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AUIRFR024NTRL
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AUIRFR024NTRL Description
AUIRFR024NTRL Description
The AUIRFR024NTRL from Infineon Technologies is an N-channel HEXFET® MOSFET designed for high-efficiency power switching applications. With a 55V drain-to-source voltage (Vdss) and 17A continuous drain current (Id), this surface-mount device delivers robust performance in compact designs. Its low on-resistance (Rds(on)) of 75mΩ at 10A, 10V ensures minimal conduction losses, while a gate charge (Qg) of 20nC at 10V enables fast switching, making it ideal for high-frequency applications. The MOSFET operates with a threshold voltage (Vgs(th)) of up to 4V at 250µA, providing reliable turn-on characteristics. Packaged in TO-252AA (DPAK) and supplied in tape-and-reel (TR) format, it suits automated assembly processes.
AUIRFR024NTRL Features
- Low Rds(on): 75mΩ at 10A, 10V reduces power dissipation and improves efficiency.
- Fast Switching: 20nC gate charge (Qg) minimizes switching losses in high-frequency circuits.
- High Current Handling: 17A continuous drain current (Id) at 25°C (case temperature).
- Robust Thermal Performance: 45W power dissipation (Tc) ensures reliability under load.
- Surface-Mount Design: TO-252AA (DPAK) package optimizes PCB space and thermal management.
- Compliance: ROHS3, REACH Unaffected, and ECCN EAR99 certified for global use.
- Obsolete Status: Verify availability for new designs, though suitable for legacy or maintenance applications.
AUIRFR024NTRL Applications
This MOSFET excels in:
- DC-DC Converters: Efficient power conversion in step-down/step-up topologies.
- Motor Control: Drives brushed/brushless motors in automotive or industrial systems.
- Power Supplies: Secondary-side synchronous rectification in SMPS designs.
- Load Switching: High-side/low-side switching in battery management systems (BMS).
- LED Drivers: PWM dimming and current regulation for high-brightness lighting.
Conclusion of AUIRFR024NTRL
The AUIRFR024NTRL combines Infineon’s HEXFET® technology with low Rds(on) and fast switching, making it a strong candidate for power-efficient designs. While marked obsolete, its performance in high-current, medium-voltage applications remains relevant for legacy systems or replacements. Engineers should evaluate alternatives for new designs but can leverage its thermal resilience and compact packaging for space-constrained, high-reliability scenarios.



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