
Allicdata Part #: | LX6431BILP-ND |
Manufacturer Part#: |
LX6431BILP |
Price: | $ 0.00 |
Product Category: | Integrated Circuits (ICs) |
Manufacturer: | Microsemi Corporation |
Short Description: | IC VREF SHUNT ADJ TO92-3 |
More Detail: | Shunt Voltage Reference IC 36V ±0.4% 100mA TO-92-3 |
DataSheet: | ![]() |
Quantity: | 1000 |
1 +: | 0.00000 |
Noise - 0.1Hz to 10Hz: | -- |
Base Part Number: | LX6431 |
Supplier Device Package: | TO-92-3 |
Package / Case: | TO-226-3, TO-92-3 (TO-226AA) (Formed Leads) |
Mounting Type: | Through Hole |
Operating Temperature: | -40°C ~ 85°C (TA) |
Current - Cathode: | 600µA |
Current - Supply: | -- |
Voltage - Input: | -- |
Noise - 10Hz to 10kHz: | -- |
Series: | -- |
Temperature Coefficient: | -- |
Tolerance: | ±0.4% |
Current - Output: | 100mA |
Voltage - Output (Max): | 36V |
Voltage - Output (Min/Fixed): | 2.5V |
Output Type: | Adjustable |
Reference Type: | Shunt |
Part Status: | Obsolete |
Packaging: | Tape & Box (TB) |
Due to market price fluctuations, if you need to purchase or consult the price. You can contact us or emial to us: sales@allicdata.com
LX6431BILP voltage references are specialized PMIC devices developed to provide a precisely-controlled voltage output. Voltage references are often used to provide a known output voltage to a sensing circuit, allowing the accurate detection of input voltages. For example, if an automotive system needs to measure the voltage level of a 12V battery, the LX6431BILP voltage reference can provide an exact 12V output for use in the sensing circuit.
The main advantages of using a voltage reference such as the LX6431BILP are accuracy and stability. A voltage reference will provide a precise, stable output voltage regardless of any variation in the input voltage or environmental conditions. The accurate nature of a voltage reference also allows for more precise control and regulation of voltages throughout the circuit.
The LX6431BILP voltage reference is based on a low-noise CMOS bandgap reference. This circuit uses a small, temperature insensitive semiconductor junction to accurately generate a fixed output voltage, regardless of any variations in input voltage or environmental conditions. The reference voltage is generated by the internal bandgap circuit and then sent to an internal low-dropout linear regulator that maintains an accurate, constant voltage output.
The LX6431BILP voltage references are designed for automotive and industrial applications where accuracy and stability are critical. The device is designed to withstand high temperatures and is resistant to shock and vibration, making it well suited for demanding environments. The device is AEC-Q100 certified, guaranteeing its compatibility with automotive processes and reliability in applications such as motor control units (MCUs), electric power steering (EPS), airbags, and lighting controls.
The LX6431BILP is a versatile solution that can be easily implemented in a wide range of applications. Its input voltage range can be adjusted from 2.5V to 5.5V, allowing it to meet a variety of power supply needs. The output voltage can be set to 2.486V with a ±0.02 output accuracy. The device also has a low quiescent current of only 4.5µA and an excellent line/load regulation of ≤0.5%.
In addition, the LX6431BILP is designed to operate over an extended temperature range of -40°C to 125°C. The device is provided in a miniature SOT-23-5 package, allowing for easy assembly and board space savings. The LX6431BILP is backed by Linear Technology Corporation’s standard 5-year warranty.
Overall, the LX6431BILP voltage reference is a reliable, versatile, and temperature-compensated device designed to ensure a precise and stable output voltage for automotive and industrial applications. The device is designed to withstand high temperatures, has low power consumption and a small footprint, making it an ideal choice for automotive and industrial voltage reference applications.
The specific data is subject to PDF, and the above content is for reference
Part Number | Manufacturer | Price | Quantity | Description |
---|
LX6431ACLP | Microsemi Co... | 0.0 $ | 1000 | IC VREF SHUNT ADJ TO92-3S... |
PN-F100/LX64 | Lattice Semi... | 579.95 $ | 1000 | ADAPTER 100FBGA ISPGDX2-6... |
LX64EV-5F100C | Lattice Semi... | -- | 1000 | IC FPGA 64 I/O 100FBGA |
LX64EV-5FN100C | Lattice Semi... | 0.0 $ | 1000 | IC SWITCH DIGITAL 100FBGA... |
LX6431IDM | Microsemi Co... | 0.0 $ | 1000 | IC VREF SHUNT ADJ 8SOICSh... |
LX64V-5FN100C | Lattice Semi... | 0.0 $ | 1000 | IC SWITCH DIGITAL 100FBGA... |
LX6431AIDM | Microsemi Co... | 0.0 $ | 1000 | IC VREF SHUNT ADJ 8SOICSh... |
LX64EV-3F100C | Lattice Semi... | 0.0 $ | 1000 | IC FPGA 64 I/O 100FBGA |
LX6431BILP | Microsemi Co... | 0.0 $ | 1000 | IC VREF SHUNT ADJ TO92-3S... |
LX64V-5F100C | Lattice Semi... | -- | 1000 | IC FPGA 64 I/O 100FBGA |
LX64EV-5FN100I | Lattice Semi... | 0.0 $ | 1000 | IC SWITCH DIGITAL 100FBGA... |
LX64V-3FN100C | Lattice Semi... | 0.0 $ | 1000 | IC SWITCH DIGITAL 100FBGA... |
LX6431CDM | Microsemi Co... | 0.0 $ | 1000 | IC VREF SHUNT ADJ 8SOICSh... |
LX6431BCDM | Microsemi Co... | 0.0 $ | 1000 | IC VREF SHUNT ADJ 8SOICSh... |
LX64EV-5F100I | Lattice Semi... | 0.0 $ | 1000 | IC FPGA 64 I/O 100FBGA |
LX6431CLP | Microsemi Co... | 0.0 $ | 1000 | IC VREF SHUNT ADJ TO92-3S... |
LX6431AILP | Microsemi Co... | 0.0 $ | 1000 | IC VREF SHUNT ADJ TO92-3S... |
LX64V-3F100C | Lattice Semi... | 0.0 $ | 1000 | IC FPGA 64 I/O 100FBGA |
LX6431ACDM | Microsemi Co... | -- | 1000 | IC VREF SHUNT ADJ 8SOICSh... |
LX6431ILP | Microsemi Co... | 0.0 $ | 1000 | IC VREF SHUNT ADJ TO92-3S... |
LX6431BCLP | Microsemi Co... | 0.0 $ | 1000 | IC VREF SHUNT ADJ TO92-3S... |
LX64EV-3FN100C | Lattice Semi... | 0.0 $ | 1000 | IC SWITCH DIGITAL 100FBGA... |
LX6431BIDM | Microsemi Co... | 0.0 $ | 1000 | IC VREF SHUNT ADJ 8SOICSh... |
IC VREF SHUNT 3V SC70Shunt Voltage Refer...

IC VREF SERIES 5V 8SOICSeries Voltage Re...

IC VREF SHUNT 1.235V 8SOICShunt Voltage ...

IC VREF SHUNT 2.5V TO46-2Shunt Voltage R...

IC VREF SERIES 2.5V 20CLCCSeries Voltage...

IC VREF SERIES 3V 14CDIPSeries Voltage R...
