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GS8B039310BAT
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GS8B039310BAT Description
GS8B039310BAT Description
The GS8B039310BAT from TT Electronics/IRC is a high-precision ceramic resistor network designed for demanding electronic applications. Housed in a 16-pin narrow SOIC package, this bussed (BUS) network integrates 15 thin-film resistors, each with a resistance value of 931Ω and an absolute tolerance of ±0.1%. The device operates over a wide temperature range of -70°C to +125°C, with a temperature coefficient of ±25ppm/°C, ensuring stability in harsh environments. Its 0.05W (1/20) power rating per resistor and 0.8W total power rating make it suitable for low-power circuits requiring precision. The SOIC-C series construction features gull-wing termination for reliable surface-mount (SMD) assembly, with a compact footprint of 9.91mm (L) x 5.99mm (D) x 1.45mm (H).
GS8B039310BAT Features
- High Precision: ±0.1% tolerance and ±0.05% ratio tolerance for critical analog/digital signal conditioning.
- Robust Construction: Ceramic case ensures durability and thermal stability.
- Low TCR: ±25ppm/°C minimizes resistance drift across temperature fluctuations.
- Bussed Design: Simplified PCB layout for common bus applications.
- Wide Voltage Rating: Supports up to 100V, ideal for industrial and instrumentation use.
- Narrow SOIC Package: Space-efficient 16-pin form factor (1.27mm pitch) for high-density PCBs.
- Non-Automotive (PPAP No): Optimized for commercial and industrial markets.
GS8B039310BAT Applications
This resistor network excels in:
- Precision voltage dividers in test/measurement equipment.
- Signal conditioning for ADCs/DACs in data acquisition systems.
- Impedance matching in RF and communication circuits.
- Feedback networks for op-amps and precision amplifiers.
- Industrial control systems requiring stable, low-drift resistance.
Conclusion of GS8B039310BAT
The GS8B039310BAT combines high accuracy, thermal resilience, and compact packaging, making it a superior choice for precision electronics. Its ceramic thin-film technology and bussed architecture reduce design complexity while ensuring reliability in wide-temperature applications. Though not PPAP-compliant, it is ideal for industrial, medical, and instrumentation designs where tight tolerances and minimal drift are critical. Engineers will appreciate its balance of performance and integration ease in space-constrained layouts.



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