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GS8B035600GCT
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GS8B035600GCT Description
GS8B035600GCT Description
The GS8B035600GCT from TT Electronics/IRC is a high-performance ceramic resistor network designed for precision applications. This 16-pin narrow SOIC device features 15 bussed resistors with a 560Ω resistance value, offering an absolute tolerance of ±2% and a ratio tolerance of ±0.25%. Built with thin-film technology, it ensures excellent stability with a low temperature coefficient of ±25ppm/°C. The network operates within a temperature range of 70°C to 125°C and delivers a power rating of 0.8W (0.05W per resistor), making it suitable for demanding environments. Its SOIC package (9.91mm x 5.99mm x 1.45mm) with gull-wing termination ensures reliable surface-mount assembly.
GS8B035600GCT Features
- Ceramic Construction: Ensures durability and thermal stability.
- Bussed Network: Simplifies PCB layout with shared connections.
- Precision Tolerance: ±2% absolute, ±0.25% ratio for matched performance.
- Low TCR: ±25ppm/°C minimizes resistance drift.
- High Power Handling: 0.8W total (0.05W per resistor).
- Wide Voltage Rating: Supports up to 100V.
- Narrow SOIC Package: Space-efficient 16-pin design (1.27mm pitch).
- Non-Automotive: Ideal for industrial and commercial use.
GS8B035600GCT Applications
This resistor network excels in:
- Voltage Divider Circuits: Precision ratio tolerance ensures accuracy.
- Signal Conditioning: Stable performance in analog/digital interfaces.
- Industrial Control Systems: Reliable operation in harsh conditions.
- Test & Measurement Equipment: Low TCR critical for calibration.
- Power Management: Efficient dissipation in compact designs.
Conclusion of GS8B035600GCT
The GS8B035600GCT stands out for its ceramic thin-film construction, tight tolerances, and robust SOIC package, making it a superior choice for precision electronics. While not RoHS-compliant, its thermal stability and power efficiency cater to industrial and instrumentation needs. Engineers will appreciate its simplified bus design and consistent performance in critical applications.



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