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GS7B027321GT
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GS7B027321GT Description
GS7B027321GT Description
The GS7B027321GT from TT Electronics/IRC is a high-performance ceramic resistor network designed for precision applications. Packaged in a 14-pin narrow SOIC (SOIC-C series), it features 13 bussed resistors with a 7.32KΩ resistance value and a tight ±2% tolerance. Built with thin-film technology, this network ensures low noise and stable performance across a wide temperature range (70°C to 125°C). Its ±50ppm/°C temperature coefficient enhances reliability in thermally dynamic environments. The 0.05W (1/20) power rating per resistor and 100V maximum voltage rating make it suitable for low-power, high-voltage circuits.
GS7B027321GT Features
- Ceramic substrate for superior thermal stability and durability.
- Gull-wing termination for reliable surface-mount (SMD) assembly.
- Bussed circuit design simplifies PCB layout in multi-resistor applications.
- Compact SOIC package (8.66mm × 5.99mm × 1.45mm) with ±0.1mm length/height tolerances for precise placement.
- Non-automotive grade (PPAP: No) but ideal for industrial and telecom systems.
- 0.7W total power rating for balanced load distribution.
- Non-RoHS compliant, suitable for legacy or specialized designs.
GS7B027321GT Applications
This resistor network excels in:
- Voltage divider circuits requiring matched resistance values.
- Signal conditioning in test/measurement equipment.
- Power supply feedback networks due to its stable TCR.
- Industrial control systems where space-efficient, multi-resistor solutions are critical.
- Telecommunication hardware leveraging its thin-film precision and low drift.
Conclusion of GS7B027321GT
The GS7B027321GT stands out for its ceramic construction, bussed design, and tight tolerances, offering engineers a robust solution for precision analog circuits. While not RoHS-compliant, its thermal performance and compact SOIC footprint make it a preferred choice for industrial and telecom applications demanding reliability in harsh conditions. Its balance of power handling and voltage tolerance ensures versatility across low-power, high-accuracy designs.



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