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GS8B034020GBT
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GS8B034020GBT Description
GS8B034020GBT Description
The GS8B034020GBT from TT Electronics/IRC is a high-performance ceramic resistor network designed for precision applications in demanding environments. This 16-pin Narrow SOIC device features 15 bussed resistors with a 402Ω resistance value, offering an absolute tolerance of ±2% and an exceptional ratio tolerance of ±0.1%. Built with thin-film technology, it ensures stable performance across a wide temperature range of -70°C to +125°C, supported by a low temperature coefficient of ±25ppm/°C. The SOIC package (9.91mm x 5.99mm x 1.45mm) with gull-wing terminations enables reliable surface-mount assembly, while its ceramic case enhances thermal and mechanical durability. Rated for 100V maximum voltage and 0.8W total power dissipation, it is ideal for compact, high-density PCB designs.
GS8B034020GBT Features
- Precision Network: 15 bussed resistors with 402Ω ±2% tolerance and ±0.1% ratio tolerance for matched performance.
- Robust Construction: Ceramic substrate and thin-film technology ensure low drift and high reliability.
- Wide Operating Range: Stable from -70°C to +125°C with derated power up to 125°C.
- Space-Efficient: SOIC-16 package (9.91mm x 5.99mm) with 1.27mm terminal pitch for high-density layouts.
- Low TCR: ±25ppm/°C minimizes resistance variation under thermal stress.
- High Voltage Rating: Supports up to 100V, suitable for industrial and automotive systems (non-automotive PPAP).
GS8B034020GBT Applications
- Analog Signal Conditioning: Precision voltage dividers and feedback networks in instrumentation.
- Medical Electronics: Stable resistor arrays for diagnostic equipment and patient monitoring.
- Industrial Controls: Robust performance in PLCs, motor drives, and power management circuits.
- Telecom Infrastructure: Impedance matching and termination in high-frequency modules.
- Aerospace & Defense: Reliable operation in harsh environments due to ceramic durability.
Conclusion of GS8B034020GBT
The GS8B034020GBT excels in applications demanding precision, stability, and compactness. Its ceramic thin-film design, tight tolerances, and wide temperature range make it superior to polymer-based networks, particularly in high-reliability systems. While not PPAP-qualified for automotive use, it is a top choice for industrial, medical, and telecom designs where consistent performance and longevity are critical. Engineers will appreciate its balance of miniaturization, power handling, and thermal resilience in advanced electronics.



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