號、佔位空間與 3D 模型
HLQFP (PTP) 176 Ultra Librarian
HTQFP (PZP) 100 Ultra Librarian

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