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GS4A026041GFT
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GS4A026041GFT Description
GS4A026041GFT Description
The GS4A026041GFT from TT Electronics/IRC is a high-performance ceramic resistor network designed for precision applications. This 8-pin narrow SOIC device features four isolated thin-film resistors, each with a resistance value of 6.04 kΩ and a tight ±2% absolute tolerance (±1% ratio tolerance). Its ±50 ppm/°C temperature coefficient ensures stability across a wide operating range of 70°C to 125°C, with a maximum operating temperature of 125°C. The SOIC package (4.9mm x 5.99mm x 1.45mm) offers a compact footprint, ideal for space-constrained designs. With a 0.1W power rating per resistor (0.4W total) and 100V maximum voltage rating, it balances power handling and precision.
GS4A026041GFT Features
- Isolated Elements: Four independent resistors for flexible circuit design.
- High Stability: Thin-film technology with ±50 ppm/°C TCR for minimal drift.
- Precision Tolerance: ±2% absolute (±1% ratio) ensures consistent performance.
- Robust Construction: Ceramic case with gull-wing termination for reliable surface mounting.
- Wide Temperature Range: Operates from 70°C to 125°C with derated power.
- Compact SOIC Package: 4.9mm length, 5.99mm depth, 1.45mm height for high-density PCBs.
- 100V Voltage Rating: Suitable for moderate-voltage applications.
GS4A026041GFT Applications
This resistor network excels in:
- Precision Analog Circuits: Voltage dividers, feedback networks, and sensor interfaces.
- Industrial Electronics: PLCs, instrumentation, and control systems requiring stable resistance.
- Telecommunications: Signal conditioning and impedance matching in RF modules.
- Medical Devices: Low-drift circuits for diagnostic equipment.
- Automotive (Non-Automotive Rated): Prototyping or non-safety-critical systems.
Conclusion of GS4A026041GFT
The GS4A026041GFT combines precision, isolation, and compactness, making it ideal for applications demanding stable resistance in harsh environments. Its ceramic construction, thin-film technology, and tight tolerances outperform generic arrays, particularly in industrial and telecom systems. While not PPAP or automotive-qualified, it remains a cost-effective solution for high-reliability, space-constrained designs.



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