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GS8A031601FBT
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GS8A031601FBT Description
GS8A031601FBT Description
The GS8A031601FBT from TT Electronics/IRC is a high-precision 8-resistor network designed for demanding isolation and signal conditioning applications. Housed in a 16-pin narrow SOIC ceramic package, it features isolated thin-film resistors with a 1.6 kΩ resistance value, ±1% absolute tolerance, and an ultra-stable ±25 ppm/°C temperature coefficient. The device operates over a wide temperature range of 70°C to 125°C with a derated power rating of 0.1W per resistor (0.8W total). Its 100V maximum voltage rating and 1.27mm terminal pitch make it suitable for high-density PCB designs. The ceramic case ensures superior thermal performance and durability, while the gull-wing termination facilitates reliable surface-mount assembly.
GS8A031601FBT Features
- Precision Performance: ±1% absolute tolerance and ±0.1% ratio tolerance ensure accuracy in differential signal applications.
- Robust Construction: Ceramic SOIC package enhances thermal stability and mechanical strength.
- High-Density Design: Compact 9.91mm × 5.99mm × 1.45mm footprint with 16-pin gull-wing leads.
- Wide Operating Range: Supports -55°C to +125°C (full power up to 70°C, derated to 125°C).
- Low TCR: ±25 ppm/°C minimizes resistance drift in temperature-variable environments.
- Isolated Elements: Independent resistors prevent crosstalk, ideal for precision analog circuits.
GS8A031601FBT Applications
- Industrial Automation: Signal isolation in PLCs, sensors, and data acquisition systems.
- Medical Electronics: Patient monitoring equipment requiring stable, noise-free resistor networks.
- Test & Measurement: Precision voltage dividers and calibration circuits.
- Aerospace & Defense: Ruggedized electronics where thermal and mechanical reliability are critical.
- Telecommunications: Impedance matching and filtering in high-frequency modules.
Conclusion of GS8A031601FBT
The GS8A031601FBT excels in applications demanding high precision, thermal resilience, and compact integration. Its ceramic construction, low TCR, and isolated design distinguish it from standard epoxy-based networks, making it a preferred choice for mission-critical systems. While not automotive-grade or RoHS-compliant, its performance in industrial, medical, and aerospace environments justifies its niche superiority. Engineers should verify compatibility for unconfirmed status before deployment.



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