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GS7B026192FDT
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GS7B026192FDT Description
GS7B026192FDT Description
The GS7B026192FDT from TT Electronics/IRC is a high-precision ceramic resistor network designed for demanding electronic applications. This 14-pin narrow SOIC device features 13 bussed resistors with a 61.9KΩ resistance value and an absolute tolerance of ±1%, ensuring consistent performance in precision circuits. Built with thin-film technology, it offers a low temperature coefficient of ±50ppm/°C, maintaining stability 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 facilitates easy surface-mount assembly, while its 0.05W (1/20) power rating per resistor and 100V maximum voltage rating make it suitable for low-power, high-voltage environments.
GS7B026192FDT Features
- Bussed Network Design: Simplifies PCB layout by connecting multiple resistors to a common node.
- High Precision: ±1% tolerance and ±0.5% ratio tolerance for critical analog/digital circuits.
- Robust Construction: Ceramic case ensures durability and thermal stability.
- Wide Temperature Range: Reliable performance from 70°C to 125°C with derated power.
- Low TCR: ±50ppm/°C minimizes resistance drift under thermal stress.
- Surface-Mount Ready: Gull-wing terminals and 1.27mm pitch for automated assembly.
- Compact Footprint: SOIC package saves board space in dense layouts.
GS7B026192FDT Applications
- Voltage Dividers: Precision attenuation in sensor interfaces or ADCs.
- Signal Conditioning: Stable resistance networks for op-amp feedback circuits.
- Industrial Controls: Reliable performance in harsh environments (e.g., motor drives, PLCs).
- Medical Electronics: Low-noise, high-stability requirements in diagnostic equipment.
- Automotive Systems: Despite non-automotive PPAP status, suitable for non-safety-critical modules like infotainment.
Conclusion of GS7B026192FDT
The GS7B026192FDT excels in applications requiring tight tolerance, thermal stability, and compact design. Its ceramic construction, bussed architecture, and thin-film technology provide superior performance over standard thick-film networks. While not PPAP-certified, it is ideal for industrial, medical, and precision instrumentation where reliability and accuracy are paramount. Engineers will appreciate its ease of integration and consistent performance across varying operational conditions.



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