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GS7B033012JCT
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GS7B033012JCT Description
GS7B033012JCT Description
The GS7B033012JCT from TT Electronics/IRC is a high-performance ceramic resistor network designed for precision applications. This 14-pin narrow SOIC device features 13 bussed resistors with a 30.1KΩ resistance value and a ±5% absolute tolerance, ensuring reliable performance in demanding circuits. Built with thin-film technology, it offers a low temperature coefficient of ±25ppm/°C, making it stable across a wide operating temperature range of -70°C to +125°C. The SOIC package (8.66mm x 5.99mm x 1.45mm) with gull-wing terminations ensures easy surface-mount assembly, while its 0.05W power rating per resistor (0.7W total) and 100V maximum voltage rating cater to robust industrial and commercial applications.
GS7B033012JCT Features
- Bussed Network Design: Simplifies circuit layout with 13 interconnected resistors.
- High Precision: ±5% absolute tolerance and ±0.25% ratio tolerance for tight performance margins.
- Stable Thermal Performance: ±25ppm/°C TCR ensures minimal resistance drift.
- Robust Construction: Ceramic substrate enhances durability and heat dissipation.
- Surface-Mount Ready: Gull-wing terminations and SOIC package optimize PCB space.
- Wide Voltage Range: Supports up to 100V, suitable for diverse electronic systems.
GS7B033012JCT Applications
This resistor network excels in:
- Analog Signal Conditioning: Precision voltage dividers and sensor interfaces.
- Industrial Control Systems: Stable performance in harsh environments.
- Medical Electronics: Reliable operation in diagnostic and monitoring equipment.
- Automotive Electronics (non-Automotive PPAP): Engine control units and infotainment systems.
- Test & Measurement Equipment: High-accuracy instrumentation requiring minimal drift.
Conclusion of GS7B033012JCT
The GS7B033012JCT stands out for its precision, thermal stability, and compact SOIC footprint, making it ideal for applications demanding high reliability and space efficiency. Its ceramic construction and thin-film technology provide superior performance over standard thick-film networks, particularly in temperature-sensitive or high-voltage circuits. While not PPAP-compliant for automotive use, it remains a top choice for industrial, medical, and instrumentation designs requiring consistent, long-term accuracy.



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