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GS8A024122FFT
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GS8A024122FFT Description
GS8A024122FFT Description
The GS8A024122FFT from TT Electronics/IRC is a high-performance 8-resistor thin film network designed for precision applications. Housed in a 16-pin SOIC ceramic package, it features 41.2KΩ resistance per resistor with a tight 1% tolerance and a low ±50ppm/°C temperature coefficient, ensuring stability across a wide -70°C to +125°C operating range. The isolated (ISOL) circuit design eliminates crosstalk between resistors, making it ideal for signal conditioning and voltage division. With a 0.8W total power rating (0.1W per resistor) and 100V maximum voltage rating, this surface-mount (SMD) device offers reliability in demanding environments. Its gull-wing termination and 1.27mm pitch facilitate easy PCB integration.
GS8A024122FFT Features
- Precision Thin Film Technology: Delivers low noise and high accuracy (±50ppm/°C).
- Isolated Resistor Network: Independent resistors prevent signal interference.
- Robust Ceramic Package: Enhances thermal performance and durability.
- Wide Temperature Range: Operates reliably from -70°C to +125°C (derated power).
- High Voltage Tolerance: Supports up to 100V, suitable for industrial applications.
- Compact SOIC-16 Footprint: 9.91mm × 5.99mm × 1.45mm dimensions with tight tolerances (±0.1mm length/height).
- Automotive-Grade Alternatives Available: Though this variant is non-automotive (PPAP: No), similar compliant options exist.
GS8A024122FFT Applications
- Signal Conditioning: Precision voltage dividers in sensor interfaces.
- Medical Equipment: Isolation circuits in patient monitoring systems.
- Industrial Controls: Feedback networks in PLCs and motor drivers.
- Test & Measurement: Calibration circuits requiring stable resistance values.
- Telecom Infrastructure: Impedance matching in high-frequency modules.
Conclusion of GS8A024122FFT
The GS8A024122FFT excels in precision, isolation, and thermal stability, making it a top choice for high-reliability electronics. Its ceramic SOIC package and thin film technology provide superior performance over polymer-based networks, particularly in high-temperature or noise-sensitive environments. While not RoHS-compliant, it remains a robust solution for industrial and medical designs where accuracy and durability are critical. Engineers should consider this model for applications demanding tight tolerances and minimal drift.



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