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GS8B025600CBT
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GS8B025600CBT Description
GS8B025600CBT Description
The GS8B025600CBT from TT Electronics/IRC is a high-precision ceramic resistor network designed for demanding electronic applications. This 16-pin narrow SOIC device features 15 bussed resistors with a 560Ω resistance value and an exceptional ±0.25% absolute tolerance, ensuring consistent performance in precision circuits. Built with thin-film technology, it offers a ±50ppm/°C temperature coefficient, making it stable across a wide operating temperature range of -55°C to +125°C. The SOIC package (9.91mm x 5.99mm x 1.45mm) with gull-wing terminations ensures reliable surface-mount assembly, while its 0.05W (1/20) power rating per resistor and 100V maximum voltage rating suit low-power, high-voltage environments.
GS8B025600CBT Features
- High Precision: ±0.25% absolute tolerance and ±0.1% ratio tolerance for critical analog/digital signal conditioning.
- Stable Performance: ±50ppm/°C TCR and ceramic case ensure minimal drift under thermal stress.
- Robust Construction: Thin-film resistors in a rectangular SOIC package (16-pin) with 1.27mm terminal pitch for dense PCB layouts.
- Wide Operating Range: -55°C to +125°C with derated power up to 70°C–125°C, ideal for industrial environments.
- Bussed Network: 15 resistors share a common node (BUS designator), simplifying bus termination and pull-up/down applications.
- Non-Automotive: Suitable for industrial, telecom, and instrumentation but not PPAP-compliant.
GS8B025600CBT Applications
- Voltage Divider Networks: Precision ratio tolerance (±0.1%) suits ADC/DAC reference circuits.
- Bus Termination: Bussed design minimizes signal reflection in high-speed digital systems (e.g., memory interfaces).
- Sensor Signal Conditioning: Low TCR ensures accuracy in temperature-sensitive measurements.
- Power Management: 100V rating supports bias networks in AC/DC converters.
- Test Equipment: Stable thin-film resistors for calibration and metrology tools.
Conclusion of GS8B025600CBT
The GS8B025600CBT excels in precision, thermal stability, and compact integration, making it a superior choice for high-reliability industrial and telecom systems. Its ceramic thin-film construction and tight tolerances outperform generic resistor arrays, while the bussed topology reduces component count in bus-heavy designs. Though not RoHS-compliant or automotive-grade, it remains a cost-effective solution for non-consumer applications requiring long-term accuracy. Engineers should consider this model for critical analog circuits where drift and space constraints are key concerns.



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