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GQCB021600GFT
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GQCB021600GFT Description
GQCB021600GFT Description
The GQCB021600GFT from TT Electronics/IRC is a high-performance thin-film resistor network designed for precision applications. This 23-resistor array features a 160Ω resistance value per resistor with a tight 2% tolerance and a low ±50ppm/°C temperature coefficient, ensuring stable performance across a wide temperature range of 70°C to 125°C. Housed in a 24-pin QSOP ceramic package, it offers a 1W total power rating (0.05W per resistor) and a maximum voltage rating of 100V, making it suitable for demanding circuit designs. The gull-wing termination and surface-mount (SMD) design facilitate easy PCB integration, while its compact dimensions (8.66mm x 6.02mm x 1.47mm) save board space.
GQCB021600GFT Features
- Thin-film technology for high precision and stability.
- Ceramic case style ensures durability and thermal performance.
- BUS circuit designator simplifies routing in bus-oriented applications.
- Low TCR (±50ppm/°C) minimizes resistance drift under temperature fluctuations.
- 24-pin QSOP package with 0.64mm terminal pitch for high-density layouts.
- Non-automotive (PPAP: No) but suitable for industrial and telecom applications.
- Tube packaging for secure handling and storage.
GQCB021600GFT Applications
This resistor network excels in:
- Analog signal conditioning in measurement equipment.
- Voltage division and impedance matching in communication systems.
- Bus termination and pull-up/pull-down networks in digital circuits.
- Industrial control systems requiring stable, high-density resistor arrays.
- Medical devices where precision and reliability are critical.
Conclusion of GQCB021600GFT
The GQCB021600GFT stands out for its thin-film precision, robust ceramic construction, and compact QSOP footprint, making it ideal for high-reliability applications. While not RoHS-compliant, its low TCR, tight tolerance, and high power rating make it a superior choice for engineers designing precision analog or digital systems. Its BUS-oriented design further simplifies integration in complex circuits, offering a balance of performance and space efficiency.



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