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GS7B014020JCT
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GS7B014020JCT Description
GS7B014020JCT Description
The GS7B014020JCT from TT Electronics/IRC is a high-reliability ceramic resistor network designed for precision applications in demanding environments. This 14-pin narrow SOIC package features 13 bussed resistors with a 402Ω resistance value, offering a ±5% absolute tolerance and an exceptional ±0.25% ratio tolerance. Built with thin-film technology, it delivers stable performance across a wide temperature range (70°C to 125°C) and a maximum operating temperature of 125°C. The SOIC-C series construction ensures robust mechanical integrity, with a compact footprint (8.66mm x 5.99mm x 1.45mm) and gull-wing terminations for reliable surface-mount assembly.
GS7B014020JCT Features
- High Precision: ±100ppm/°C temperature coefficient and tight ratio tolerance (±0.25%) for critical analog/digital circuits.
- Robust Construction: Ceramic case and thin-film technology ensure durability and long-term stability.
- Power Efficiency: 0.7W total power rating (0.05W per resistor) with derating up to 125°C.
- Space-Saving Design: 14-pin SOIC package optimizes PCB real estate while providing 13 isolated bussed resistors.
- Wide Voltage Range: Supports up to 100V maximum voltage, suitable for industrial and automotive (non-AECQ) applications.
- Strict Tolerances: ±0.1mm height/length and ±0.2mm depth tolerances ensure consistent manufacturability.
GS7B014020JCT Applications
- Voltage Divider Networks: Ideal for precision analog signal conditioning in test/measurement equipment.
- Bus Termination: Stable performance in high-speed digital systems (e.g., memory modules, FPGAs).
- Industrial Controls: Reliable operation in PLCs, motor drives, and power supplies due to wide temperature tolerance.
- Medical Electronics: Suitable for low-noise, high-stability circuits in diagnostic devices (though non-RoHS).
- Aerospace & Defense: Ceramic construction resists vibration and thermal stress in harsh environments.
Conclusion of GS7B014020JCT
The GS7B014020JCT excels in applications demanding precision, durability, and compactness. Its bussed architecture, tight tolerances, and ceramic encapsulation make it superior to polymer-based networks in high-temperature or high-reliability scenarios. While not automotive-grade or RoHS-compliant, it is a cost-effective solution for industrial, medical, and aerospace designs where performance outweighs regulatory constraints. Engineers will appreciate its balance of accuracy, power handling, and space efficiency in complex circuit layouts.



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