M306N4MCT-137FPUSQ Allicdata Electronics
Allicdata Part #:

M306N4MCT-137FPUSQ-ND

Manufacturer Part#:

M306N4MCT-137FPUSQ

Price: $ 0.00
Product Category:

Integrated Circuits (ICs)

Manufacturer: Renesas Electronics America
Short Description: IC MCU 16BIT
More Detail: M16C/60 M16C™ M16C/60/6N4 Microcontroller IC 16-Bi...
DataSheet: M306N4MCT-137FPUSQ datasheetM306N4MCT-137FPUSQ Datasheet/PDF
Quantity: 1000
1 +: 0.00000
Stock 1000Can Ship Immediately
$ 0
Specifications
Series: M16C™ M16C/60/6N4
Part Status: Obsolete
Core Processor: M16C/60
Core Size: 16-Bit
Speed: 20MHz
Connectivity: CANbus, I²C, IEBus, SIO, UART/USART
Peripherals: DMA, WDT
Number of I/O: 87
Program Memory Size: 128KB (128K x 8)
Program Memory Type: Mask ROM
EEPROM Size: --
RAM Size: 5K x 8
Voltage - Supply (Vcc/Vdd): 4.2 V ~ 5.5 V
Data Converters: A/D 26x10b; D/A 2x8b
Oscillator Type: Internal
Operating Temperature: -40°C ~ 85°C (TA)
Description

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Introduction

M306N4MCT-137FPUSQ is an embedded microcontroller designed for devices with high performance computing requirements. It\'s also a high-end processor that utilizes a single core ARM926EJ-S™ core with up to 256KB of on-chip Flash memory, 16KB RAM, and 4KB of Boot ROM. The embedded microcontroller is manufactured with nano-technology for advanced performance in applications where miniaturization and small form factor are paramount. This microcontroller can be used for applications where mission-critical, real-time performance and energy efficiency are important.

Applications

M306N4MCT-137FPUSQ microcontroller is suitable for a wide range of applications such as military and aerospace, industrial automation and avionics systems. For military, the microcontroller offers enhanced features such as high-speed and energy efficiency that would be necessary for battle field operations. For industrial automation, the processor provides advanced features such as high speed Interrupt handling, direct memory access (DMA) and peripheral interfaces that are vital for automation tasks. Finally, the microcontroller can be used in avionics systems where precision timing, low latency, and high analytical performance is essential.

Working Principle

The M306N4MCT-137FPUSQ microcontroller implements the ARM926EJ-S™ core. The processor utilizes the RISC instruction set for powerful instructions to perform complex arithmetic operations, data transfers, and memory access operations. The ARM926EJ-S™ core has several functional units that are designed to optimize execution of specific instructions from the RISC instruction set. Each of the functional units is connected to each other via an internal bus system. The ARM926EJ-S™ core of the M306N4MCT-137FPUSQ processor is optimized for low power consumption and high performance. Features such as a Harvard architecture, branch prediction, and Harvard caching help in conserving power while providing high-performance Asynchronous Memory Interface (AMI) allows direct memory access (DMA) to reduce the load on the core. The processor also includes a Dual-input multiplexer which helps in switching between the two main buses to which the processor is connected. The microcontroller\'s integrated peripherals including general-purpose inputs and outputs (GPIO), analog-to-digital converters (ADC/DAC), timers, serial peripheral interface (SPI), and interrupt controllers. These peripherals provide support for real-time control applications, digital signal processing, and communications. Additionally, the embedded microcontroller has advanced features, such as Enhanced Serial Peripheral Interface (eSPI) for improved transmission speeds, and the dynamic power management can be utilized to maintain the power efficiency during tasks.

Conclusion

The M306N4MCT-137FPUSQ embedded microcontroller is designed for applications requiring demanding performance and power efficiency. Its single-core ARM926EJ-S™ core and integrated peripherals are optimized for various applications such as military and aerospace, industrial automation, and avionics systems. The RISC instruction set, along with a Harvard architecture, branch prediction, Harvard caching and an Asynchronous Memory Interface (AMI) provide a powerful base for the processor. Additionally, the processor\'s power management features ensures that the system operates efficiently.

The specific data is subject to PDF, and the above content is for reference

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