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GQ0A032871FAT
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GQ0A032871FAT Description
GQ0A032871FAT Description
The GQ0A032871FAT from TT Electronics/IRC is a high-precision thin-film resistor network designed for demanding electronic applications. This 20-pin QSOP gull-wing SMD component features a 2.87kΩ resistance with a tight 1% tolerance and a ±25ppm/°C temperature coefficient, ensuring stable performance across varying thermal conditions. Its 1W power rating and isolated ceramic substrate enhance durability and heat dissipation, making it suitable for high-reliability environments. Packaged in a tube for automated assembly, this resistor network is ideal for compact, high-density PCB designs.
GQ0A032871FAT Features
- Precision Resistance: 2.87kΩ ±1% tolerance for accurate signal conditioning.
- Low TCR: ±25ppm/°C ensures minimal resistance drift under thermal stress.
- High Power Handling: 1W rating supports robust performance in power-sensitive circuits.
- Ceramic Isolation: Enhances thermal management and electrical isolation.
- QSOP Gull-Wing SMD: 20-pin surface-mount design for space-constrained applications.
- Non-Compliant to EU RoHS: Suitable for legacy or exempted industrial systems.
GQ0A032871FAT Applications
This resistor network excels in:
- Precision Analog Circuits: Voltage dividers, feedback networks, and sensor interfaces.
- Industrial Control Systems: PLCs, motor drives, and instrumentation requiring stable resistance.
- Telecommunications: RF modules and signal processing where low TCR is critical.
- Medical Electronics: Diagnostic equipment demanding high reliability and accuracy.
- Automotive (Non-Automotive Rated): Prototyping or non-safety-critical automotive subsystems.
Conclusion of GQ0A032871FAT
The GQ0A032871FAT stands out for its precision, thermal stability, and compact form factor, making it a superior choice for high-performance electronics. While not compliant with EU RoHS or PPAP, its thin-film technology and ceramic isolation offer unmatched reliability in industrial and telecom applications. Engineers seeking a high-tolerance, low-drift resistor network will find this model ideal for optimizing circuit performance in space-constrained, thermally dynamic environments.



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