R5F212BCSNLG#U0 vs MB91F585MGPMC-GTE1

Part Number
R5F212BCSNLG#U0
MB91F585MGPMC-GTE1
Category Embedded - Microcontrollers Embedded - Microcontrollers
Manufacturer Renesas Electronics America Inc Cypress Semiconductor Corp
Description IC MCU 16BIT 128KB FLASH 64TFLGA IC MCU 32BIT 576KB FLASH 100LQFP
Package Tray Tray
Series R8C/2x/2B FR MB91580
Operating Temperature -20°C ~ 85°C (TA) -40°C ~ 125°C (TA)
Mounting Type Surface Mount Surface Mount
Package / Case 64-TFLGA 100-LQFP
Supplier Device Package 64-TFLGA (6x6) 100-LQFP (14x14)
Voltage - Supply (Vcc/Vdd) 2.2V ~ 5.5V 3.7V ~ 5.5V
Speed 20MHz 128MHz
Number of I/O 55 -
EEPROM Size - 64K x 8
Core Processor R8C FR81S
RAM Size 7.5K x 8 56K x 8
Core Size 16-Bit 32-Bit
Connectivity I²C, LINbus, SIO, SSU, UART/USART CANbus, CSIO, I²C, LINbus, SPI, UART/USART
Peripherals POR, PWM, Voltage Detect, WDT DMA, LVD, POR, PWM, WDT
Program Memory Size 128KB (128K x 8) 576KB (576K x 8)
Program Memory Type FLASH FLASH
Data Converters A/D 12x10b; D/A 2x8b A/D 23x12b; D/A 1x10b
Oscillator Type Internal External
  • 1. What is an embedded microcontroller?

    An embedded microcontroller is a device that integrates an entire computer system into a single chip. ‌ It usually includes functional modules such as a central processing unit, memory, input and output ports, and timers, all of which are integrated on a single chip. This design enables embedded microcontrollers to perform specific tasks with high flexibility and efficiency.
    The main features of embedded microcontrollers include:
    Highly integrated: multiple functions such as CPU, memory, and I/O interface are integrated on a single chip, reducing the number of components and system volume.
    Strong specialization: Optimized for specific application scenarios, providing a specific combination of processing power, memory, and input and output interfaces.
    Efficient and reliable: The integrated design makes the system more stable and reliable, reducing the connection of external components and signal interference.
    High flexibility: According to different application requirements, embedded microcontrollers can have multiple derivative products, each with the same processor core, but different memory and peripheral configurations to adapt to different application scenarios.

  • 2. Is Arduino an embedded microcontroller?

    Arduino is an embedded microcontroller platform based on open source hardware and software. ‌ It contains a microcontroller (MCU) and related modules that can interact with the external environment through hardware and software. The core board of Arduino consists of a microcontroller and related modules, with basic input and output connections and multiple communication interfaces, including serial ports, SPI and TWI, etc., which can communicate and transfer data with other devices.
    Features of Arduino include:
    Development environment: Arduino comes with a software development environment that can be programmed in C and C++ languages.
    Libraries and functions: It has a rich hardware library and functions for rapid development.
    Low cost: It is suitable for hardware development such as sensors, simple robots, thermostats and motion detectors, with low cost and simple operation.
    Wide application: It is commonly used in projects such as IoT products, automation control and robots.
    Compared with other microcontroller platforms, the advantage of Arduino is its simple and easy-to-use hardware and software tools, which enable electronic enthusiasts and general users to quickly realize various application projects.

  • 3. What is the difference between Arduino and Embedded C?

    The main differences between Arduino and Embedded C are their application scenarios, development difficulty and hardware design. Arduino is more suitable for rapid prototyping and teaching, while Embedded C is suitable for scenarios that require high performance and professional applications.
    Arduino is an open source hardware platform mainly used for rapid prototyping and teaching. It uses high-level programming languages ​​such as C++ and provides an easy-to-use development environment, allowing beginners to quickly get started and implement projects. In contrast, embedded C is often used in high-performance and professional application scenarios, such as industrial control, automotive electronics and other fields. Embedded C programming usually involves low-level hardware knowledge and more complex programming skills. The language used may be C or C++, but memory and hardware resources need to be managed manually.

  • 4. What is the difference between an embedded MCU and a PLC MCU?

    The main difference between an embedded MCU and a PLC MCU is that their application fields, system architectures, and programming methods are different.
    Although both embedded MCUs and PLC MCUs involve MCU technology, their application fields are significantly different. Embedded MCUs are mainly used in non-industrial fields such as consumer electronics, automobiles, aerospace, etc. They emphasize high specificity and flexibility and can be customized according to specific needs. PLC MCUs are mainly used in industrial automation control fields, such as electricity, petroleum, chemical industry, machinery manufacturing, etc. The original design intention is to adapt to complex industrial environments and have strong stability and reliability.
    In terms of system architecture, embedded MCUs usually have fixed hardware and software configurations, are designed and developed for specific applications, and hardware and software are tightly integrated to form a complete system. PLC MCUs are based on a modular architecture, and different modules can be added to achieve different functions. Both hardware and software are standardized, which is convenient for users to select and configure.
    In terms of programming language, embedded MCUs are usually programmed in high-level programming languages ​​such as C and C++. These programming languages ​​have powerful functions and flexibility and can meet complex programming needs. PLC MCUs are mainly programmed in ladder diagram language. This graphical programming method is simple and easy to understand, which is convenient for users to get started quickly. In addition, it also supports some text programming languages, such as instruction lists and structured text.

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