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GS8B018662GCT
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GS8B018662GCT Description
GS8B018662GCT Description
The GS8B018662GCT from TT Electronics/IRC is a high-performance ceramic resistor network designed for precision applications. Packaged in a 16-pin narrow SOIC (SOIC-C series), it features 15 bussed resistors with a 86.6KΩ resistance value and a tight ±2% absolute tolerance, ensuring reliable signal integrity. The thin-film technology delivers a low ±100ppm/°C temperature coefficient, making it stable across a wide operating range of 70°C to 125°C. With a 0.8W total power rating (0.05W per resistor) and 100V maximum voltage rating, this network is engineered for durability in demanding environments. Its gull-wing termination and surface-mount design facilitate easy PCB integration.
GS8B018662GCT Features
- Ceramic substrate for enhanced thermal stability and mechanical robustness.
- Bussed circuit design simplifies layout in bus-line applications.
- ±0.25% ratio tolerance for precision voltage division and signal conditioning.
- 1.27mm terminal pitch and compact dimensions (9.91mm x 5.99mm x 1.45mm) save board space.
- Non-compliant with EU RoHS, suitable for legacy or specialized industrial systems.
- Tube packaging ensures protection during handling and assembly.
GS8B018662GCT Applications
Ideal for analog and digital systems requiring stable resistance networks, such as:
- Voltage dividers in sensor interfaces and ADC circuits.
- Pull-up/pull-down networks in microcontroller and FPGA designs.
- Industrial control systems where temperature fluctuations are a concern.
- Legacy automotive electronics (non-automotive grade) and power management modules.
Conclusion of GS8B018662GCT
The GS8B018662GCT excels in precision and reliability, offering a unique blend of ceramic durability, thin-film accuracy, and compact SOIC packaging. While not RoHS-compliant, its high-temperature performance and tight tolerances make it a standout choice for industrial, instrumentation, and legacy systems. Engineers will appreciate its ease of integration and consistent performance in critical circuits.



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