Manufacturer Part Number
LMV431BIMF/NOPB
Manufacturer
Texas Instruments
Introduction
The LMV431BIMF/NOPB is a precision shunt voltage reference from Texas Instruments. It provides an adjustable output voltage ranging from 1.24V to 30V, making it suitable for a variety of power management applications. With a tight voltage tolerance of ±0.5% and a wide operating temperature range of -40°C to 85°C, this device offers excellent stability and reliability.
Product Features and Performance
Adjustable output voltage from 1.24V to 30V
Tight voltage tolerance of ±0.5%
Wide operating temperature range of -40°C to 85°C
Low quiescent current of 80 μA
Surface-mount TO-236-3, SC-59, SOT-23-3 package
Product Advantages
Broad voltage adjustment range for versatile applications
Excellent voltage stability for precise power management
Wide temperature tolerance for reliable operation in diverse environments
Compact surface-mount package for space-constrained designs
Key Reasons to Choose This Product
Exceptional performance and reliability for critical power management applications
Flexible voltage adjustment to meet specific system requirements
Compact and easy-to-integrate package for efficient design
Trusted Texas Instruments quality and support
Quality and Safety Features
Robust construction and rigorous testing for high reliability
Compliance with industry safety standards for safe operation
Compatibility
The LMV431BIMF/NOPB is compatible with a wide range of electronic systems and devices that require a precise and adjustable voltage reference.
Application Areas
Power supplies
Voltage regulation
Precision instrumentation
Analog and mixed-signal circuits
Industrial and consumer electronics
Product Lifecycle
The LMV431BIMF/NOPB is an active product, and our website's sales team continues to manufacture and support this model. There are no immediate plans for discontinuation. Customers are advised to check our website's sales team or contact the sales team for the latest information on availability and potential alternative or equivalent models.