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GS8A018060FAT
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GS8A018060FAT Description
GS8A018060FAT Description
The GS8A018060FAT from TT Electronics/IRC is a high-performance 8-resistor isolated network in a 16-pin narrow SOIC package, designed for precision applications requiring stable thin-film resistance. Encased in a ceramic SOIC-C series housing, it offers 806Ω resistance per element with a tight ±1% absolute tolerance and exceptional ±0.05% ratio tolerance, ensuring minimal deviation in matched circuits. Operating within a -55°C to +125°C range (derated power from 70°C to 125°C), it delivers 0.1W per resistor (0.8W total) and withstands up to 100V, making it suitable for high-reliability environments. Its ±100ppm/°C temperature coefficient and gull-wing termination ensure robust performance in surface-mount assemblies.
GS8A018060FAT Features
- Precision Thin Film Technology: Delivers stable resistance with low TCR (±100ppm/°C) and ultra-tight ratio tolerance (±0.05%).
- Isolated Network Design: Eight independent resistors (806Ω each) in a 16-pin SOIC package, ideal for signal isolation.
- High Power Density: 0.8W total dissipation (0.1W per resistor) in a compact 9.91×5.99×1.45mm footprint.
- Robust Construction: Ceramic case ensures thermal stability and mechanical durability under harsh conditions.
- Automation-Friendly: 1.27mm terminal pitch and gull-wing leads simplify PCB assembly.
- Non-Automotive/Non-PPAP: Suitable for industrial, telecom, and instrumentation applications.
GS8A018060FAT Applications
- Precision Voltage Dividers: Leverages ratio tolerance for ADC/DAC reference circuits.
- Medical Equipment: Stable performance in isolated sensor interfaces.
- Test & Measurement: Low-drift resistance networks for calibration systems.
- Industrial Controls: Reliable operation in PLCs and power monitoring.
- Telecom Infrastructure: Signal conditioning in high-density PCB designs.
Conclusion of GS8A018060FAT
The GS8A018060FAT excels in applications demanding high precision, thermal stability, and compact integration. Its ceramic construction, isolated resistors, and tight tolerances make it superior to polymer-based networks in harsh environments. While not PPAP-capable, it is a cost-effective solution for industrial and instrumentation designs requiring repeatable performance. Engineers will value its balance of power handling, miniaturization, and reliability.



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