The MAX6337US16D3+ is a high-precision, low-power microprocessor (µP) supervisory circuit designed by Analog Devices Inc. to monitor power supplies in digital systems. It provides a significant layer of protection to ensure the proper operation of the system by asserting a reset signal whenever the VCC supply voltage drops below a preset threshold. This product is essential for systems that require a high degree of reliability and operational stability.
Key Features
- Precision Voltage Monitoring: The device is engineered to monitor 3.3V, 5V, and adjustable voltage supplies with a tight accuracy of ±1.5% over temperature, which is critical for sensitive electronic applications.
- Low Power Consumption: It is optimized for low-power operations, making it suitable for battery-powered and portable devices.
- Manual Reset Input: A manual reset input is provided, allowing for a system reset to be triggered with an external pushbutton or logic signal.
- Reset Timeout: The MAX6337US16D3+ features an internally fixed reset timeout period, ensuring that the system has sufficient time to stabilize before resuming operation.
- Temperature Range: The device operates effectively across a wide temperature range, making it versatile for various environments.
- Compact Package: It comes in a small, surface-mount SOT-143 package, saving valuable board space in compact system designs.
Applications
The MAX6337US16D3+ is ideal for use in a variety of applications where reliable system operation is paramount. These include:
- Computers and Servers
- Embedded Systems
- Portable/Battery-Powered Devices
- Data Storage Systems
- Industrial Controllers
Product Specifications
| Parameter |
Value |
| Manufacturer |
Analog Devices Inc. |
| Part Number |
MAX6337US16D3+ |
| Supply Voltage (VCC) |
1.2V to 5.5V |
| Package/Case |
SOT-143 |
| Operating Temperature |
-40°C to +125°C |
In conclusion, the MAX6337US16D3+ from Analog Devices Inc. stands out for its precision, reliability, and versatility, making it an excellent choice for safeguarding critical digital systems.