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GS8B018250GT
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GS8B018250GT Description
GS8B018250GT Description
The GS8B018250GT from TT Electronics/IRC is a high-performance ceramic resistor network designed for precision applications in demanding electronic circuits. This 16-pin narrow SOIC device features 15 bussed resistors with a 825Ω resistance value and a tight ±2% tolerance, ensuring reliable performance in voltage division, pull-up/pull-down, and termination applications. Built with thin-film technology, it offers excellent stability with a ±100ppm/°C temperature coefficient, making it suitable for environments with fluctuating temperatures. The SOIC package (9.91mm × 5.99mm × 1.45mm) provides a compact footprint, ideal for space-constrained designs. Rated for 100V maximum voltage and 0.8W total power dissipation, it operates reliably within a -70°C to +125°C temperature range.
GS8B018250GT Features
- Ceramic substrate for enhanced thermal and mechanical stability.
- Bussed network topology simplifies circuit design by interconnecting resistors.
- Thin-film technology ensures low noise and high precision (±2% tolerance).
- Wide operating temperature range (-70°C to +125°C) with derated power up to 125°C.
- Gull-wing termination for robust surface-mount assembly (SOIC-16).
- High voltage rating (100V) and 0.05W per resistor power handling.
- Non-automotive and non-PPAP compliant, suited for industrial/consumer applications.
GS8B018250GT Applications
This resistor network excels in:
- Voltage dividers and current-limiting circuits in power supplies.
- Signal conditioning and impedance matching in communication systems.
- Pull-up/pull-down networks for digital logic (e.g., microcontrollers, FPGAs).
- Termination resistors for bus lines (e.g., I2C, SPI) to reduce reflections.
- Industrial control systems requiring stable, high-density resistor arrays.
Conclusion of GS8B018250GT
The GS8B018250GT combines precision, durability, and compactness, making it a versatile choice for engineers designing high-reliability circuits. Its ceramic construction, bussed design, and thin-film technology provide superior performance over standard thick-film networks, particularly in temperature-sensitive or high-voltage scenarios. While not RoHS-compliant, it remains ideal for industrial, telecom, and instrumentation applications where stability and space efficiency are critical.



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