MX57028SF3 Overview
The MX57028SF3 is a high-performance microcontroller unit designed for complex embedded applications requiring robust processing power and advanced peripheral integration. Featuring a 32-bit core architecture, it supports efficient real-time control and signal processing tasks. This device offers multiple communication interfaces, extensive memory resources, and a wide operating voltage range, making it ideal for industrial automation, motor control, and power management systems. Its reliability and flexibility ensure seamless integration into demanding environments. For detailed technical support and product updates, visit IC Manufacturer.
MX57028SF3 Technical Specifications
| Parameter | Specification |
|---|---|
| Core | 32-bit ARM Cortex-M4F |
| Operating Frequency | Up to 120 MHz |
| Flash Memory | 512 KB |
| SRAM | 128 KB |
| Operating Voltage | 2.7 V to 3.6 V |
| Communication Interfaces | CAN, UART, SPI, I2C |
| Timers | Multiple 16-bit and 32-bit timers |
| Package | LQFP64 |
| Temperature Range | -40??C to +85??C |
MX57028SF3 Key Features
- ARM Cortex-M4F Core: Provides high computational performance with integrated floating-point unit, enabling efficient execution of complex algorithms and digital signal processing.
- Rich Peripheral Set: Includes multiple UART, SPI, I2C, and CAN interfaces to support versatile communication needs in industrial and automotive environments.
- Enhanced Memory Architecture: Combines 512 KB flash and 128 KB SRAM to support large codebases and data buffers, reducing external memory dependency.
- Flexible Power Supply: Operates across a wide voltage range ensuring stable performance in varying power conditions, improving system reliability.
MX57028SF3 Advantages vs Typical Alternatives
This microcontroller provides superior processing speed and memory capacity compared to typical alternatives in its class. Its integrated floating-point unit enhances numerical accuracy for control and signal processing tasks. The multiple communication interfaces and wide operating voltage range offer better system integration and robustness, making it suitable for demanding industrial applications requiring reliability and precision.
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Typical Applications
- Industrial motor control systems requiring precise real-time processing and multi-interface communication for sensor integration and feedback control.
- Embedded automation devices that benefit from high-speed computation and flexible connectivity to optimize process control.
- Power management units that need reliable voltage operation and extensive memory for firmware complexity.
- Automotive sensor hubs leveraging CAN communication and robust temperature range to ensure consistent performance in harsh environments.
MX57028SF3 Brand Info
This product is part of the MX57000 series, known for its high-performance microcontrollers tailored for embedded industrial and automotive applications. Designed and manufactured with strict quality controls, the MX57028SF3 delivers reliable and efficient operation. The brand emphasizes scalable solutions, combining advanced processing cores with comprehensive peripheral sets to meet modern system design challenges.
FAQ
What core architecture does the MX57028SF3 use and why is it important?
The device is built around a 32-bit ARM Cortex-M4F core, which includes a floating-point unit. This architecture enables efficient handling of complex mathematical operations and signal processing tasks, essential for real-time embedded applications requiring both speed and precision.
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What communication interfaces are supported by this microcontroller?
This product supports multiple communication protocols including CAN, UART, SPI, and I2C. These interfaces enable flexible connectivity options for various industrial and automotive networking requirements, allowing seamless integration with sensors, actuators, and other system components.
What is the memory configuration of this MCU?
The microcontroller features 512 KB of internal flash memory and 128 KB of SRAM. This combination supports large firmware sizes and data storage needs, reducing the necessity for external memory components and simplifying system design.



