ASMY-CWG0-NX7E2 Overview
The ASMY-CWG0-NX7E2 is a high-performance semiconductor device designed to meet demanding industrial requirements. Engineered for optimal power efficiency and robust operation, this component offers advanced integration and reliable performance in compact form factors. Its architecture supports versatile applications in embedded systems, providing enhanced signal processing capabilities and low power consumption. Suitable for complex control environments, the device ensures precise operation under varying temperature and voltage conditions. For sourcing and detailed technical insights, visit the IC Manufacturer official resource.
ASMY-CWG0-NX7E2 Technical Specifications
Parameter | Specification |
---|---|
Core Architecture | 32-bit RISC-based MCU |
Operating Voltage | 1.8 V to 3.6 V |
Clock Frequency | Up to 120 MHz |
Flash Memory | 512 KB Embedded Flash |
RAM | 128 KB SRAM |
Temperature Range | -40??C to +85??C Industrial Grade |
Package Type | 64-pin LQFP (Low-profile Quad Flat Package) |
Communication Interfaces | UART, SPI, I2C, CAN |
Power Consumption | Typical 50 mA at max frequency |
ASMY-CWG0-NX7E2 Key Features
- High-frequency core performance: Enables fast processing speeds up to 120 MHz, benefiting real-time control and complex algorithm execution.
- Low power operation: Designed for minimal energy consumption, which extends device lifetime and reduces thermal stress in industrial systems.
- Robust industrial temperature rating: Ensures reliable operation in harsh environments from -40??C to +85??C, critical for outdoor and embedded applications.
- Multiple communication protocols: Supports UART, SPI, I2C, and CAN interfaces, simplifying integration into existing industrial networks.
ASMY-CWG0-NX7E2 Advantages vs Typical Alternatives
This device offers superior integration and lower power consumption compared to many standard microcontrollers. Its extended industrial temperature range and multiple communication interfaces provide enhanced reliability and flexibility, making it ideal for complex industrial control environments where precision and durability are paramount.
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Typical Applications
- Embedded control units in industrial automation systems requiring fast processing and reliable operation under extreme temperatures.
- Communication gateways that demand versatile interface support such as CAN and UART for seamless data exchange.
- Power management modules where efficient energy consumption directly impacts system longevity and thermal performance.
- Signal processing in sensor networks, leveraging the high-speed core and memory resources for real-time data analysis.
ASMY-CWG0-NX7E2 Brand Info
Produced by a leading semiconductor manufacturer, this product line focuses on industrial-grade MCUs delivering high performance and reliability. The ASMY-CWG0-NX7E2 exemplifies the brand??s commitment to quality and innovation, offering engineers and sourcing specialists a dependable component for complex system designs. The brand??s extensive support and documentation facilitate integration and long-term deployment in critical industrial applications.
FAQ
What is the maximum operating frequency of this microcontroller?
The device supports a maximum clock frequency of up to 120 MHz, providing the capability to handle demanding real-time processing tasks efficiently.
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Which communication interfaces are supported?
It includes standard industrial communication protocols such as UART, SPI, I2C, and CAN, enabling flexible connectivity options for various embedded applications.
What temperature range does the device support?
Designed for industrial use, it operates reliably over a temperature range of -40??C to +85??C, suitable for harsh environmental conditions.
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How much embedded memory is available on this component?
The microcontroller features 512 KB of embedded flash memory and 128 KB of SRAM, providing ample storage for program code and data buffering.
Is this product suitable for low-power applications?
Yes, the device is optimized for low power consumption, typically drawing around 50 mA at maximum frequency, which helps extend battery life and reduce heat dissipation in embedded systems.