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GS8B014641FDT
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GS8B014641FDT Description
GS8B014641FDT Description
The GS8B014641FDT from TT Electronics/IRC is a high-performance ceramic resistor network designed for precision applications. Packaged in a 16-pin narrow SOIC (SOIC-C series), it features 15 bussed resistors with a 4.64KΩ resistance value and a tight ±1% absolute tolerance, ensuring consistent performance. The thin-film technology delivers excellent stability with a ±100ppm/°C temperature coefficient, making it suitable for environments with fluctuating thermal conditions. Rated for 0.05W (1/20) per resistor and 0.8W total power dissipation, it operates reliably within a 70°C to 125°C derated power range, with a maximum operating temperature of 125°C. Its 100V maximum voltage rating and gull-wing termination facilitate robust surface-mount integration.
GS8B014641FDT Features
- Ceramic substrate for enhanced thermal and mechanical stability.
- Bussed network topology simplifies circuit design by connecting multiple resistors to a common node.
- 1% tolerance and ±0.5% ratio tolerance for precision voltage division and signal conditioning.
- Thin-film technology ensures low noise and high accuracy.
- SOIC package (9.91mm x 5.99mm x 1.45mm) with ±0.1mm length/height tolerances for compact PCB layouts.
- Wide operating temperature range (-55°C to 125°C) with derating up to 125°C.
- Non-automotive, non-PPAP compliant, ideal for industrial and commercial electronics.
GS8B014641FDT Applications
This resistor network excels in:
- Analog signal processing (e.g., DAC/ADC reference circuits).
- Voltage division networks in test/measurement equipment.
- Impedance matching for RF and communication systems.
- Power supply feedback loops requiring stable resistance ratios.
- Industrial control systems where temperature resilience is critical.
Conclusion of GS8B014641FDT
The GS8B014641FDT combines precision, durability, and compact design, making it a standout choice for engineers needing reliable resistor networks in demanding environments. Its ceramic construction, tight tolerances, and bussed architecture offer superior performance over generic arrays, particularly in high-temperature or precision-analog applications. While not RoHS-compliant, its robustness justifies its use in specialized industrial and commercial systems.



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