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TL431
+Nomenclature2.5V~36V 2% 37V 100MA ADJUSTABLE
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FabricantShenzhen Cisco micro Semiconductor Co., Ltd.
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Pièce fabricant #TL431
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En stock26899
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Spécifications
| Attribut | Valeur |
| Part Status | Active |
| Reference Type | Shunt |
| Output Type | Adjustable |
| Voltage - Output (Min/Fixed) | 2.5V |
| Voltage - Output (Max) | 36 V |
| Current - Output | 100 mA |
| Tolerance | ±0.5% |
| Temperature Coefficient | 50ppm/°C Typical |
| Current - Supply | 1mA |
| Operating Temperature | -40°C ~ 125°C (TJ) |
Présentation
Description
Key features of the TL431 include its low temperature coefficient, which ensures stable operation across a range of temperatures, and its ability to provide a stable reference voltage for various applications, such as switching power supplies, battery chargers, and voltage monitoring systems. Its typical applications involve acting as a precision low-voltage shunt regulator, an adjustable reference source, or part of an error amplifier in feedback loops.
The TL431 is favored for its flexibility, reliability, and precision, making it a popular choice in many consumer electronics, industrial applications, and power management systems.
Equivalent
Features
1. Adjustable Output: It has an adjustable output voltage range from 2.5V to 36V, allowing flexibility in various applications.
2. Precision: Offers high precision with reference voltage accuracy options of 0.5%, 1%, and 2%, making it suitable for precise voltage regulation tasks.
3. Output Current: Capable of sinking current from 1 mA to 100 mA, providing a wide range for current draw in different circuits.
4. Temperature Range: Operates efficiently over a wide temperature range, typically from -40°C to 125°C, ensuring reliability in diverse environmental conditions.
5. Low Dynamic Output Impedance: Features a low dynamic output impedance of about 0.2Ω, which aids in maintaining stable output under varying load conditions.
6. Package Options: Available in several package types, including TO-92, SOT-23, and SOIC, allowing for flexibility in PCB design and space constraints.
These features make the TL431 suitable for use in power supplies, voltage monitoring, and reference voltage generation in a variety of electronic applications.
Pinout
1. Cathode (Pin 1): This is the anode or negative terminal of the internal zener diode. It is typically connected to ground in application circuits.
2. Anode (Pin 2): This is the anode or positive terminal, which is connected to the load or a positive supply voltage in applications.
3. Reference (Pin 3): This pin is used to set the reference voltage. By connecting resistors between the reference, anode, and cathode, the output voltage can be adjusted.
The TL431 operates by acting as a shunt regulator, where it maintains a stable output voltage over a wide range of input voltages. It is commonly used in power supply circuits for voltage regulation due to its precision and adjustability.
Manufacturer
In addition to Texas Instruments, several other companies also produce compatible versions of the TL431. These include ON Semiconductor, STMicroelectronics, Fairchild Semiconductor (now part of ON Semiconductor), and NXP Semiconductors, among others. These companies are all significant players in the global semiconductor industry, producing a wide array of electronic components for various applications.
Overall, the TL431 is a widely used component, and its manufacturing is supported by multiple reputable semiconductor companies, ensuring its availability and reliability for diverse electronic designs.
Application
1. Voltage Reference: It provides a stable reference voltage for analog-to-digital converters (ADCs) and digital-to-analog converters (DACs).
2. Voltage Regulation: Used as a shunt regulator to maintain a constant output voltage in power supplies and battery chargers.
3. Switching Power Supplies: Offers feedback control in SMPS for voltage regulation.
4. Overvoltage Protection: Helps in protecting circuits by limiting voltage levels.
5. Comparator: Functions as a comparator in various control systems.
Its precision and adjustable voltage make it essential in designing efficient and reliable electronic circuits.