PTVS28VP1UP - NXP Semiconductor's Robust Transient Voltage Suppressor
The PTVS28VP1UP is a state-of-the-art transient voltage suppressor (TVS) diode designed by NXP Semiconductors, a leader in the electronic components industry. This component is engineered to provide high surge current protection in a compact package, making it an ideal solution for safeguarding sensitive electronics against voltage spikes and surges.
Key Features
- High Surge Protection: The PTVS28VP1UP can handle surge currents up to 600W (10/1000µs) and is designed to clamp transient overvoltages instantly, ensuring the protection of the downstream circuitry.
- Low Clamping Voltage: With a low clamping voltage, this TVS diode provides enhanced protection for sensitive components by limiting the voltage exposure during transient events.
- Uni-directional: As a uni-directional TVS diode, the PTVS28VP1UP is optimized for DC applications, providing a targeted approach to surge protection.
- Compact Design: The small footprint of the SOD-128 package allows for easy integration into space-constrained designs, without compromising on performance.
- High Reliability: Manufactured by NXP, this device is built with high-quality materials and rigorous testing, ensuring reliable operation under extreme conditions.
Applications
The PTVS28VP1UP is versatile and can be used in a variety of applications where transient voltage protection is critical. Common applications include:
- Automotive systems
- Power supply units
- Data communication systems
- Portable devices
- Industrial equipment
Technical Specifications
| Parameter |
Value |
| Stand-off Voltage |
28 V |
| Maximum Peak Pulse Current (Ipp) |
600 W (10/1000µs) |
| Package Type |
SOD-128 |
| Mounting Type |
Surface Mount |
With its robust design and high surge capability, the PTVS28VP1UP is an excellent choice for designers looking to enhance the durability and longevity of their electronic products. Whether in automotive, industrial, or consumer electronics, NXP's TVS diode stands as a symbol of protection against unpredictable and potentially damaging voltage transients.